Coating a bioreactor in a cell expansion system

Abstract
Embodiments described herein generally provide for the expansion of cells in a cell expansion system using an active promotion of a coating agent(s) to a cell growth surface in some embodiments. A coating agent may be applied to a surface, such as the cell growth surface of a hollow fiber in a bioreactor, by controlling the movement of a fluid in which a coating agent is suspended, by changing flow rates, by changing flow directions, by rotation of the bioreactor, and/or combinations thereof.
Description
BACKGROUND

Cell Expansion Systems (CESs) may be used to expand and differentiate cells. Cell expansion systems may be used to expand, e.g., grow, a variety of adherent and suspension cells. For example, cell expansion systems may be used to expand mesenchymal stem cells (MSCs) and other types of cells, such as bone marrow cells. Stem cells which are expanded from donor cells may be used to repair or replace damaged or defective tissues and have broad clinical applications for a wide range of diseases. Cells, of both adherent and non-adherent type, may be grown in a bioreactor in a cell expansion system.


SUMMARY

Embodiments of the present disclosure generally relate to a cell expansion system for expanding cells. Such expansion may occur through the use of a bioreactor or cell growth chamber comprising a hollow fiber membrane. In embodiments, a hollow fiber membrane comprises a plurality of hollow fibers. Such hollow fiber membrane may include an extracapillary (EC) space and an intracapillary (IC) space. A cell expansion system may expand a variety of cell types, such as mesenchymal stem cells, cancer cells, T-cells, fibroblasts, and myoblasts. In expanding cells, a compound or coating agent may be applied to a cell growth surface. For example, an adherence-promoting compound may be applied to a cell growth surface to promote contact, e.g., adherence, and subsequent expansion of cells, such as a cell line including human mesenchymal stem cells (hMSCs). In embodiments, for cells to adhere to the surface of the hollow fibers, the surface may be modified in some way, such as by coating at least the cell growth surface with a protein, for example. In embodiments, a coating agent may be applied to the inner surface or inner aspect of bioreactor fibers. For example, a coating agent may be applied to the intracapillary (IC) surface of a hollow fiber(s). In another embodiment, a coating agent may be applied to the extracapillary (EC) surface of a hollow fiber(s). As non-limiting examples of coating agent(s), cryoprecipitate (CPPT), fibronectin (FN), human fibronectin (hFN), and/or combinations of such coating agents may be used. In other embodiments, a plurality of coating agents, or a combination of coating agent(s), may be used.


Embodiments provide for fluid movement in a cell growth chamber or bioreactor to be controlled to actively promote a coating agent(s) to a cell growth surface, e.g., to a surface of a hollow fiber(s). For example, such fluid movement may be controlled so as to move fluid from one side, e.g., IC side, of a hollow fiber to the other side, e.g., EC side, of the hollow fiber. In an embodiment, ultrafiltration may be used to move fluid in a bioreactor. For example, positive ultrafiltration may be used to move fluid from the IC side of a bioreactor to the EC side of the bioreactor. In another embodiment, negative ultrafiltration may be used to move fluid from the EC side of a bioreactor to the IC side of the bioreactor. In embodiments, other types of ultrafiltration or directions of fluid movement may be used. The direction of fluid movement may depend on the surface upon which cells are being expanded.


By controlling fluid movement, a coating solution, e.g., a fluid(s) and a coating agent(s), may be actively pushed to the IC (or EC) loop, and the fluid(s) may be pushed through the pores, for example, of a hollow fiber(s), leaving a residual layer of adherence-promoting protein(s), for example, on the IC (or EC) side of the hollow fiber(s) and therefore facilitating the contact, e.g., attachment, of cells, e.g., adherent cells. Such fluid movement, e.g., ultrafiltration, may decrease the time required for a chemical reaction between a coating agent and the growth surface of the bioreactor to occur to coat the fiber(s). Such fluid movement may be controlled through the adjusting of one or more valve(s), pump(s), or other type of fluid flow control device(s).


Embodiments of the present disclosure provide for implementing such coating procedure(s) through the use of one or more protocols or tasks for use with a cell expansion system. Such protocols or tasks may include pre-programmed protocols or tasks for use with an automated CES, for example. In embodiments, a pre-programmed, default, or otherwise previously saved task may be selected. A task may comprise one or more steps. In other embodiments, such protocols or tasks may include custom or user-defined protocols or tasks for use with an automated CES, for example. Through a user interface (UI) and graphical user interface (GUI) elements, a custom or user-defined protocol or task may be created. In embodiments, a combination of pre-programmed, default, custom, and/or user-defined tasks, for example, may be used.


In addition, ultrafiltration may be combined with other processes for coating a cell growth surface, e.g., a surface of a hollow fiber. For example, some coating processes referred to as a bulls-eye coat process may provide for changing flow rates, flow directions, and rotation of a bioreactor during a coating process to improve distribution of the coating agent throughout the bioreactor. Embodiments provide for combining ultrafiltration, such as by continuously introducing a wash fluid into the bioreactor, while other steps (e.g., changing flow rates, flow directions, and rotation of a bioreactor) are performed.


Other embodiments provide for combining processes of coating a cell growth surface, e.g., a surface of a hollow fiber with processes for loading and attaching cells. For example, a bulls-eye coat process may be combined with a bulls-eye load process. The coating process may provide for changing flow rates, flow directions, and rotation of a bioreactor during a coating process, while the bulls-eye load may provide for changing flow rates, flow directions, and rotation of a bioreactor during a process of loading and attaching cells.


This Summary is included to provide a selection of concepts in a simplified form, in which such concepts are further described below in the Detailed Description. This Summary is not intended to be used in any way to limit the claimed subject matter's scope. Features, including equivalents and variations thereof, may be included in addition to those provided herein.





BRIEF DESCRIPTION OF THE DRAWINGS

Embodiments of the present disclosure may be described by referencing the accompanying figures. In the figures, like numerals refer to like items.



FIG. 1A depicts an embodiment of a cell expansion system (CES).



FIG. 1B illustrates a front elevation view of an embodiment of a bioreactor showing circulation paths through the bioreactor.



FIG. 1C depicts a rocking device for moving a cell growth chamber rotationally or laterally during operation of a cell expansion system, according to embodiments of the present disclosure.



FIG. 2 illustrates a perspective view of a cell expansion system with a pre-mounted fluid conveyance device, in accordance with embodiments of the present disclosure.



FIG. 3 depicts a perspective view of a housing of a cell expansion system, in accordance with embodiments of the present disclosure.



FIG. 4 illustrates a perspective view of a pre-mounted fluid conveyance device, in accordance with embodiments of the present disclosure



FIG. 5 depicts a schematic of a cell expansion system, in accordance with an embodiment of the present disclosure.



FIG. 6 illustrates a schematic of a cell expansion system, in accordance with another embodiment of the present disclosure.



FIG. 7 depicts a flow diagram illustrating the operational characteristics of a process for applying an agent to a cell growth surface in accordance with embodiments of the present disclosure.



FIG. 8A illustrates a flow diagram depicting the operational characteristics of a process for applying a reagent to a cell growth surface in accordance with embodiments of the present disclosure.



FIG. 8B depicts a schematic of applying an agent to a cell growth surface of a hollow fiber in accordance with embodiments of the present disclosure.



FIG. 8C illustrates example steps and parameters for applying an agent to a cell growth surface in accordance with an embodiment of the present disclosure.



FIG. 9A depicts a flow diagram illustrating the operational characteristics of a process for applying an agent to a cell growth surface in accordance with embodiments of the present disclosure.



FIG. 9B depicts a flow diagram illustrating the operational characteristics of a process for applying an agent to a cell growth surface in accordance with embodiments of the present disclosure.



FIG. 10 illustrates a flow for a process of coating a bioreactor according to an embodiment.



FIG. 11 illustrates a cross section of a bioreactor showing a plurality of hollow fibers and zones of hollow fibers through which liquid containing a reagent may circulate at different flow rates.



FIG. 12 illustrates a flow for a process of coating a bioreactor according to another embodiment.



FIG. 13 illustrates a flow for a process of coating a bioreactor according to yet another embodiment.



FIG. 14 is a flow chart of a process for loading, distributing, attaching, and expanding cells according to some embodiments.



FIG. 15 illustrates a front elevation view of an embodiment of a bioreactor in a first orientation.



FIG. 16 illustrates a front elevation view of the bioreactor of FIG. 15, wherein the bioreactor is shown rotated about 90 degrees from the view of FIG. 15.



FIG. 17 is a front elevation view of the bioreactor of FIG. 15, wherein the bioreactor is shown rotated about 180 degrees from the view of FIG. 15.



FIG. 18 is a front elevation view of the bioreactor of FIG. 15, wherein the bioreactor is shown rotated back to the original orientation shown in FIG. 15.



FIG. 19 illustrates a front elevation view of the bioreactor of FIG. 15, wherein the bioreactor is shown rotated about 90 degrees from the view of FIG. 15 and about 180 degrees from the view of FIG. 16.



FIGS. 20A-20D illustrate a cross section (perpendicular to a central axis) of a hollow fiber that may be part of a bioreactor as it progresses through steps of a process for distributing, attaching, and expanding cells in the bioreactor according to another embodiment.



FIG. 21A-21F illustrate a cross section (perpendicular to a central axis) of a hollow fiber that may be part of a bioreactor as it progresses through steps of a process for distributing attaching and expanding cells in the bioreactor according to yet another embodiment.



FIG. 22 is a flow chart of a process for coating, loading, distributing, attaching, and expanding cells according to some embodiments.



FIG. 23 illustrates an example processing system of a cell expansion system upon which embodiments of the present disclosure may be implemented.



FIG. 24 depicts example cell yields using a coating application(s) in accordance with embodiments of the present disclosure.



FIG. 25A illustrates example results of expanding cells using various coating and cell loading procedures in accordance with embodiments of the present disclosure.



FIG. 25B depicts example results of expanding cells using various coating and cell loading procedures in accordance with embodiments of the present disclosure.



FIG. 26A illustrates example results of expanding cells using various coating and cell loading procedures in accordance with embodiments of the present disclosure.



FIG. 26B depicts example results of expanding cells using various coating and cell loading procedures in accordance with embodiments of the present disclosure.



FIG. 27A illustrates example results of expanding cells using various coating and cell loading procedures in accordance with embodiments.



FIG. 27B depicts example results of expanding cells using various coating and cell loading procedures in accordance with embodiments.





DETAILED DESCRIPTION

The following Detailed Description provides a discussion of illustrative embodiments with reference to the accompanying drawings. The inclusion of specific embodiments herein should not be construed as limiting or restricting the present disclosure. Further, while language specific to features, acts, and/or structures, for example, may be used in describing embodiments herein, the claims are not limited to the features, acts, and/or structures described. A person of skill in the art will appreciate that other embodiments, including improvements, are within the spirit and scope of the present disclosure. Further, any alternatives or additions, including any listed as separate embodiments, may be used or incorporated with any other embodiments herein described.


Embodiments of the present disclosure are generally directed to methods and systems for applying a coating agent or reagent to a cell growth surface to promote cell contact, e.g., adherence, and subsequent expansion of cells. In an embodiment, such application comprises an active promotion of a coating agent or reagent to the cell growth surface, such as the cell growth surface of a hollow fiber(s) where a hollow fiber bioreactor may be used for cell expansion in a cell expansion system. Controlling fluid movement in a bioreactor or cell growth chamber allows for the active promotion of a coating agent or reagent to a cell growth surface.


Passive coating processes may involve the passive application of a coating agent to a cell growth surface, in which a coating agent(s) may be passively applied to a cell growth chamber of an automated cell expansion system using circulating flow, for example. A coating agent(s) may be loaded into an intracapillary or extracapillary side of a bioreactor, for example. The coating agent(s) may then be circulated in the intracapillary or extracapillary loop for a particular, e.g., first, time period. As such, the bioreactor may be passively coated using circulating flow in the IC (or EC) loop, in which such process may take multiple hours, for example. Such coating procedure may take from about four (4) hours to about twenty-four (24) hours, for example, of circulation of a coating agent to achieve coating of the cell growth surface. As an example, a bioreactor coating protocol may load a coating agent into the intracapillary side of a bioreactor in a cell expansion system. The coating agent may then be circulated in the intracapillary circulation loop for a minimum of sixteen (16) hours. A user utilizing such process may therefore use at least two cell expansion systems, in which the user may begin, in a second cell expansion system, any additional expansion of a population of cells harvested from a first cell expansion system (where cells may not be stored in a non-cryopreserved state for up to sixteen (16) hours, for example).


Embodiments herein provide for the active pushing or active promotion of a coating agent solution to a cell growth surface. Rather than passively coating the bioreactor using circulating flow in the IC loop, for example, for many hours, a coating solution, e.g., a fluid(s) and a coating agent(s), can be actively pushed into the IC loop, and the fluid(s) may be pushed through the pores of the bioreactor, leaving a residual layer of adherence promoting proteins on the IC side of the bioreactor fibers to facilitate the attachment of adherent cells. In an embodiment, ultrafiltration may be used to allow a coating agent or reagent to be promoted to the growth surface of a hollow fiber, for example. Ultrafiltration, e.g., positive ultrafiltration, may be used to move fluid from a first side of a hollow fiber to a second side of a hollow fiber. For example, utilizing positive ultrafiltration of a fluid, the fluid may be moved from the IC side of a hollow fiber or hollow fiber membrane to the EC side of the hollow fiber or hollow fiber membrane. Such fluid movement may decrease the time it takes for a chemical reaction to occur between a coating agent or reagent and a growth surface of the bioreactor to coat the cell growth surface. The molecular barrier created by the specified construction of the hollow fibers in the bioreactor may be such that the coating agent or reagent may not be able to pass through the fiber wall along with the fluid in which it is suspended. The adherence promoting proteins of the coating agent may remain in a residual layer on a first side of the hollow fiber(s) as the solution is pushed through the pores of the fibers to a second side of the hollow fiber(s). Moving the fluid using ultrafiltration, e.g., positive ultrafiltration, may thus result in “actively” promoting the coating agent or reagent to the surface of the hollow fiber(s), according to embodiments.


For example, a coating agent(s) may be introduced to the fibers of a hollow fiber bioreactor on the IC (or EC) side. Such coating agent(s) may be suspended in a solution, e.g., coating solution. The IC outlet or waste valve may be closed, with the EC outlet or waste valve open. The IC inlet rate may be set to wash the IC side with media, such as phosphate buffered saline (PBS), for example. Such fluid may have no pathway but through the pores of the fibers (IC outlet valve closed). Accordingly, the solution may flow through the pores of the fibers from the IC side to the EC side. The coating agent, e.g., CPPT, may be hydrostatically deposited onto the inner wall(s) of the bioreactor fiber for a defined time period. For example, such time period may be about ten (10) minutes, according to an embodiment. Such membrane ultrafiltration method allows adherence promoting proteins to be physisorbed on the bioreactor fibers as the solution flows through the pores of the fiber from the IC side to the EC side, for example.


In an embodiment, such active moving of the coating agent to the cell growth surface(s) may significantly decrease the amount of time it may take to coat the cell growth surface as compared to other methods of coating a cell growth surface. In embodiments, such coating procedure using ultrafiltration may be referred to as an expedited coating procedure. Such expedited coating procedure using active moving of the coating agent to the cell growth surface(s) through ultrafiltration may use less time to coat the cell growth surface than procedures using passive coating procedures which may take overnight or about twelve (12) hours to about sixteen (16) hours to coat the bioreactor. For example, such expedited coating procedure may take less than or equal to about four (4) hours. In embodiments, such expedited coating procedure may take any time period in a range from above or equal to about five (5) minutes to less than or equal to about sixty (60) minutes, or any other range therein, depending on the procedure. For example, such coating procedure may take less than or equal to about ten (10) minutes, less than or equal to about twelve (12) minutes, less than or equal to about fifteen (15) minutes, less than or equal to about twenty (20) minutes, less than or equal to about thirty (30) minutes, less than or equal to about forty-five (45) minutes, less than or equal to about sixty (60) minutes, etc.


Embodiments are directed to a cell expansion system, as described above. In embodiments, such cell expansion system is closed, in which a closed cell expansion system comprises contents that are not directly exposed to the atmosphere. Such cell expansion system may be automated. In embodiments, cells, of both adherent and non-adherent or suspension type, may be grown in a bioreactor in the cell expansion system. According to embodiments, the cell expansion system may include base media or other type of media. Methods for replenishment of media are provided for cell growth occurring in a bioreactor of the closed cell expansion system. In embodiments, the bioreactor used with such systems is a hollow fiber bioreactor. Many types of bioreactors may be used in accordance with embodiments of the present disclosure.


The system may include, in embodiments, a bioreactor that further includes a first fluid flow path having at least opposing ends, a first opposing end of the first fluid flow path fluidly associated with a first port of a hollow fiber membrane and a second end of the first fluid flow path fluidly associated with a second port of the hollow fiber membrane, in which the first fluid flow path comprises an intracapillary portion of the hollow fiber membrane. In embodiments, a hollow fiber membrane comprises a plurality of hollow fibers. The system may further include a fluid inlet path fluidly associated with the first fluid flow path, in which a plurality of cells are introduced into the first fluid flow path through a first fluid inlet path. A first pump for circulating fluid in the first fluid flow path of the bioreactor may also be included. In embodiments, the system includes a controller for controlling operation of the first pump. In an embodiment, the controller is a computing system, including a processor, for example. The controller is configured, in embodiments, to control the pump to circulate a fluid at a first rate within the first fluid flow path. In some embodiments, a second pump for transferring intracapillary inlet fluid from an intracapillary media bag to the first fluid flow path and a second controller for controlling operation of the second pump are included. The second controller, in embodiments, controls the second pump to transfer cells from a cell inlet bag to the first fluid flow path, for example. Additional controllers, e.g., third controller, fourth controller, fifth controller, sixth controller, etc., may be used in accordance with embodiments. Further, additional pumps, e.g., third pump, fourth pump, fifth pump, sixth pump, etc., may be used in accordance with embodiments of the present disclosure. In addition, while the present disclosure may refer to a media bag, a cell inlet bag, etc., multiple bags, e.g., a first media bag, a second media bag, a third media bag, a first cell inlet bag, a second cell inlet bag, a third cell inlet bag, etc., and/or other types of containers, may be used in embodiments. In other embodiments, a single media bag, a single cell inlet bag, etc., may be used. Further, additional or other fluid paths, e.g., a second fluid flow path, a second fluid inlet path, etc., may be included in embodiments.


In other embodiments, the system is controlled by, for example: a processor coupled to the cell expansion system; a display device, in communication with the processor, and operable to display data; and a memory, in communication with and readable by the processor, and containing a series of instructions. In embodiments, when the instructions are executed by the processor, the processor receives an instruction to coat the bioreactor, for example. In response to the instruction to coat the bioreactor, the processor may execute a series of steps to coat the bioreactor and may next receive an instruction to load cells into the bioreactor, for example. In response to the instruction to load cells, the processor may execute a series of steps to load the cells from a cell inlet bag, for example, into the bioreactor.


A schematic of an example cell expansion system (CES) is depicted in FIG. 1A, in accordance with embodiments of the present disclosure. CES 10 includes first fluid circulation path 12 and second fluid circulation path 14. First fluid flow path 16 has at least opposing ends 18 and 20 fluidly associated with a hollow fiber cell growth chamber 24 (also referred to herein as a “bioreactor”), according to embodiments. Specifically, opposing end 18 may be fluidly associated with a first inlet 22 of cell growth chamber 24, and opposing end 20 may be fluidly associated with first outlet 28 of cell growth chamber 24. Fluid in first circulation path 12 flows through the interior of hollow fibers 116 (see FIG. 1B) of hollow fiber membrane 117 (see FIG. 1B) disposed in cell growth chamber 24 (cell growth chambers and hollow fiber membranes are described in more detail infra). Further, first fluid flow control device 30 may be operably connected to first fluid flow path 16 and may control the flow of fluid in first circulation path 12.


Second fluid circulation path 14 includes second fluid flow path 34, cell growth chamber 24, and a second fluid flow control device 32. The second fluid flow path 34 has at least opposing ends 36 and 38, according to embodiments. Opposing ends 36 and 38 of second fluid flow path 34 may be fluidly associated with inlet port 40 and outlet port 42 respectively of cell growth chamber 24. Fluid flowing through cell growth chamber 24 may be in contact with the outside of hollow fiber membrane 117 (see FIG. 1B) in the cell growth chamber 24, in which a hollow fiber membrane comprises a plurality of hollow fibers. Second fluid circulation path 14 may be operably connected to second fluid flow control device 32.


First and second fluid circulation paths 12 and 14 may thus be separated in cell growth chamber 24 by a hollow fiber membrane 117 (see FIG. 1B). Fluid in first fluid circulation path 12 flows through the intracapillary (“IC”) space of the hollow fibers in the cell growth chamber 24. First circulation path 12 may be referred to as the “IC loop.” Fluid in second circulation path 14 flows through the extracapillary (“EC”) space in the cell growth chamber 24. Second fluid circulation path 14 may be referred to as the “EC loop.” Fluid in first fluid circulation path 12 may flow in either a co-current or counter-current direction with respect to the flow of fluid in second fluid circulation path 14, according to embodiments.


Fluid inlet path 44 may be fluidly associated with first fluid circulation path 12. Fluid inlet path 44 allows fluid into first fluid circulation path 12, while fluid outlet path 46 allows fluid to leave CES 10. Third fluid flow control device 48 may be operably associated with fluid inlet path 44. Alternatively, third fluid flow control device 48 may alternatively be associated with first outlet path 46.


Fluid flow control devices as used herein may comprise a pump, valve, clamp, or combination thereof, according to embodiments. Multiple pumps, valves, and/or clamps can be arranged in any combination. In various embodiments, the fluid flow control device is or includes a peristaltic pump. In embodiments, fluid circulation paths, inlet ports, and outlet ports may be constructed of tubing of any material.


Various components are referred to herein as “operably associated.” As used herein, “operably associated” refers to components that are linked together in operable fashion and encompasses embodiments in which components are linked directly, as well as embodiments in which additional components are placed between the two linked components. “Operably associated” components can be “fluidly associated.” “Fluidly associated” refers to components that are linked together such that fluid can be transported between them. “Fluidly associated” encompasses embodiments in which additional components are disposed between the two fluidly associated components, as well as components that are directly connected. Fluidly associated components can include components that do not contact fluid, but contact other components to manipulate the system (e.g., a peristaltic pump that pumps fluids through flexible tubing by compressing the exterior of the tube).


Generally, any kind of fluid, including buffers, protein containing fluid, and cell-containing fluid, for example, can flow through the various circulations paths, inlet paths, and outlet paths. As used herein, “fluid,” “media,” and “fluid media” are used interchangeably.


Turning to FIG. 1B, an example of a hollow fiber cell growth chamber 100 which may be used with the present disclosure is shown in front side elevation view. Cell growth chamber 100 has a longitudinal axis LA-LA and includes cell growth chamber housing 104. In at least one embodiment, cell growth chamber housing 104 includes four openings or ports: IC inlet port 108, IC outlet port 120, EC inlet port 128, and EC outlet port 132.


According to embodiments of the present disclosure, fluid in a first circulation path enters cell growth chamber 100 through IC inlet port 108 at a first longitudinal end 112 of the cell growth chamber 100, passes into and through the intracapillary side (referred to in various embodiments as the intracapillary (“IC”) side or “IC space” of a hollow fiber membrane) of a plurality of hollow fibers 116 comprising hollow fiber membrane 117, and out of cell growth chamber 100 through IC outlet port 120 located at a second longitudinal end 124 of the cell growth chamber 100. The fluid path between the IC inlet port 108 and the IC outlet port 120 defines the IC portion 126 of the cell growth chamber 100. Fluid in a second circulation path flows in the cell growth chamber 100 through EC inlet port 128, comes in contact with the extracapillary side or outside (referred to as the “EC side” or “EC space” of the membrane) of the hollow fibers 116, and exits cell growth chamber 100 via EC outlet port 132. The fluid path between the EC inlet port 128 and the EC outlet port 132 comprises the EC portion 136 of the cell growth chamber 100. Fluid entering cell growth chamber 100 via the EC inlet port 128 may be in contact with the outside of the hollow fibers 116. Small molecules (e.g., ions, water, oxygen, lactate, etc.) may diffuse through the hollow fibers 116 from the interior or IC space of the hollow fiber to the exterior or EC space, or from the EC space to the IC space. Large molecular weight molecules, such as growth factors, are typically too large to pass through the hollow fiber membrane, and may remain in the IC space of the hollow fibers 116. The media may be replaced as needed, in embodiments. Media may also be circulated through an oxygenator or gas transfer module to exchange gasses as needed. Cells may be contained within a first circulation path and/or a second circulation path, as described below, and may be on either the IC side and/or EC side of the membrane, according to embodiments.


The material used to make the hollow fiber membrane 117 may be any biocompatible polymeric material which is capable of being made into hollow fibers. One material which may be used is a synthetic polysulfone-based material, according to an embodiment of the present disclosure. In order for the cells to adhere to the surface of the hollow fibers, the surface may be modified in some way, either by coating at least the cell growth surface with a protein such as fibronectin or collagen, for example, or by exposing the surface to radiation, according to embodiments. Gamma treating the membrane surface allows for attachment of adherent cells without additionally coating the membrane with fibronectin, cryoprecipitate, or the like. Bioreactors made of gamma treated membranes may be reused. Other coatings and/or treatments for cell attachment may be used in accordance with embodiments of the present disclosure.


In embodiments, the CES (such as CES 500 (see FIG. 5) and/or CES 600 (see FIG. 6), for example) may include a device configured to move or “rock” the cell growth chamber relative to other components of the cell expansion system by attaching it to a rotational and/or lateral rocking device. FIG. 1C shows one such device, in which a bioreactor 100 may be rotationally connected to two rotational rocking components and to a lateral rocking component, according to an embodiment.


A first rotational rocking component 138 rotates the bioreactor 100 around central axis 142 of the bioreactor 100. Rotational rocking component 138 may be rotationally associated with bioreactor 100. In embodiments, bioreactor 100 may be rotated continuously in a single direction around central axis 142 in a clockwise or counterclockwise direction. Alternatively, bioreactor 100 may rotate in alternating fashion, first clockwise, then counterclockwise, for example, around central axis 142, according to embodiments.


The CES may also include a second rotational rocking component that rotates bioreactor 100 around rotational axis 144. Rotational axis 144 may pass through the center point of bioreactor 100 and may be normal to central axis 142. Bioreactor 100 may be rotated continuously in a single direction around rotational axis 144 in a clockwise or counterclockwise direction, in embodiments. Alternatively, bioreactor 100 may be rotated around rotational axis 144 in an alternating fashion, first clockwise, then counterclockwise, for example. In various embodiments, bioreactor 100 may also be rotated around rotational axis 144 and positioned in a horizontal or vertical orientation relative to gravity.


In embodiments, lateral rocking component 140 may be laterally associated with bioreactor 100. The plane of lateral rocking component 140 moves laterally in the −x and −y directions, in embodiments. The settling of cells in the bioreactor may be reduced by movement of cell-containing media within the hollow fibers, according to embodiments.


The rotational and/or lateral movement of a rocking device may reduce the settling of cells within the device and reduce the likelihood of cells becoming trapped within a portion of the bioreactor. The rate of cells settling in the cell growth chamber is proportional to the density difference between the cells and the suspension media, according to Stoke's Law. In some embodiments, a 180 degree rotation (fast) with a pause (having a total combined time of 30 seconds, for example) repeated as described above keeps non-adherent red blood cells suspended. A minimum rotation of about 180 degrees would be preferred in an embodiment; however, one could use rotation of up to 360 degrees or greater. Different rocking components may be used separately, or may be combined in any combination. For example, a rocking component that rotates bioreactor 100 around central axis 142 may be combined with the rocking component that rotates bioreactor 100 around axis 144. Likewise, clockwise and counterclockwise rotation around different axes may be performed independently in any combination.


Turning to FIG. 2, an embodiment of a cell expansion system 200 with a pre-mounted fluid conveyance assembly is shown in accordance with embodiments of the present disclosure. The CES 200 includes a cell expansion machine 202 that comprises a hatch or closable door 204 for engagement with a back portion 206 of the cell expansion machine 202. An interior space 208 within the cell expansion machine 202 includes features adapted for receiving and engaging a pre-mounted fluid conveyance assembly 210. The pre-mounted fluid conveyance assembly 210 is detachably-attachable to the cell expansion machine 202 to facilitate relatively quick exchange of a new or unused pre-mounted fluid conveyance assembly 210 at a cell expansion machine 202 for a used pre-mounted fluid conveyance assembly 210 at the same cell expansion machine 202. A single cell expansion machine 202 may be operated to grow or expand a first set of cells using a first pre-mounted fluid conveyance assembly 210 and, thereafter, may be used to grow or expand a second set of cells using a second pre-mounted fluid conveyance assembly 210 without needing to be sanitized between interchanging the first pre-mounted fluid conveyance assembly 210 for the second pre-mounted fluid conveyance assembly 210. The pre-mounted fluid conveyance assembly 210 includes a bioreactor 100 and an oxygenator or gas transfer module 212 (also see FIG. 4). Tubing guide slots are shown as 214 for receiving various media tubing connected to pre-mounted fluid conveyance assembly 210, according to embodiments.


Next, FIG. 3 illustrates the back portion 206 of cell expansion machine 202 prior to detachably-attaching a pre-mounted fluid conveyance assembly 210 (FIG. 2), in accordance with embodiments of the present disclosure. The closable door 204 (shown in FIG. 2) is omitted from FIG. 3. The back portion 206 of the cell expansion machine 202 includes a number of different structures for working in combination with elements of a pre-mounted fluid conveyance assembly 210. More particularly, the back portion 206 of the cell expansion machine 202 includes a plurality of peristaltic pumps for cooperating with pump loops on the pre-mounted fluid conveyance assembly 210, including the IC circulation pump 218, the EC circulation pump 220, the IC inlet pump 222, and the EC inlet pump 224. In addition, the back portion 206 of the cell expansion machine 202 includes a plurality of valves, including the IC circulation valve 226, the reagent valve 228, the IC media valve 230, the air removal valve 232, the cell inlet valve 234, the wash valve 236, the distribution valve 238, the EC media valve 240, the IC waste or outlet valve 242, the EC waste or outlet valve 244, and the harvest valve 246. Several sensors are also associated with the back portion 206 of the cell expansion machine 202, including the IC outlet pressure sensor 248, the combination IC inlet pressure and temperature sensors 250, the combination EC inlet pressure and temperature sensors 252, and the EC outlet pressure sensor 254. Also shown is an optical sensor 256 for an air removal chamber, according to an embodiment.


In accordance with embodiments, a shaft or rocker control 258 for rotating the bioreactor 100 is shown. Shaft fitting 260 associated with the shaft or rocker control 258 allows for proper alignment of a shaft access aperture, see e.g., 424 (FIG. 4) of a tubing-organizer, see e.g., 300 (FIG. 4) of a pre-mounted conveyance assembly 210 or 400 with the back portion 206 of the cell expansion machine 202. Rotation of shaft or rocker control 258 imparts rotational movement to shaft fitting 260 and bioreactor 100. Thus, when an operator or user of the CES 200 attaches a new or unused pre-mounted fluid conveyance assembly 400 (FIG. 4) to the cell expansion machine 202, the alignment is a relatively simple matter of properly orienting the shaft access aperture 424 (FIG. 4) of the pre-mounted fluid conveyance assembly 210 or 400 with the shaft fitting 260.


Turning to FIG. 4, a perspective view of a detachably-attachable pre-mounted fluid conveyance assembly 400 is shown. The pre-mounted fluid conveyance assembly 400 may be detachably-attachable to the cell expansion machine 202 (FIGS. 2 and 3) to facilitate relatively quick exchange of a new or unused pre-mounted fluid conveyance assembly 400 at a cell expansion machine 202 for a used pre-mounted fluid conveyance assembly 400 at the same cell expansion machine 202. As shown in FIG. 4, the bioreactor 100 may be attached to a bioreactor coupling that includes a shaft fitting 402. The shaft fitting 402 includes one or more shaft fastening mechanisms, such as a biased arm or spring member 404 for engaging a shaft, e.g., 258 (shown in FIG. 3), of the cell expansion machine 202.


According to embodiments, the pre-mounted fluid conveyance assembly 400 includes tubing 408A, 408B, 408C, 408D, 408E, etc., and various tubing fittings to provide the fluid paths shown in FIGS. 5 and 6, as described below. Pump loops 406A and 406B may also be provided for the pump(s). In embodiments, although the various media may be provided at the site where the cell expansion machine 202 is located, the pre-mounted fluid conveyance assembly 400 may include sufficient tubing length to extend to the exterior of the cell expansion machine 202 and to enable welded connections to tubing associated with media bag(s) or container(s), according to embodiments.


Next, FIG. 5 illustrates a schematic of an embodiment of a cell expansion system 500, and FIG. 6 illustrates a schematic of another embodiment of a cell expansion system 600. In the embodiments shown in FIGS. 5 and 6, and as described below, the cells are grown in the IC space. However, the disclosure is not limited to such examples and may in other embodiments provide for cells to be grown in the EC space.



FIG. 5 illustrates a CES 500, which includes first fluid circulation path 502 (also referred to as the “intracapillary loop” or “IC loop”) and second fluid circulation path 504 (also referred to as the “extracapillary loop” or “EC loop”), according to embodiments. First fluid flow path 506 may be fluidly associated with cell growth chamber 501 to form first fluid circulation path 502. Fluid flows into cell growth chamber 501 through IC inlet port 501A, through hollow fibers in cell growth chamber 501, and exits via IC outlet port 501B. Pressure gauge 510 measures the pressure of media leaving cell growth chamber 501. Media flows through IC circulation pump 512 which may be used to control the rate of media flow. IC circulation pump 512 may pump the fluid in a first direction or second direction opposite the first direction. Exit port 501B may be used as an inlet in the reverse direction. Media entering the IC loop may enter through valve 514. As those skilled in the art will appreciate, additional valves, pressure gauges, pressure/temperature sensors, ports, and/or other devices may be placed at various locations to isolate and/or measure characteristics of the media along portions of the fluid paths. Accordingly, it is to be understood that the schematic shown represents one possible configuration for various elements of the CES 500, and modifications to the schematic shown are within the scope of the one or more present embodiments.


With regard to the IC loop 502, samples of media may be obtained from sample port 516 or sample coil 518 during operation. Pressure/temperature gauge 520 disposed in first fluid circulation path 502 allows detection of media pressure and temperature during operation. Media then returns to IC inlet port 501A to complete fluid circulation path 502. Cells grown/expanded in cell growth chamber 501 may be flushed out of cell growth chamber 501 into harvest bag 599 through valve 598 or redistributed within the hollow fibers for further growth.


Fluid in second fluid circulation path 504 enters cell growth chamber 501 via EC inlet port 501C, and leaves cell growth chamber 501 via EC outlet port 501D. Media in the EC loop 504 may be in contact with the outside of the hollow fibers in the cell growth chamber 501, thereby allowing diffusion of small molecules into and out of the hollow fibers.


Pressure/temperature gauge 524 disposed in the second fluid circulation path 504 allows the pressure and temperature of media to be measured before the media enters the EC space of the cell growth chamber 501, according to an embodiment. Pressure gauge 526 allows the pressure of media in the second fluid circulation path 504 to be measured after it leaves the cell growth chamber 501. With regard to the EC loop, samples of media may be obtained from sample port 530 or a sample coil during operation.


In embodiments, after leaving EC outlet port 501D of cell growth chamber 501, fluid in second fluid circulation path 504 passes through EC circulation pump 528 to oxygenator or gas transfer module 532. EC circulation pump 528 may also pump the fluid in opposing directions. Second fluid flow path 522 may be fluidly associated with oxygenator or gas transfer module 532 via oxygenator inlet port 534 and oxygenator outlet port 536. In operation, fluid media flows into oxygenator or gas transfer module 532 via oxygenator inlet port 534, and exits oxygenator or gas transfer module 532 via oxygenator outlet port 536. Oxygenator or gas transfer module 532 adds oxygen to, and removes bubbles from, media in the CES 500, for example. In various embodiments, media in second fluid circulation path 504 may be in equilibrium with gas entering oxygenator or gas transfer module 532. The oxygenator or gas transfer module 532 may be any appropriately sized oxygenator or gas transfer device. Air or gas flows into oxygenator or gas transfer module 532 via filter 538 and out of oxygenator or gas transfer device 532 through filter 540. Filters 538 and 540 reduce or prevent contamination of oxygenator or gas transfer module 532 and associated media. Air or gas purged from the CES 500 during portions of a priming sequence may vent to the atmosphere via the oxygenator or gas transfer module 532.


In the configuration depicted for CES 500, fluid media in first fluid circulation path 502 and second fluid circulation path 504 flows through cell growth chamber 501 in the same direction (a co-current configuration). The CES 500 may also be configured to flow in a counter-current conformation.


In accordance with at least one embodiment, media, including cells (from bag 562), and fluid media from bag 546 may be introduced to first fluid circulation path 502 via first fluid flow path 506. Fluid container 562 (e.g., Cell Inlet Bag or Saline Priming Fluid for priming air out of the system) may be fluidly associated with the first fluid flow path 506 and the first fluid circulation path 502 via valve 564.


Fluid containers, or media bags, 544 (e.g., Reagent) and 546 (e.g., IC Media) may be fluidly associated with either first fluid inlet path 542 via valves 548 and 550, respectively, or second fluid inlet path 574 via valves 570 and 576. First and second sterile sealable input priming paths 508 and 509 are also provided. An air removal chamber (ARC) 556 may be fluidly associated with first circulation path 502. The air removal chamber 556 may include one or more ultrasonic sensors including an upper sensor and lower sensor to detect air, a lack of fluid, and/or a gas/fluid interface, e.g., an air/fluid interface, at certain measuring positions within the air removal chamber 556. For example, ultrasonic sensors may be used near the bottom and/or near the top of the air removal chamber 556 to detect air, fluid, and/or an air/fluid interface at these locations. Embodiments provide for the use of numerous other types of sensors without departing from the spirit and scope of the present disclosure. For example, optical sensors may be used in accordance with embodiments of the present disclosure. Air or gas purged from the CES 500 during portions of the priming sequence or other protocols may vent to the atmosphere out air valve 560 via line 558 that may be fluidly associated with air removal chamber 556.


EC media (e.g., from bag 568) or wash solution (e.g., from bag 566) may be added to either the first or second fluid flow paths. Fluid container 566 may be fluidly associated with valve 570 that may be fluidly associated with first fluid circulation path 502 via distribution valve 572 and first fluid inlet path 542. Alternatively, fluid container 566 may be fluidly associated with second fluid circulation path 504 via second fluid inlet path 574 and EC inlet path 584 by opening valve 570 and closing distribution valve 572. Likewise, fluid container 568 may be fluidly associated with valve 576 that may be fluidly associated with first fluid circulation path 502 via first fluid inlet path 542 and distribution valve 572. Alternatively, fluid container 568 may be fluidly associated with second fluid inlet path 574 by opening valve 576 and closing distribution valve 572.


An optional heat exchanger 552 may be provided for media reagent or wash solution introduction.


In the IC loop, fluid may be initially advanced by the IC inlet pump 554. In the EC loop, fluid may be initially advanced by the EC inlet pump 578. An air detector 580, such as an ultrasonic sensor, may also be associated with the EC inlet path 584.


In at least one embodiment, first and second fluid circulation paths 502 and 504 are connected to waste or outlet line 588. When valve 590 is opened, IC media may flow through waste line 588 and to waste or outlet bag 586. Likewise, when valve 582 is opened, EC media may flow through waste line 588 to waste or outlet bag 586.


In embodiments, cells may be harvested via cell harvest path 596. Here, cells from cell growth chamber 501 may be harvested by pumping the IC media containing the cells through cell harvest path 596 and valve 598 to cell harvest bag 599.


Various components of the CES 500 may be contained or housed within a machine or housing, such as cell expansion machine 202 (FIGS. 2 and 3), wherein the machine maintains cells and media, for example, at a predetermined temperature.


Turning to FIG. 6, a schematic of another embodiment of a cell expansion system 600 is shown. CES 600 includes a first fluid circulation path 602 (also referred to as the “intracapillary loop” or “IC loop”) and second fluid circulation path 604 (also referred to as the “extracapillary loop” or “EC loop”). First fluid flow path 606 may be fluidly associated with cell growth chamber 601 to form first fluid circulation path 602. Fluid flows into cell growth chamber 601 through IC inlet port 601A, through hollow fibers in cell growth chamber 601, and exits via IC outlet port 601B. Pressure sensor 610 measures the pressure of media leaving cell growth chamber 601. In addition to pressure, sensor 610 may, in embodiments, also be a temperature sensor that detects the media pressure and temperature during operation. Media flows through IC circulation pump 612 which may be used to control the rate of media flow. IC circulation pump 612 may pump the fluid in a first direction or second direction opposite the first direction. Exit port 601B may be used as an inlet in the reverse direction. Media entering the IC loop may enter through valve 614. As those skilled in the art will appreciate, additional valves, pressure gauges, pressure/temperature sensors, ports, and/or other devices may be placed at various locations to isolate and/or measure characteristics of the media along portions of the fluid paths. Accordingly, it is to be understood that the schematic shown represents one possible configuration for various elements of the CES 600, and modifications to the schematic shown are within the scope of the one or more present embodiments.


With regard to the IC loop, samples of media may be obtained from sample coil 618 during operation. Media then returns to IC inlet port 601A to complete fluid circulation path 602. Cells grown/expanded in cell growth chamber 601 may be flushed out of cell growth chamber 601 into harvest bag 699 through valve 698 and line 697. Alternatively, when valve 698 is closed, the cells may be redistributed within chamber 601 for further growth.


Fluid in second fluid circulation path 604 enters cell growth chamber 601 via EC inlet port 601C and leaves cell growth chamber 601 via EC outlet port 601D. Media in the EC loop may be in contact with the outside of the hollow fibers in the cell growth chamber 601, thereby allowing diffusion of small molecules into and out of the hollow fibers that may be within chamber 601, according to an embodiment.


Pressure/temperature sensor 624 disposed in the second fluid circulation path 604 allows the pressure and temperature of media to be measured before the media enters the EC space of the cell growth chamber 601. Sensor 626 allows the pressure and/or temperature of media in the second fluid circulation path 604 to be measured after it leaves the cell growth chamber 601. With regard to the EC loop, samples of media may be obtained from sample port 630 or a sample coil during operation.


After leaving EC outlet port 601D of cell growth chamber 601, fluid in second fluid circulation path 604 passes through EC circulation pump 628 to oxygenator or gas transfer module 632. EC circulation pump 628 may also pump the fluid in opposing directions, according to embodiments. Second fluid flow path 622 may be fluidly associated with oxygenator or gas transfer module 632 via an inlet port 632A and an outlet port 632B of oxygenator or gas transfer module 632. In operation, fluid media flows into oxygenator or gas transfer module 632 via inlet port 632A, and exits oxygenator or gas transfer module 632 via outlet port 632B. Oxygenator or gas transfer module 632 adds oxygen to, and removes bubbles from, media in the CES 600, for example. In various embodiments, media in second fluid circulation path 604 may be in equilibrium with gas entering oxygenator or gas transfer module 632. The oxygenator or gas transfer module 632 may be any appropriately sized device useful for oxygenation or gas transfer. Air or gas flows into oxygenator or gas transfer module 632 via filter 638 and out of oxygenator or gas transfer device 632 through filter 640. Filters 638 and 640 reduce or prevent contamination of oxygenator or gas transfer module 632 and associated media. Air or gas purged from the CES 600 during portions of a priming sequence may vent to the atmosphere via the oxygenator or gas transfer module 632.


In the configuration depicted for CES 600, fluid media in first fluid circulation path 602 and second fluid circulation path 604 flows through cell growth chamber 601 in the same direction (a co-current configuration). The CES 600 may also be configured to flow in a counter-current conformation, according to embodiments.


In accordance with at least one embodiment, media, including cells (from a source such as a cell container, e.g., a bag) may be attached at attachment point 662, and fluid media from a media source may be attached at attachment point 646. The cells and media may be introduced into first fluid circulation path 602 via first fluid flow path 606. Attachment point 662 may be fluidly associated with the first fluid flow path 606 via valve 664, and attachment point 646 may be fluidly associated with the first fluid flow path 606 via valve 650. A reagent source may be fluidly connected to point 644 and be associated with fluid inlet path 642 via valve 648, or second fluid inlet path 674 via valves 648 and 672.


Air removal chamber (ARC) 656 may be fluidly associated with first circulation path 602. The air removal chamber 656 may include one or more sensors including an upper sensor and lower sensor to detect air, a lack of fluid, and/or a gas/fluid interface, e.g., an air/fluid interface, at certain measuring positions within the air removal chamber 656. For example, ultrasonic sensors may be used near the bottom and/or near the top of the air removal chamber 656 to detect air, fluid, and/or an air/fluid interface at these locations. Embodiments provide for the use of numerous other types of sensors without departing from the spirit and scope of the present disclosure. For example, optical sensors may be used in accordance with embodiments of the present disclosure. Air or gas purged from the CES 600 during portions of a priming sequence or other protocol(s) may vent to the atmosphere out air valve 660 via line 658 that may be fluidly associated with air removal chamber 656.


An EC media source may be attached to EC media attachment point 668, and a wash solution source may be attached to wash solution attachment point 666, to add EC media and/or wash solution to either the first or second fluid flow path. Attachment point 666 may be fluidly associated with valve 670 that may be fluidly associated with first fluid circulation path 602 via valve 672 and first fluid inlet path 642. Alternatively, attachment point 666 may be fluidly associated with second fluid circulation path 604 via second fluid inlet path 674 and second fluid flow path 684 by opening valve 670 and closing valve 672. Likewise, attachment point 668 may be fluidly associated with valve 676 that may be fluidly associated with first fluid circulation path 602 via first fluid inlet path 642 and valve 672. Alternatively, fluid container 668 may be fluidly associated with second fluid inlet path 674 by opening valve 676 and closing distribution valve 672.


In the IC loop, fluid may be initially advanced by the IC inlet pump 654. In the EC loop, fluid may be initially advanced by the EC inlet pump 678. An air detector 680, such as an ultrasonic sensor, may also be associated with the EC inlet path 684.


In at least one embodiment, first and second fluid circulation paths 602 and 604 are connected to waste or outlet line 688. When valve 690 is opened, IC media may flow through waste line 688 and to waste or outlet bag 686. Likewise, when valve 692 is opened, EC media may flow to waste or outlet bag 686.


After cells have been grown in cell growth chamber 601, they may be harvested via cell harvest path 697. Here, cells from cell growth chamber 601 may be harvested by pumping the IC media containing the cells through cell harvest path 697, with valve 698 open, into cell harvest bag 699.


Various components of the CES 600 may be contained or housed within a machine or housing, such as cell expansion machine 202 (FIGS. 2 and 3), wherein the machine maintains cells and media, for example, at a predetermined temperature. It is further noted that, in embodiments, components of CES 600 and CES 500 (FIG. 5) may be combined. In other embodiments, a CES may include fewer or additional components than those shown in FIGS. 5 and 6 and still be within the scope of the present disclosure. An example of a cell expansion system that may incorporate features of the present disclosure is the QUANTUM® Cell Expansion System (the “QUANTUM® System”), manufactured by Terumo BCT, Inc. in Lakewood, Colo.


Examples and further description of cell expansion systems are provided in U.S. patent application Ser. No. 12/042,798 (U.S. Pat. No. 8,309,347), entitled, “Cell Expansion System and Methods of Use,” issued on Nov. 13, 2012, which is hereby incorporated by reference herein in its entirety for all that it teaches and for all purposes.


While various example embodiments of a cell expansion system and methods associated therewith have been described, FIG. 7 illustrates example operational steps 700 of a process for applying an agent to a cell growth surface that may be used with a cell expansion system, such as CES 500 (FIG. 5) or CES 600 (FIG. 6), in accordance with embodiments of the present disclosure. FIG. 7 will be described in conjunction with example settings and media introduction. However, the embodiments presented herein are not limited to this example; rather, the embodiments can be modified to meet other system designs or configurations. START operation is initiated 702, and process 700 proceeds to load the disposable tubing set 704 onto the cell expansion system. Next, the system may be primed 706. In an embodiment, a user or an operator, for example, may provide an instruction to the system to prime by selecting a task for priming, for example. In an embodiment, such task for priming may be a pre-programmed task. The system 500 (FIG. 5) or 600 (FIG. 6) may be primed, for example, with phosphate-buffered saline (PBS). To prime the bioreactor 501, 601, a bag (e.g., 546) may be attached (for example, to connection point 646) to the system 500, 600. When referring to numerals in the Figures, for example, such as “Numeral, Numeral” (e.g., 500, 600), such nomenclature can mean “Numeral and/or Numeral” (e.g., 500 and/or 600). Valve 550, 650 may be opened. The PBS can then be directed into the first fluid circulation path 502, 602 by the IC inlet pump 554, 654 set to pump the PBS into the first fluid circulation path 502, 602. Valve 514, 614 may be opened while the PBS enters the bioreactor 501, 601 through the inlet 501A, 601A and out the outlet 501B, 601B. Once the bioreactor 501, 601 and/or the first fluid circulation path 502, 602 have media therein with air removed by the air removal chamber 556, 656, the bioreactor 501, 601 is primed, according to an embodiment.


In an embodiment, to further prime the bioreactor 501, 601, a bag (e.g., 568) may be attached (for example, to connection point 668) to the system 500, 600. Valve 576, 676 may be opened. A media, e.g., PBS, can then be directed into the second fluid circulation path 504, 604 by the EC inlet pump 578, 678 set to pump the media into the second fluid circulation path 504, 604. Valve 582, 692 may be closed while the media enters the bioreactor 501, 601 through the inlet 501C, 601C and out the outlet 501D, 601D of the EC loop. Once the bioreactor 501, 601 and/or the second fluid circulation path 504, 604 have media therein with air removed, e.g., by an air removal chamber, the bioreactor 501, 601 is primed, according to an embodiment.


Process 700 then proceeds to coat the cell growth surface, e.g., bioreactor 501, 601, in step 708, in which the cell growth surface may be coated with a coating agent or reagent. Any coating agent(s) or reagent(s), such as fibronectin or cryoprecipitate, for example, understood by those of skill in the art may be used. In embodiments, any combination of coating agent(s) or reagent(s) may be used. In an embodiment, an outlet or waste valve 590, 690 to one of the circulation loops, e.g., IC loop 502, 602, may be closed, while the outlet or waste valve 582, 692 to the other circulation loop, e.g., EC loop 504, 604, may be opened or remains open. For example, the IC waste or outlet valve 590, 690 may be closed while the EC waste or outlet valve 582, 692 is open. In embodiments, a coating agent or reagent may be loaded into a circulation loop, e.g., IC loop 502, 602, of the cell expansion system 500, 600 until the reagent bag (e.g., 544) or container is empty. Next, the reagent may be chased from an air removal chamber 556, 656 into the circulation loop, e.g., IC loop 502, 602. The bioreactor 501, 601, e.g., cell growth surface of hollow fibers where a hollow fiber bioreactor is used, may then be coated by controlling the fluid movement in the bioreactor 501, 601. In embodiments, such control of the fluid movement uses ultrafiltration, e.g., positive ultrafiltration, to move fluid from one side (e.g., the IC side 502, 602) of the bioreactor 501, 601 to the other side (e.g., the EC side 504, 604). For example, where the IC outlet or waste valve 590, 690 may be closed, with the EC outlet or waste valve open 582, 692, a fluid in the bioreactor 501, 601 may have no pathway but through the pores of the fibers (IC outlet valve 590, 690 closed). In an embodiment, the IC inlet rate may be set to wash the IC side 502, 602 with media or a fluid, such as phosphate buffered saline (PBS), for example. Accordingly, the solution may then flow through the pores of the fibers from the IC side 502, 602 to the EC side 504, 604. The coating agent, e.g., CPPT, may be hydrostatically deposited onto the wall(s), e.g., inner wall(s), of the bioreactor fiber for a defined time period. For example, such time period may be about ten (10) minutes, according to an embodiment. Other time periods may apply according to other embodiments of the present disclosure. Such membrane ultrafiltration method allows adherence promoting proteins to be physisorbed on the bioreactor fibers as the solution flows through the pores of the fiber from the IC side 502, 602 to the EC side 504, 604.


An example of the solutions being introduced to the system 500, 600 to coat the bioreactor may be as shown below:











TABLE 1







Volume




(estimation based on


Bag (Connection Point)
Solution in Bag
factory default values)







Cell Inlet 562 (662)
None
N/A


Reagent 544 (644)
Reagent (e.g.,
e.g., 6-25 mL CPPT in 100



CPPT or
mL total volume w/PBS



Fibronectin)


IC Media 546 (646)
None
N/A


Wash 566 (666)
PBS
1 L


EC Media 568 (668)
None
N/A









The coating of the bioreactor may occur in three stages. An example of the settings for the system 500, 600 for the first stage of introducing the solution(s) above may be as shown below:










TABLE 2





Component
Setting







IC Inlet valve configuration
Reagent (e.g., valves 548, 648,



514, 614 open)


IC Inlet Rate for Pump 554, 654
10 mL/min


IC Circulation Rate for Pump
100 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
 0 mL/min


EC Circulation Rate for Pump
30 mL/min


528, 628


Outlet valve configuration
EC Outlet (e.g., valve 582, 692 open)


Rocker Control
Stationary (0°)


Stop Condition
Empty Bag for bag 544









An example of the settings for the system 500, 600 for the second stage of coating the bioreactor, which chases or washes reagent from the air removal chamber 556, 656, may be as shown below:










TABLE 3





Component
Setting







IC Inlet valve configuration
Wash (e.g., valves 570, 670, 572,



672, 514, 614, 560, 660 open)


IC Inlet Rate for Pump 554, 654
10 mL/min


IC Circulation Rate for Pump
100 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
 0 mL/min


EC Circulation Rate for Pump
30 mL/min


528, 628


Outlet valve configuration
EC Outlet (e.g., valve 582, 692 open)


Rocker Control
Stationary (0°)


Stop Condition
IC Volume (e.g., 22 mL)









An example of the settings for the system 500, 600 for the third stage of coating the bioreactor, which causes ultrafiltration from the IC side 502, 602 to the EC side 504, 604, for example, may be as shown below:










TABLE 4





Component
Setting







IC Inlet valve configuration
Wash (e.g., valves 570, 670, 572,



672, 514, 614 open)









IC Inlet Rate for Pump 554, 654
50
mL/min


IC Circulation Rate for Pump
−25
mL/min


512, 612








EC Inlet valve configuration
Wash









EC Inlet Rate for Pump 578, 678
0.1
mL/min


EC Circulation Rate for Pump
30
mL/min


528, 628








Outlet valve configuration
EC Outlet (e.g., valve 582, 692 open)


Rocker Control
Stationary (0°)









Stop Condition
10
Min









In an embodiment, such active promoting of the coating agent to a cell growth surface, as described above, may significantly decrease the amount of time to coat the cell growth surface as compared to other methods of coating a cell growth surface. In embodiments, such coating procedure using ultrafiltration may be referred to as an expedited coating procedure. Such expedited coating procedure using active moving of the coating agent to the cell growth surface(s) through ultrafiltration may use less time to coat the cell growth surface than procedures using passive coating procedures which may take overnight or about twelve (12) hours to about sixteen (16) hours to coat the bioreactor. For example, such expedited coating procedure may take less than or equal to about four (4) hours. In embodiments, such expedited coating procedure may take any time period in a range from above or equal to about five (5) minutes to less than or equal to about sixty (60) minutes, or any other range therein, depending on the procedure. For example, such coating procedure may take less than or equal to about ten (10) minutes, less than or equal to about twelve (12) minutes, less than or equal to about fifteen (15) minutes, less than or equal to about twenty (20) minutes, less than or equal to about thirty (30) minutes, less than or equal to about forty-five (45) minutes, less than or equal to about sixty (60) minutes, etc. As described above, passive coating procedures may take about sixteen (16) hours to coat the bioreactor, for example. A significant time savings may be realized by using ultrafiltration for coating the bioreactor.


Returning to FIG. 7, once the bioreactor is coated, the IC/EC Washout task may be performed in step 710, in which fluid on the IC circulation loop 502, 602 and on the EC circulation loop 504, 604 may be replaced. The replacement volume may be determined by the number of IC Volumes and EC Volumes exchanged. An example of the solutions being introduced to the system 500, 600 during the IC/EC Washout task may be as shown below:











TABLE 5







Volume




(estimation based on


Bag (Connection Point)
Solution in Bag
factory default values)







Cell Inlet 562 (662)
None
N/A


Reagent 544 (644)
None
N/A


IC Media 546 (646)
Media with
1.4 L



Protein


Wash 566 (666)
None
N/A


EC Media 568 (668)
None
N/A









An example of the settings for an IC/EC Washout task of the system 500, 600 may be as shown below:










TABLE 6





Component
Setting







IC Inlet valve configuration
IC Media (e.g., valves 550, 650,



514, 614 open)


IC Inlet Rate for Pump 554, 654
100 mL/min


IC Circulation Rate for Pump
−17 mL/min


512, 612


EC Inlet valve configuration
IC Media (e.g., valves 550, 650,



572, 672 open)


EC Inlet Rate for Pump 578, 678
148 mL/min


EC Circulation Rate for Pump
−1.7 mL/min 


528, 628


Outlet valve configuration
IC and EC Outlet (e.g., valves 590,



690 and 582, 692 open)


Rocker Control
In Motion



(−90°, 180°, in 1 sec intervals)


Stop Condition
Exchange (2.5 IC Volumes;



2.5 EC Volumes)









Next, to maintain the proper or desired gas concentration across the fibers in the bioreactor membrane, the condition media task 712 may be executed to allow the media to reach equilibrium with the provided gas supply before cells are loaded into the bioreactor. For example, rapid contact between the media and the gas supply provided by the gas transfer module or oxygenator 532, 632 may be provided by using a high EC circulation rate. The system 500, 600 may then be maintained in a proper or desired state until a user or operator, for example, is ready to load cells into the bioreactor 501, 601. In an embodiment, the system 500, 600 may be conditioned with complete media, for example. Complete media may be any media source used for cell growth. In an embodiment, complete media may comprise alpha-MEM (a-MEM) and fetal bovine serum (FBS), for example. Any type of media known to those of skill in the art may be used.


The condition media task 712 may be a two-step process where, in the first step, the system 500, 600 provides rapid contact between the media and the gas supply by using a high EC circulation rate.


In the second step, the system 500, 600 maintains the bioreactor 501, 601 in a proper state until an operator, for example, is ready to load the cells. An example of the solutions being introduced to the system 500, 600 during the condition media task 712 may be as shown below.


While an example media is shown in Table 7, any type of media known to those of skill in the art may be used.











TABLE 7







Volume




(estimation based on


Bag (Connection Point)
Solution in Bag
factory default values)







Cell Inlet 562 (662)
None
N/A


Reagent 544 (644)
None
N/A


IC Media 546 (646)
None
N/A


Wash 566 (666)
None
N/A


EC Media 568 (668)
Media with
0.1 L plus 6 mL/hour



Protein (e.g.,



αMEM with



GlutaMAX



plus 10% FBS)









An example of the settings for a first step of the condition media task 712 may be as shown below:












TABLE 8







Component
Setting









IC Inlet valve configuration
None



IC Inlet Rate for Pump 554, 654
 0 mL/min



IC Circulation Rate for Pump
100 mL/min



512, 612



EC Inlet valve configuration
EC Media (and/or IC Media)




(e.g., valve 576, 676 open)



EC Inlet Rate for Pump 578, 678
 0.1 mL/min



EC Circulation Rate for Pump
250 mL/min



528, 628



Outlet valve configuration
EC Outlet (e.g., valve 582,




692 open)



Rocker Control
Stationary



Stop Condition
Time (e.g., 10 min)










An example of the settings for a second step of the condition media task 712 may be as shown below:












TABLE 9







Component
Setting









IC Inlet valve configuration
None



IC Inlet Rate for Pump 554, 654
 0 mL/min



IC Circulation Rate for Pump
100 mL/min 



512, 612



EC Inlet valve configuration
EC Media (and/or IC Media)




(e.g., valve 576, 676 open)



EC Inlet Rate for Pump 578, 678
0.1 mL/min 



EC Circulation Rate for Pump
30 mL/min



528, 628



Outlet valve configuration
EC Outlet (e.g., valve 582,




692 open)



Rocker Control
Stationary



Stop Condition
Manual










Process 700 next proceeds to loading cells 714 into the bioreactor 501, 601 from a cell inlet bag 562 (at connection point 662), for example. In an embodiment, the cells are loaded with uniform suspension 714. In an embodiment, the cells may be loaded into the bioreactor 501, 601 from the cell inlet bag 562 (at connection point 662) until the bag 562 is empty. Cells may then be chased or washed from the air removal chamber 556, 656 to the bioreactor 501, 601, according to an embodiment. In embodiments that utilize larger chase volumes, cells may be spread and move toward the IC outlet port 501B, 601B. The distribution of cells may be promoted across the membrane via IC circulation, such as through an IC circulation pump 512, 612, with no IC inlet, for example. Examples and further description of loading and distributing cells are provided in U.S. patent application Ser. No. 13/971,500 (U.S. Pat. No. 9,175,259), entitled, “Method of Loading and Distributing Cells in a Bioreactor of a Cell Expansion System,” issued Nov. 3, 2015, which is hereby incorporated by reference herein in its entirety for all that it teaches and for all purposes.


In another embodiment, the cells may be loaded 714 using another type of cell loading, such as a high flux cell load. In yet another embodiment, the cells may be loaded 714 using another type of loading, such as a bulls-eye cell loading technique. Examples and further description of bulls-eye cell loading procedure(s) are provided in U.S. patent application Ser. No. 14/542,276 (U.S. Pat. No. 9,617,506), entitled, “Expanding Cells in a Bioreactor,” issued on Apr. 11, 2017, which is hereby incorporated by reference herein in its entirety for all that it teaches and for all purposes.


An example of the solutions being introduced to the system 500, 600 to load cells 714 may be as shown below:











TABLE 10







Volume




(estimation based on


Bag (Connection Point)
Solution in Bag
factory default values)







Cell Inlet 562 (662)
Cells
Cells (e.g., mesenchymal




stem cells (MSC)) in




100 mL complete media


Reagent 544 (644)
None
N/A


IC Media 546 (646)
Media with
0.1 L



Protein


Wash 566 (666)
None
N/A


EC Media 568 (668)
None
N/A









The loading of cells 714 may occur in stages. An example of the settings for the system 500, 600 for an example first stage may be as shown below:










TABLE 11





Component
Setting







IC Inlet valve configuration
Cell Inlet (e.g., valves 564,



664, 514, 614 open)


IC Inlet Rate for Pump 554, 654
50 mL/min


IC Circulation Rate for Pump
200 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
 0 mL/min


EC Circulation Rate for Pump
30 mL/min


528, 628


Outlet valve configuration
EC Outlet (e.g., valve 582, 692 open)


Rocker Control
In Motion (−90°, 180°, in



1 sec intervals)


Stop Condition
ARC stop









An example of the settings for the system 500, 600 for an example second stage may be as shown below:










TABLE 12





Component
Setting







IC Inlet valve configuration
IC Media (e.g., valves 550,



650, 514, 614 open)


IC Inlet Rate for Pump 554, 654
50 mL/min


IC Circulation Rate for Pump
200 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
 0 mL/min


EC Circulation Rate for Pump
30 mL/min


528, 628


Outlet valve configuration
EC Outlet (e.g., valve 582, 692 open)


Rocker Control
In Motion (−90°, 180°, in



1 sec intervals)


Stop Condition
IC Volume (e.g., 22 mL)









An example of the settings for the system 500, 600 for an example third stage may be as shown below:










TABLE 13





Component
Setting







IC Inlet valve configuration
None


IC Inlet Rate for Pump 554, 654
0 mL/min


IC Circulation Rate for Pump
200 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
0 mL/min


EC Circulation Rate for Pump
30 mL/min 


528, 628


Outlet valve configuration
EC Outlet (e.g., valve 582, 692 open)


Rocker Control
In Motion (−90°, 180°, in



1 sec intervals)


Stop Condition
Time (2.0 Min)









Further, the cells, e.g., adherent cells, may be allowed to attach 716 to the hollow fibers. In an embodiment, in allowing the cells to attach 716, adherent cells are enabled to attach to the bioreactor membrane while allowing flow on the EC circulation loop 504, 604, with the pump (e.g., 512, 612, 554, 654) flow rate to the IC loop 502, 602 set to zero. An example of the solutions being introduced to the system 500, 600 during the process of cells attaching to the membrane 716 may be as shown below:











TABLE 14







Volume




(estimation based on


Bag (Connection Point)
Solution in Bag
factory default values)







Cell Inlet 562 (662)
None
N/A


Reagent 544 (644)
None
N/A


IC Media 546 (646)
Media with
6 mL/hour



Protein


Wash 566 (666)
None
N/A


EC Media 568 (668)
None
N/A









An example of the settings for attaching to the membrane 716 in the system 500, 600 may be as shown below:










TABLE 15





Component
Setting







IC Inlet valve configuration
None


IC Inlet Rate for Pump 554, 654
0 mL/min


IC Circulation Rate for Pump
0 mL/min


512, 612


EC Inlet valve configuration
IC Media (e.g., valves 550, 650,



572, 672 open)


EC Inlet Rate for Pump 578, 678
0.1 mL/min


EC Circulation Rate for Pump
30 mL/min 


528, 628


Outlet valve configuration
EC Outlet (e.g., valve 582, 692 open)


Rocker Control
Stationary (at 180°)


Stop Condition
Manual









Next, the cells may be fed in step 718, in which a flow rate, e.g., low flow rate in an embodiment, is continuously added to the IC circulation loop 502, 602 and/or the EC circulation loop 504, 604. In an embodiment, the cells may be fed with media, such as media with protein, for example. Outlet settings allow for the removal of fluid added to the system, in accordance with embodiments. An example of the solutions being introduced to the system 500, 600 during the feed step 718 may be as shown below:











TABLE 16







Volume




(estimation based on


Bag (Connection Point)
Solution in Bag
factory default values)







Cell Inlet 562 (662)
None
N/A


Reagent 544 (644)
None
N/A


IC Media 546 (646)
Media with
6 mL/hour



Protein


Wash 566 (666)
None
N/A


EC Media 568 (668)
None
N/A









An example of the settings for the feed step 718 in the system 500, 600 may be as shown below:










TABLE 17





Component
Setting







IC Inlet valve configuration
IC Media (e.g., valves 550,



650, 514, 614 open)


IC Inlet Rate for Pump 554, 654
0.1 mL/min 


IC Circulation Rate for Pump
20 mL/min


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
 0 mL/min


EC Circulation Rate for Pump
30 mL/min


528, 628


Outlet valve configuration
IC Outlet (e.g., valve 590, 690 open)


Rocker Control
Stationary (at 0°)


Stop Condition
Manual









When it is determined to harvest the expanded cells, such as after the cells have reached confluence, after a defined period of time, according to user preference, etc., process 700 proceeds to release cells 720, in which the cells may be released from the membrane of the bioreactor 501, 601 and may be suspended in the IC loop 502, 602. Following the release of any adherent cells, harvest operation 722 transfers the cells in suspension from the IC circulation loop 502, 602, including any cells remaining in the bioreactor 501, 601, to a harvest bag 599, 699 or other container. Process 700 then terminates at END operation 724.


The releasing of cells 720 and harvesting of those cells 722 may be a five-step process, according to embodiments. An example of the solutions being introduced to the system 500, 600 during the release/harvest steps 720, 722 may be as shown below:











TABLE 18







Volume




(estimation based on


Bag (Connection Point)
Solution in Bag
factory default values)







Cell Inlet 562 (662)
None
N/A










Reagent 544 (644)
Trypsin
180
mL


IC Media 546 (646)
Media with
0.6
L



Protein


Wash 566 (666)
PBS
1.4
L









EC Media 568 (668)
None
N/A









A first step in the releasing of cells 720 may perform an IC/EC Washout task in preparation for adding a reagent. For example, IC/EC media may be replaced with a phosphate buffered saline (PBS) to remove protein, calcium (Ca2+), and magnesium (Mg2+) in preparation for adding trypsin, or another chemical-releasing agent, to release any adherent cells. An example of the settings for an example first step of the release step 720 with the system 500, 600 may be as shown below:










TABLE 19





Component
Setting







IC Inlet valve configuration
Wash (e.g., valves 570, 670,



572, 672, 514, 614 open)


IC Inlet Rate for Pump 554, 654
100 mL/min


IC Circulation Rate for Pump
−17 mL/min


512, 612


EC Inlet valve configuration
Wash


EC Inlet Rate for Pump 578, 678
148 mL/min


EC Circulation Rate for Pump
−1.7 mL/min 


528, 628


Outlet valve configuration
IC Outlet (e.g., valve 590,



690 open) and EC outlet (e.g.,



valve 582, 692 open)


Rocker Control
In Motion (−90°, 180°,



1 second interval)


Stop Condition
Exchange (2.5 IC volumes; 2.5



EC volumes)









A second step of the releasing cell process 720 includes loading a reagent into the system 500, 600 until the reagent bag 544 is empty. An example of the settings for an example second step of the release step 720 with the system 500, 600 may be as shown below:










TABLE 20





Component
Setting







IC Inlet valve configuration
Reagent (e.g., valves 548,



648, 514, 614 open)


IC Inlet Rate for Pump 554, 654
50 mL/min


IC Circulation Rate for Pump
300 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
 0 mL/min


EC Circulation Rate for Pump
30 mL/min


528, 628


Outlet valve configuration
EC outlet (e.g., valve 582, 692 open)


Rocker Control
In Motion (−90°, 180°,



1 second interval)


Stop Condition
Empty Bag (Reagent Bag 544 empty)









A third step in the releasing cell process can chase the reagent into the IC loop 502, 602. An example of the settings for an example third step of the release step 720 with the system 500, 600 may be as shown below:










TABLE 21





Component
Setting







IC Inlet valve configuration
Wash (e.g., valves 570, 670,



572, 672, 514, 614 open)


IC Inlet Rate for Pump 554, 654
50 mL/min


IC Circulation Rate for Pump
300 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
 0 mL/min


EC Circulation Rate for Pump
30 mL/min


528, 628


Outlet valve configuration
EC outlet (e.g., valve 582, 692 open)


Rocker Control
In Motion (−90°, 180°,



1 second interval)


Stop Condition
IC Volume (22 mL)









A fourth step in the releasing cell process 720 can mix the reagent within the IC loop 502, 602. An example of the settings for an example fourth step of the release step 720 with the system 500, 600 may be as shown below:










TABLE 22





Component
Setting







IC Inlet valve configuration
None


IC Inlet Rate for Pump 554, 654
0 mL/min


IC Circulation Rate for Pump
300 mL/min 


512, 612


EC Inlet valve configuration
None


EC Inlet Rate for Pump 578, 678
0 mL/min


EC Circulation Rate for Pump
30 mL/min 


528, 628


Outlet valve configuration
EC outlet (e.g., valve 582, 692 open)


Rocker Control
In Motion (−90°, 180°,



1 second interval)


Stop Condition
Time (4 Minutes)









An example of the settings for an example fifth step, which may generally be a harvest step 722, with the system 500, 600 may be as shown below:










TABLE 23





Component
Setting







IC Inlet valve configuration
IC Media (e.g., valves 550,



650, 514, 614 open)


IC Inlet Rate for Pump 554, 654
400 mL/min


IC Circulation Rate for Pump
−70 mL/min


512, 612


EC Inlet valve configuration
IC Media (e.g., valves 550,



650, 572, 672 open)


EC Inlet Rate for Pump 578, 678
 60 mL/min


EC Circulation Rate for Pump
 30 mL/min


528, 628


Outlet valve configuration
Harvest (e.g., valve 598, 698 open)


Rocker Control
In Motion (−90°, 180°,



1 second interval)


Stop Condition
IC Volume (378 mL)









As described above, following release step 720 and harvest step 722, process 700 terminates at END operation 724.


Turning to FIG. 8A, example operational steps 800 of a process for applying an agent or reagent to a cell growth surface that may be used with a cell expansion system, such as CES 500 (FIG. 5) or CES 600 (FIG. 6), are provided in accordance with embodiments of the present disclosure. START operation is initiated 802, and process 800 proceeds to load a reagent, or coating agent, 804 into a circulation loop, e.g., IC loop 502, 602, of a cell expansion system 500, 600. In an embodiment, such loading proceeds until a bag (e.g., 544) or container including the reagent or coating agent is empty. In another embodiment, such loading proceeds for a defined period of time or other condition as understood by a person of skill in the art. Example parameters 822 and 828 for such loading step 804 may be found in FIG. 8C, in which Table 821 provides example parameters or settings 828 for various steps 822, 824, and 826 of applying an agent to a cell growth surface in accordance with an embodiment of the present disclosure. Such example parameters or settings 828 include an example IC inlet of about 100 mL SDE CPPT, as an example coating solution. In an embodiment, CPPT may be prepared so as to create about 25 mL “single donor equivalent (SDE)” aliquots: (1) unprocessed CPPT may be obtained from a blood center; (2) CPPT may be diluted in PBS to a final volume of about 100 mL for every donor represented by the product (e.g.: 5 donors for CPPT product=about 500 mL of total solution); (3) this stock solution may be divided into about 25 mL aliquots. In an embodiment, each aliquot may be sufficient to coat one cell expansion system, e.g., QUANTUM System®, bioreactor, for example. Other volumes and/or proportions may be used in accordance with embodiments of the present disclosure.


In an embodiment, prior to loading such reagent or coating agent, an outlet or waste valve 590, 690 to one of the circulation loops, e.g., IC loop 502, 602, may be closed, while the outlet or waste valve 582, 692 to the other circulation loop, e.g., EC loop 504, 604, remains open. For example, the IC waste or outlet valve 590, 690 may be closed while the EC waste or outlet valve 582, 692 may be open, according to an embodiment. In another embodiment, such closing of an outlet or waste valve, e.g., IC waste or outlet valve 590, 690, while keeping another outlet or waste valve, e.g., EC waste or outlet valve 582, 692, open may occur after loading the reagent into the circulation loop 502, 602. In other embodiments, other types of fluid flow control device(s) to control fluid movement may be used as understood by a person of skill in the art.


Next, the reagent may be chased or washed 806 from an air removal chamber 556, 656 into the circulation loop, e.g., IC loop 502, 602. Example parameters 824 and 828 for such chase step 806 may be found in FIG. 8C.


The cell growth surface of the bioreactor 501, 601, e.g., cell growth surface of hollow fibers where a hollow fiber bioreactor is used, may then be coated 808 by controlling the fluid movement, e.g., ultrafiltration, in the bioreactor 501, 601. Example parameters 826 and 828 for such coating step 808 may be found in FIG. 8C. As shown in FIG. 8C, coating step 808 and example parameters 826, 828 may include a stop condition of about ten (10) minutes, according to an embodiment. Steps 822, 824, and 826 for applying an agent to a growth surface may be followed by an IC/EC Washout step, for example, and/or other steps, where it is desired to continue with a process for expanding cells in a cell expansion system 500, 600, according to an embodiment.


As described above, control of the fluid movement may use ultrafiltration, such as positive ultrafiltration, to move fluid from one side (the IC side 502, 602) of the bioreactor 501, 601 to the other side (the EC side 504, 604), according to embodiments. For example, where the IC outlet or waste valve 590, 690 may be closed, with the EC outlet or waste valve 582, 692 open, a fluid in the bioreactor 501, 601 may have no pathway but through the pores of the fibers (IC outlet valve 590,690 closed). In an embodiment, the IC inlet rate may be set to wash the IC side 502, 602 with media or a fluid, such as phosphate buffered saline (PBS), for example. Accordingly, the solution may flow through the pores of the fibers from the IC side 502, 602 to the EC side 504, 604. Such coating agent, e.g., CPPT, may be hydrostatically deposited onto the inner wall(s) of the bioreactor fiber for a defined time period. For example, such time period may be about ten (10) minutes, according to an embodiment. Such membrane ultrafiltration method allows adherence promoting proteins to be physisorbed on the bioreactor fibers as the coating solution flows through the pores of the fiber from the IC side to the EC side, for example.


As described above, the active promoting of the coating agent to a cell growth surface may significantly decrease the amount of time it may take to coat the growth surface as compared to other methods of coating a growth surface. In embodiments, such coating procedure using ultrafiltration may be referred to as an expedited coating procedure. Such expedited coating procedure using active moving of the coating agent to the cell growth surface(s) through ultrafiltration may use less time to coat the cell growth surface than procedures using passive coating procedures which may take overnight or about twelve (12) hours to about sixteen (16) hours to coat the bioreactor. For example, such expedited coating procedure may take less than or equal to about four (4) hours. In embodiments, such expedited coating procedure may take any time period in a range from above or equal to about five (5) minutes to less than or equal to about sixty (60) minutes, or any other range therein, depending on the procedure. For example, such coating procedure may take less than or equal to about ten (10) minutes, less than or equal to about twelve (12) minutes, less than or equal to about fifteen (15) minutes, less than or equal to about twenty (20) minutes, less than or equal to about thirty (30) minutes, less than or equal to about forty-five (45) minutes, less than or equal to about sixty (60) minutes, etc.


Following the application of the reagent or coating agent to the cell growth surface, process 800 then terminates at END operation 810.


While FIG. 8A illustrates a method for applying a coating agent or reagent to a cell growth surface, FIG. 8B depicts a schematic of applying an agent to a growth surface of a hollow fiber, in accordance with embodiments of the present disclosure. In embodiments, schematic 811 depicts the flow of a coating agent or reagent solution, such as cryoprecipitate solution 814, through a single fiber 812, e.g., hollow fiber, of a bioreactor during an active coating procedure. In schematic 811, a coating agent and/or coating solution, e.g., a cryoprecipitate solution, may be introduced to the fibers of a bioreactor, e.g., a hollow fiber bioreactor 501, 601, on the intracapillary (IC) side 816, for example. In such embodiment, an IC waste valve or IC outlet valve 590, 690 may be closed, while an EC waste valve or EC outlet valve 582, 692 may be open. In embodiments, the IC inlet rate for a chase step, e.g., step 824 (FIG. 8C), may be set. The IC inlet rate may then be set for a Wash step, e.g., step 826 (FIG. 8C), according to an embodiment. For example, the IC inlet rate may be set to about 50 mL/minute for a wash task with media or a fluid, such as phosphate buffered saline (PBS). In embodiments, the IC inlet rate may be set to any rate in a range including a value greater than or equal to about 5 mL/minute to less than or equal to about 100 mL/minute. For example, the IC inlet rate may be set to a value greater than or equal to about 40 mL/minute to less than or equal to about 60 mL/minute.


Returning to FIG. 8B, the coating agent in the coating solution, e.g., cryoprecipitate solution 814, may be hydrostatically deposited onto the inner wall of bioreactor fiber 812 for a specified time period, e.g., about ten (10) minutes. Various time periods may be used based on the CES 500, 600 configurations, for example. Such membrane ultrafiltration process allows adherence promoting protein(s) to be physisorbed on the bioreactor fibers as the reagent solution or coating solution flows through the pores 818 of the fiber 812 from the IC side of the fiber 816 to the EC side of the fiber 820.


Turning to FIG. 9A, example operational steps 900 of a process for applying an agent or reagent to a cell growth surface that may be used with a cell expansion system, such as CES 500 (FIG. 5) or CES 600 (FIG. 6), are provided in accordance with embodiments of the present disclosure. In embodiments, such CES is automated, and various steps and/or parameters may be pre-programmed, set, and/or created to execute one or more tasks to expand cells. START operation is initiated 902, and process 900 proceeds to close 904 a first outlet or waste valve 590, 690, and open (or leave/remain open) a second outlet or waste valve 582, 692, where the first 590, 690 and second 582, 682 outlet valves are different. In an embodiment, such as where cells may be grown on the IC side, for example, an IC outlet valve or IC waste valve 590, 690 may be closed, while an EC outlet valve or EC waste valve 582, 692 may be open or remain open. In another embodiment, such as where cells may be grown on the EC side, for example, an EC outlet valve or EC waste valve 582, 692 may be closed, while an IC outlet valve or IC waste valve 590, 690 may be open or remain opened. In an embodiment, step 904 occurs before loading a coating agent or reagent into the cell expansion system 500, 600. In another embodiment, step 904 occurs after the loading of a coating agent. In an embodiment, step 904 may occur at any time during process 900. Process 900 is offered for illustrative purposes and may be rearranged, combined into other steps, etc. Further, additional or fewer steps may be used in other embodiments.


Returning to FIG. 9, process 900 proceeds to load an agent 906 or agent solution, e.g., coating agent or coating solution, into a cell expansion system, such as cell expansion system 500, 600, for example. In an embodiment, a coating agent or coating agent solution is loaded into a circulation loop, e.g., IC loop 502, 602, of a cell expansion system 500, 600. In an embodiment, such loading proceeds until a bag (e.g., 544) or container including the reagent or coating agent is empty. In another embodiment, such loading proceeds for a defined period of time or other condition as understood by a person of skill in the art.


Next, the agent or reagent may be chased or washed 908 from an air removal chamber 556, 656 into the circulation loop, e.g., IC loop 502, 602. Process 900 next proceeds to set a first inlet rate 910, e.g., IC inlet rate, to wash a first side, e.g., IC side 816 (FIG. 8B), with media or a fluid, such as phosphate buffered saline (PBS), for example. For example, the IC inlet rate may be set to about 50 mL/minute for a wash task with media or a fluid, such as phosphate buffered saline (PBS). In embodiments, the IC inlet rate may be set to any rate in a range including a value greater than or equal to about 5 mL/minute to less than or equal to about 100 mL/minute. For example, the IC inlet rate may be set to a value greater than or equal to about 40 mL/minute to less than or equal to about 60 mL/minute. In embodiments, the IC inlet rate may be set to about 51 mL/minute; about 52 mL/minute; about 53 mL/minute; about 54 mL/minute; about 55 mL/minute; about 56 mL/minute; about 57 mL/minute; about 58 mL/minute; about 59 mL/minute; about 60 mL/minute; about 49 mL/minute; about 48 mL/minute; about 47 mL/minute; about 46 mL/minute; about 45 mL/minute; about 44 mL/minute; about 43 mL/minute; about 42 mL/minute; about 41 mL/minute; about 40 mL/minute; etc.


Such washing, or increased inlet rate, promotes the movement of fluid 912 from a first side 816 (FIG. 8B) of a hollow fiber 812 to a second side 820 of the hollow fiber 812, e.g., from the IC side 816 to the EC side 820, in which ultrafiltration allows proteins or molecules that are too large to pass through the pores 818 of a hollow fiber 812 to adhere to the bioreactor fiber 812 and thus coat the walls while the fluid in which the coating agent is suspended flows through the pores 818. Where the fluid flows through the pores 818 of the fiber 812 from the IC 816 to the EC side 820, positive ultrafiltration may result in the deposit of the coating agent or reagent on the inner walls, or IC side 816, of the fiber(s). On the other hand, in an embodiment where cells are grown on an EC side 820 and where the solution flows through the pores 818 of the fiber 812 from the EC side 820 to the IC side 816, negative ultrafiltration may result in the deposit of the coating agent or reagent on the outer walls, or EC side 820, of the fiber(s) 812. In an embodiment, such fluid movement may occur for a specified time period, e.g., about ten (10) minutes, to allow for such coating. In an embodiment, such active promoting of the coating agent to a cell growth surface may significantly decrease the amount of time it may take to coat the cell growth surface as compared to other methods of coating a cell growth surface. In embodiments, such coating procedure using ultrafiltration may be referred to as an expedited coating procedure. Such expedited coating procedure using active moving of the coating agent to the cell growth surface(s) through ultrafiltration may use less time to coat the cell growth surface than procedures using passive coating procedures which may take overnight or about twelve (12) hours to about sixteen (16) hours to coat the bioreactor. For example, such expedited coating procedure may take less than or equal to about four (4) hours. In embodiments, such expedited coating procedure may take any time period in a range from above or equal to about five (5) minutes to less than or equal to about sixty (60) minutes, or any other range therein, depending on the procedure. For example, such coating procedure may take less than or equal to about ten (10) minutes, less than or equal to about twelve (12) minutes, less than or equal to about fifteen (15) minutes, less than or equal to about twenty (20) minutes, less than or equal to about thirty (30) minutes, less than or equal to about forty-five (45) minutes, less than or equal to about sixty (60) minutes, etc. In other embodiments, other conditions may be used to determine when to stop or decrease the active promotion of the fluid. For example, such active promotion may be stopped or decreased when a media bag (e.g., 566) containing a wash solution is empty. Other conditions may be used according to embodiments. Process 900 then terminates at END operation 914.


Turning to FIG. 9B, example operational steps 916 of a process for applying an agent to a cell growth surface that may be used with a cell expansion system, such as CES 500 (FIG. 5) or CES 600 (FIG. 6), are provided in accordance with embodiments of the present disclosure. In embodiments, such CES is automated, and various steps and/or parameters may be pre-programmed, set, and/or created as custom or user-defined tasks to expand cells. START operation is initiated 918, and process 916 proceeds to close 920 a first outlet or waste valve 590, 690, and open (or leave/remain open) a second outlet or waste valve 582, 692, where the first 590, 690 and second 582, 692 outlet valves are different. In an embodiment, such as where cells may be grown on the IC side, for example, an IC outlet valve or IC waste valve 590, 690 may be closed, while an EC outlet valve or EC waste valve 582, 692 may be open or remain open. In another embodiment, such as where cells may be grown on the EC side, for example, an EC outlet valve or EC waste valve 582, 692 may be closed, while an IC outlet valve or IC waste valve 590, 690 may be open or remain opened. In an embodiment, step 920 occurs before loading a coating agent or reagent into the cell expansion system 500, 600. In another embodiment, step 920 occurs after the loading of a coating agent. In an embodiment, step 920 may occur at any time during process 916. Process 916 is offered for illustrative purposes and may be rearranged, combined into other steps, etc. Further, additional or fewer steps may be used in other embodiments.


Returning to FIG. 9B, process 916 proceeds to load an agent 922 or agent solution, e.g., coating agent or coating solution, into a cell expansion system, such as cell expansion system 500, 600, for example. In an embodiment, a coating agent or coating agent solution is loaded into a circulation loop, e.g., IC loop 502, 602, of a cell expansion system 500, 600. In an embodiment, such loading proceeds until a bag (e.g., 544) or container including the reagent or coating agent is empty. In another embodiment, such loading proceeds for a defined period of time or other condition as understood by a person of skill in the art.


Next, process 916 proceeds to optional step 924, in which the settings for a first wash may be set. During such first wash, the agent may be chased or washed from an air removal chamber 556, 656 into the circulation loop, e.g., IC loop 502, 602. The settings may include, for example, optionally setting a first inlet rate 926 and/or optionally setting a first stop condition 928. An example of a first stop condition may include a particular volume, e.g., an IC volume. Optional settings 926 and 928 are offered merely for illustrative purposes. Other settings and/or subsets of settings to control a first wash may be included. There may be fewer or more settings as represented by ellipsis 927. When settings for a first wash are set, process 916 next proceeds to optional first wash 930.


Following optional first wash 930 (or where no first wash is desired, following load agent 922), process 916 proceeds to set second wash settings 932. For example, a second inlet rate, e.g., IC inlet rate, may be set 934 to wash a first side, e.g., IC side 816 (FIG. 8B), with media or a fluid, such as phosphate buffered saline (PBS), for example. For example, the IC inlet rate may be set to about 50 mL/minute for a wash task with media or a fluid, such as phosphate buffered saline (PBS). In embodiments, the IC inlet rate may be set to any rate in a range including a value greater than or equal to about 5 mL/minute to less than or equal to about 100 mL/minute. For example, the IC inlet rate may be set to a value greater than or equal to about 40 mL/minute to less than or equal to about 60 mL/minute.


Additional or other settings may also be set to control such second wash. For example, a second stop condition may be set 936. Such stop condition may include a time period, or time interval, in which the second wash may be stopped when such stop condition is reached. As an example, a ten (10) minute time period may be set as a second stop condition for a second wash. Any time period may be used in accordance with embodiments of the present disclosure. Settings 934 and 936 are offered merely for illustrative purposes. Other settings and/or subsets of settings to control a second wash may be included. There may be fewer or more settings as represented by ellipsis 935.


Following the entering of the second wash settings at step 932, process 916 next proceeds to conducting a second wash 938. Such washing, or increased inlet rate, promotes the movement of fluid from a first side 816 (FIG. 8B) of a hollow fiber 812 to a second side 820 of the hollow fiber 812, e.g., from the IC side 816 to the EC side 820, in which ultrafiltration allows proteins or molecules that are too large to pass through the pores 818 of a hollow fiber 812 to adhere to the bioreactor fiber 812 and thus coat the walls while the solution flows through the pores 818. Where the solution flows through the pores 818 of the fiber 812 from the IC 816 to the EC side 820, positive ultrafiltration may result in the deposit of the coating agent or reagent on the inner walls, or IC side 816, of the fiber(s). On the other hand, in an embodiment where cells are grown on an EC side 820 and where the solution flows through the pores 818 of the fiber 812 from the EC side 820 to the IC side 816, negative ultrafiltration may result in the deposit of the coating agent or reagent on the outer walls, or EC side 820, of the fiber(s) 812.


Active promoting of the coating agent to a cell growth surface may significantly decrease the amount of time it may take to coat the growth surface as compared to other methods of coating a growth surface. In embodiments, such coating procedure using ultrafiltration may be referred to as an expedited coating procedure. For example, such expedited coating procedure may take less than or equal to about four (4) hours. In an embodiment, such fluid movement may occur for a specified time period, e.g., about ten (10) minutes, to allow for such coating. For example, such coating procedure may take any time period in a range from above or equal to about five (5) minutes to less than or equal to about sixty (60) minutes, or any other range therein, depending on the procedure. For example, such coating procedure may take less than or equal to about ten (10) minutes, less than or equal to about twelve (12) minutes, less than or equal to about fifteen (15) minutes, less than or equal to about twenty (20) minutes, less than or equal to about thirty (30) minutes, less than or equal to about forty-five (45) minutes, less than or equal to about sixty (60) minutes, etc. Any time period may be used in accordance with embodiments of the present disclosure. In an embodiment, such time period may be based on a stop condition, such as a second stop condition set in step 936. For example, a stop condition may be set where an automated CES is used to expand cells. In other embodiments, other conditions may be used to determine when to stop or decrease the active promotion of the fluid. For example, such active promotion may be stopped or decreased when a media bag (e.g., 566) containing the wash solution is empty. Other conditions may be used according to embodiments. Process 916 then terminates at END operation 940.


Referring now to FIG. 10, flow 1000 illustrates yet another embodiment of a process for coating a cell growth surface, e.g., such as a surface of a hollow fiber. Flow 1000 starts at step 1004 and proceeds to step 1008 where fluid that includes a reagent may be introduced into a cell expansion system and a bioreactor such as bioreactors 100, 501, and/or 601. In embodiments, step 1008 may involve activating one or more pumps (554, 654) to introduce fluid with the reagent from a bag (562) or connection point (662) into a fluid flow path.


As part of introducing the fluid with the reagent into the cell expansion system, step 1008 may involve optional step 1012, where a wash fluid (e.g., PBS) may be used to chase the reagent from parts of the CES. For example, the wash fluid may move any reagent left behind in an ARC, such as ARC 556/656. The wash fluid may chase any lingering reagent into the bioreactor and/or a fluid flow path associated with the bioreactor e.g., 502/602.


Flow 1000 then passes to step 1014 where a second wash fluid may be introduced into the bioreactor. In embodiments, step 1014 may involve activating a pump, such as pumps 554,654 to introduce the second wash fluid from a bag (562) or connection point (662) into a fluid flow path and into the bioreactor (100, 501, and/or 601). In embodiments, the second wash fluid is introduced to create conditions for ultrafiltration, as described above. Ultrafiltration allows proteins or molecules (e.g., the coating reagent) that are too large to pass through the pores 818 (FIG. 8) of a hollow fiber 812 (FIG. 8) to adhere to the bioreactor fiber 812 and thus coat the walls while the solution flows through the pores 818. Where the solution flows through the pores 818 of the fiber 812 from the IC 816 to the EC side 820, positive ultrafiltration may result in the deposit of the coating agent or reagent on the inner walls, or IC side 816, of the fibers. In embodiments, the second wash fluid introduced at step 1014 may be continuously introduced as steps 1016 through 1040 are performed.


Flow 1000 then passes to step 1016 where fluid that includes the coating reagent may be circulated through the bioreactor such as bioreactors 100, 501, and/or 601. In embodiments, step 1016 may involve activating one or more pumps to circulate fluid with the reagent through the bioreactor. For example, an IC circulation pump (e.g., 512 or 612) may be activated to circulate fluid through the IC side of a bioreactor at a first circulation flow rate. In at least one embodiment, fluid may pass through hollow fibers (e.g., the lumen).


In embodiments, the first rate may be a relatively high flow rate. In embodiments, the first circulation flow rate may be less than about 500 ml/min, less than about 400 ml/min, or even less than about 300 ml/min. In other embodiments, the first circulation rate may be greater than about 50 ml/min, greater than about 100 ml/min, or even greater than about 150 ml/min. In one embodiment, the first circulation flow rate is between about 100 ml/min and about 500 ml/min, such as about 300 ml/min.


Step 1016 may be performed for a first predetermined period of time. In one specific example, the first period of time may be about 4 minutes, about 8 minutes, about 12 minutes, or even about 16 minutes. In other embodiments, the first predetermined period of time may be less than about 20 minutes, less than about 15 minutes, less than about 10 minutes, or even less than about 5 minutes. In some embodiments, the first predetermined period of time may be greater than about 2 minutes, greater than about 4 minutes, greater than about 6 minutes, greater than about 8 minutes, greater than about 10 minutes, greater than about 12 minutes, greater than about 14 minutes, greater than about 16 minutes, greater than about 18 minutes, or even greater than about 20 minutes. Step 1016 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1016 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


Flow 1000 passes to step 1020, wherein fluid with the reagent is circulated at a second flow rate, which may be less than the first flow rate. In embodiments, the second flow rate may be less than about 400 ml/min, less than about 300 ml/min, or even less than about 200 ml/min. In other embodiments, the second circulation rate may be greater than about 25 ml/min, greater than about 50 ml/min, or even greater than about 75 ml/min. In one embodiment, the second circulation flow rate is between about 100 ml/min and about 300 ml/min, such as about 250 ml/min.


Step 1020 may be performed for a second predetermined period of time. In one specific example, the second period of time may be about 4 minutes, about 8 minutes, about 12 minutes, or even about 16 minutes. In other embodiments, the second predetermined period of time may be less than about 20 minutes, less than about 15 minutes, less than about 10 minutes, or even less than about 5 minutes. In some embodiments, the second predetermined period of time may be greater than about 2 minutes, greater than about 4 minutes, greater than about 6 minutes, greater than about 8 minutes, greater than about 10 minutes, greater than about 12 minutes, greater than about 14 minutes, greater than about 16 minutes, greater than about 18 minutes, or even greater than about 20 minutes. Step 1020 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1020 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


Flow 1000 passes to optional step 1024, wherein fluid with the reagent is circulated at a third flow rate, which may be less than the first flow rate. In embodiments, the third flow rate may be less than the second flow rate. In embodiments, the third flow rate may be less than about 350 ml/min, less than about 300 ml/min, or even less than about 250 ml/min. In other embodiments, the second circulation rate may be greater than about 25 ml/min, greater than about 50 ml/min, or even greater than about 75 ml/min. In one embodiment, the third circulation flow rate is between about 50 ml/min and about 250 ml/min, such as about 200 ml/min.


Optional step 1024 may be performed for a third predetermined period of time. In one specific example, the second period of time may be about 4 minutes, about 8 minutes, about 12 minutes, or even about 16 minutes. In other embodiments, the third predetermined period of time may be less than about 20 minutes, less than about 15 minutes, less than about 10 minutes, or even less than about 5 minutes. In some embodiments, the third predetermined period of time may be greater than about 2 minutes, greater than about 4 minutes, greater than about 6 minutes, greater than about 8 minutes, greater than about 10 minutes, greater than about 12 minutes, greater than about 14 minutes, greater than about 16 minutes, greater than about 18 minutes, or even greater than about 20 minutes. Step 1024 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1024 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


Flow 1000 then passes to optional step 1028, where fluid with the reagent is circulated at a fourth flow rate, which may be less than the third flow rate. In embodiments, the fourth flow rate may be less than about 250 ml/min, less than about 200 ml/min, or even less than about 150 ml/min. In other embodiments, the second circulation rate may be greater than about 25 ml/min, greater than about 50 ml/min, or even greater than about 75 ml/min. In one embodiment, the fourth circulation flow rate is between about 25 ml/min and about 200 ml/min, such as about 150 ml/min.


Optional step 1028 may be performed for a fourth predetermined period of time. In one specific example, the second period of time may be about 4 minutes, about 8 minutes, about 12 minutes, or even about 16 minutes. In other embodiments, the fourth predetermined period of time may be less than about 20 minutes, less than about 15 minutes, less than about 10 minutes, or even less than about 5 minutes. In some embodiments, the fourth predetermined period of time may be greater than about 2 minutes, greater than about 4 minutes, greater than about 6 minutes, greater than about 8 minutes, greater than about 10 minutes, greater than about 12 minutes, greater than about 14 minutes, greater than about 16 minutes, greater than about 18 minutes, or even greater than about 20 minutes. Step 1028 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1028 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


Flow passes to optional step 1032, where fluid with the reagent is circulated at a fifth flow rate, which may be less than the fourth flow rate. In embodiments, the fifth flow rate may be less than about 200 ml/min, less than about 150 ml/min, or even less than about 100 ml/min. In other embodiments, the fifth circulation rate may be greater than about 25 ml/min, greater than about 50 ml/min, or even greater than about 75 ml/min. In one embodiment, the fifth circulation flow rate is between about 25 ml/min and about 150 ml/min, such as about 100 ml/min.


Optional step 1032 may be performed for a fifth predetermined period of time. In one specific example, the fifth period of time may be about 4 minutes, about 8 minutes, about 12 minutes, or even about 16 minutes. In other embodiments, the fifth predetermined period of time may be less than about 20 minutes, less than about 15 minutes, less than about 10 minutes, or even less than about 5 minutes. In some embodiments, the fifth predetermined period of time may be greater than about 2 minutes, greater than about 4 minutes, greater than about 6 minutes, greater than about 8 minutes, greater than about 10 minutes, greater than about 12 minutes, greater than about 14 minutes, greater than about 16 minutes, greater than about 18 minutes, or even greater than about 20 minutes. Step 1032 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1032 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


Flow 1000 passes to optional step 1036, where fluid with the reagent is circulated at a sixth flow rate, which may be less than the fifth flow rate. In embodiments, the sixth flow rate may be less than about 100 ml/min, less than about 50 ml/min, or even less than about 25 ml/min. In other embodiments, the sixth circulation rate may be greater than about 5 ml/min, greater than about 10 ml/min, or even greater than about 15 ml/min. In one embodiment, the sixth circulation flow rate is between about 25 ml/min and about 100 ml/min, such as about 50 ml/min.


Optional step 1036 may be performed for a sixth predetermined period of time. In one specific example, the sixth period of time may be about 4 minutes, about 8 minutes, about 12 minutes, or even about 16 minutes. In other embodiments, the sixth predetermined period of time may be less than about 20 minutes, less than about 15 minutes, less than about 10 minutes, or even less than about 5 minutes. In some embodiments, the sixth predetermined period of time may be greater than about 2 minutes, greater than about 4 minutes, greater than about 6 minutes, greater than about 8 minutes, greater than about 10 minutes, greater than about 12 minutes, greater than about 14 minutes, greater than about 16 minutes, greater than about 18 minutes, or even greater than about 20 minutes. Step 1036 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1036 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


Flow 1000 passes to optional step 1040, where fluid with the reagent is circulated at a seventh flow rate, which may be less than the sixth flow rate. In embodiments, the seventh flow rate may be less than about 100 ml/min, less than about 50 ml/min, or even less than about 25 ml/min. In other embodiments, the seventh circulation rate may be greater than about 10 ml/min, greater than about 15 ml/min, or even greater than about 20 ml/min. In one embodiment, the seventh circulation flow rate is between about 10 ml/min and about 50 ml/min, such as about 25 ml/min.


Optional step 1040 may be performed for a seventh predetermined period of time. In one specific example, the seventh period of time may be about 4 minutes, about 8 minutes, about 12 minutes, or even about 16 minutes. In other embodiments, the sixth predetermined period of time may be less than about 20 minutes, less than about 15 minutes, less than about 10 minutes, or even less than about 5 minutes. In some embodiments, the sixth predetermined period of time may be greater than about 2 minutes, greater than about 4 minutes, greater than about 6 minutes, greater than about 8 minutes, greater than about 10 minutes, greater than about 12 minutes, greater than about 14 minutes, greater than about 16 minutes, greater than about 18 minutes, or even greater than about 20 minutes. Step 1040 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1040 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers (e.g., the lumen).


Flow 1000 then passes to step 1042 where introduction of the second wash fluid into the bioreactor is stopped. In embodiments, step 1042 may involve deactivating a pump, such as pump 554, 654 to stop the introduction of the second wash fluid in the fluid flow path and into the bioreactor (100, 501, and/or 601). In embodiments, stopping the introduction of the second wash fluid stops the process of ultrafiltration.


Flow 1000 then passes to step 1044, where a second fluid, that may not include the reagent, or have a lower concentration of the reagent, may be circulated through the bioreactor. In embodiments, step 1044 may be performed to wash any remaining reagent that has not coated a surface of the bioreactor out of the bioreactor and CES. As noted above, flow 1000 may be part of a larger process such as a process for growing and harvesting cells in a cell expansion system, such as flow 700. Therefore, in embodiments, step 1044 may be implemented as part of steps performed in the larger process, such as step 710 (FIG. 7). Flow 1000 then ends at 1048.


Referring now to FIG. 11, a cross section 1100 (perpendicular to a central axis) of a bioreactor (e.g., bioreactor 100, 501, and/or 601) is shown. The cross section 1100 illustrates a plurality of hollow fibers 1108 which may be within a housing 1104. The cross section 1100 is taken from one end of a bioreactor and illustrates, in addition to the hollow fibers 1108 a matrix material 1128 (which may be referred to above as potting material) that holds the hollow fibers 1108 together.


Also shown in FIG. 11 are zones 1112, 1116, 1120 and 1124. These zones represent fibers that may have fluid circulating through them at different flow rates. Without being bound by theory, it is believed that circulation at relatively high flow rates, such as rates that may be used in circulation steps 1016 and/or 1020 (FIG. 10) may primarily flow through fibers in zone 1112. It is believed that the higher flow rates do not allow fluid to disperse enough to flow evenly into the hollow fibers in the outer zones. As the flow rate is reduced, such as in steps 1024, 1028, 1032, 1036, 1040, 1044, and 1048 it is believed that the fluid may disperse into hollow fibers in outer zones, such as 1116, 1120 and 1124.


It is believed that having steps 1016, 1020, 1024, 1028, 1032, 1036, 1040, 1044, and 1048 circulate at different flow rates, allows the fluid to flow through more of the hollow fibers 1108 than if just a single flow rate would be used. In one embodiment of a process that follows flow chart 1000, at steps 1016 and 1020 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zone 1012. At steps 1024 and 1028 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zones 1112 and 1116.


At steps 1032 and 1136 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zone 1112, 1116, and 1120 because the rate is slower and the fluid may disperse more. At step 1040 (at the flow rates described above), fluid may flow through the hollow fibers in zones 1112, 1116, 1120, and 1124 because the flow rate is yet slower and fluid may disperse even more. Thus, it is believe that fluid with the reagent may flow into more of the hollow fibers using a sequence of different flow rates, than if a single high flow rate circulation is used.


Furthermore, it is also believed that the different flow rates may also affect the longitudinal distribution of the reagent along the bioreactor, e.g., along a hollow fiber. That is, a higher flow rate may allow the reagent to flow further along inside a hollow fiber. For example, at a higher flow rate, the reagent being carried by fluid may reach beyond half the length of the hollow fiber. At a lower flow rate, the reagent being carried by fluid may reach half the length of the hollow fiber. At even a lower flow rate, the reagent being carried by fluid may reach less than half the length of the hollow fiber. Accordingly, in some embodiments, it is believed that the use of different flow rates may provide some improvement in longitudinal distribution of the reagent along the length of the bioreactor, e.g., a hollow fiber.


Moreover, it is believed that the continuous addition of wash fluid (starting at step 1014 and ending at step 1042), to create ultrafiltration conditions, further promotes the coating of growth surfaces with the coating reagent. For example, as described above, the ultrafiltration moves the coating reagent toward an inside surface of hollow fiber walls, which may shorten the coating process, in addition to the more complete/uniform distribution of the coating agent provided by the other steps of flow 1000.


As noted above, steps in flow 1000 may be performed for predetermined periods of time. In embodiments, flow 1000 is designed to be performed within a period of time, e.g., 28 minutes, 56 minutes, 60 minutes, 90 minutes, and 120 minutes. For example, in embodiments, the predetermined period of times may be selected so that substantially all (or most) of the steps of flow 1000 may be performed in less than 90 minutes, such as less than 80 minutes, less than 70 minutes, less than 60 minutes, less than 50 minutes, less than 40 minutes, or even less than 30 minutes. In some embodiments, the steps of flow 1000 may be performed in greater than 10 minutes, greater than 20 minutes, greater than 30 minutes, greater than 40 minutes, or greater than 50 minutes. In selecting the periods of time, embodiments provide for each period to be the same in duration. In other embodiments, each period of time may have a different duration. In yet other embodiments, some periods of time may have the same duration while others have different durations. These are merely some examples and flow 1000 is not necessarily limited to being performed during any specific duration.


In one specific embodiment, flow 1000 may provide for performing each of steps 1016 through 1040 in less than 30 minutes. As one example, each of the steps may be performed for 4 minutes resulting in a 28 minute coating process. As yet another example, each of steps 1016 through 1040 may be performed for 8 minutes resulting in a 56 minute coating process. These are merely some non-limiting examples.


Referring now to flow 1200, it starts at step 1204 and proceeds to step 1208 where fluid that includes a reagent may be introduced into a cell expansion system and a bioreactor such as bioreactors 100, 501, and/or 601. In embodiments, step 1208 may be similar to step 808 and involve activating one or more pumps (564, 664) to introduce fluid with the reagent from a bag (562) or connection point (662) into a fluid flow path.


As part of introducing the fluid with the reagent into the cell expansion system, step 1208 may involve optional step 1212, where a wash fluid (e.g., PBS) may be used to chase the reagent from parts of the CES. For example, the wash fluid may move any reagent left behind in an ARC, such as ARC 556/656. The wash fluid may chase any lingering reagent into the bioreactor and/or a fluid flow path associated with the bioreactor e.g., 502/602.


Flow 1200 then passes to step 1214 where a second wash fluid may be introduced into the bioreactor. In embodiments, step 1214 may involve activating a pump, such as pumps 554,654 to introduce the second wash fluid from a bag (562) or connection point (662) into a fluid flow path and into the bioreactor (100, 501, and/or 601). In embodiments, the second wash fluid is introduced to create conditions for ultrafiltration, as described above. Ultrafiltration allows proteins or molecules (e.g., the coating reagent) that are too large to pass through the pores 818 (FIG. 8) of a hollow fiber 812 (FIG. 8) to adhere to the bioreactor fiber 812 and thus coat the walls while the solution flows through the pores 818. Where the solution flows through the pores 818 of the fiber 812 from the IC 816 to the EC side 820, positive ultrafiltration may result in the deposit of the coating agent or reagent on the inner walls, or IC side 816, of the fibers. In embodiments, the second wash fluid introduced at step 1214 may be continuously introduced as steps 1216 through 1240 are performed.


Flow 1200 passes to step 1216 where fluid that includes a reagent may be circulated through a bioreactor such as bioreactors 100, 501, and/or 601. In embodiments, step 1216 may involve activating one or more pumps to circulate fluid with the reagent through the bioreactor. For example, an IC circulation pump (e.g., 512 or 612) may be activated to circulate fluid through the IC side of a bioreactor at a first circulation flow rate. In at least one embodiment, fluid may pass through hollow fibers (e.g., the lumen). Step 1216 may involve circulating fluid at a first flow rate. The first flow rate may in embodiments be one of the first flow rates described above with respect to step 1016 (FIG. 10). Step 1216 may be performed for a first predetermined period of time. The first period of time may, in some embodiments, be one of the first periods of time described above with respect to step 1016 (FIG. 10).


In some embodiments, step 1216 may involve circulation in a specific direction. In other words, in some embodiments, step 1216 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a specific direction, e.g., a counter clockwise or a clockwise direction. As one example, referring now to FIG. 6, step 1216 may involve activating pump 612 to circulate fluid through path 602 in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1200 passes to step 1220, where fluid with the reagent is circulated at a second flow rate. In embodiments, the second flow rate may be one of the second flow rates described above with respect to step 1020 (FIG. 10). Step 1220 may be performed for a second predetermined period of time, which may be one of the second predetermined periods of time described above with respect to step 1020 (FIG. 10).


In some embodiments, step 1220 may involve circulation in a specific direction, such as a second direction opposite the first direction. Step 1220 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a direction, e.g., a counter clockwise or a clockwise, opposite the first direction. Continuing with the example above, step 1216 may involve activating pump 612 to circulate fluid through path in a counter clock wise direction. Step 1220 may involve activating pump 612 to circulate fluid through path 602 in a clock wise direction. That is, fluid may enter through port 601B and exit through port 601A.


Flow 1200 then passes to optional step 1224, where fluid with the reagent is circulated at a third flow rate. In embodiments, the third flow rate may be one of the third flow rates described above with respect to step 1024 (FIG. 10). Step 1224 may be performed for a third predetermined period of time, which may be one of the third predetermined periods of time described above with respect to step 1024 (FIG. 10).


In some embodiments, step 1224 may involve circulation in a specific direction, such as the first direction. Step 1224 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a direction, e.g., a counter clockwise or a clockwise. Continuing with the example above, step 1224 may involve activating pump 612 to circulate fluid through path in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1200 then passes to optional step 1228, where fluid with the reagent is circulated at a fourth flow rate. In embodiments, the fourth flow rate may be one of the fourth flow rates described above with respect to step 1028 (FIG. 10). Step 1228 may be performed for a fourth predetermined period of time, which may be one of the fourth predetermined periods of time described above with respect to step 1028 (FIG. 10).


In some embodiments, step 1228 may involve circulation in a specific direction, such as opposite the first direction. Step 1228 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a direction, e.g., a counter clockwise or a clockwise. Continuing with the example above, step 1228 may involve activating pump 612 to circulate fluid through path 602 in a clock wise direction. That is, fluid may enter through port 601B and exit through port 601A.


Flow 1200 then passes to optional step 1232, where fluid with the reagent is circulated at a fifth flow rate. In embodiments, the fifth flow rate may be one of the fifth flow rates described above with respect to step 1032 (FIG. 10). Step 1232 may be performed for a fifth predetermined period of time, which may be one of the fifth predetermined periods of time described above with respect to step 1032 (FIG. 10).


In some embodiments, step 1232 may involve circulation in a specific direction, such as the first direction. Step 1232 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a direction, e.g., a counter clockwise or a clockwise. Continuing with the example above, step 1232 may involve activating pump 612 to circulate fluid through path 602 in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1200 then passes to optional step 1236, where fluid with the reagent is circulated at a sixth flow rate. In embodiments, the sixth flow rate may be one of the sixth flow rates described above with respect to step 1036 (FIG. 10). Step 1236 may be performed for a sixth predetermined period of time, which may be one of the sixth predetermined periods of time described above with respect to step 1036 (FIG. 10).


In some embodiments, step 1236 may involve circulation in a specific direction, such as opposite the first direction. Step 1236 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a direction, e.g., a counter clockwise or a clockwise. Continuing with the example above, step 1236 may involve activating pump 612 to circulate fluid through path 602 in a clock wise direction. That is, fluid may enter through port 601B and exit through port 601A.


Flow 1200 then passes to optional step 1240, where fluid with the reagent is circulated at a seventh flow rate. In embodiments, the seventh flow rate may be one of the seventh flow rates described above with respect to step 1040 (FIG. 10). Step 1240 may be performed for a seventh predetermined period of time, which may be one of the seventh predetermined periods of time described above with respect to step 1040 (FIG. 10).


In some embodiments, step 1240 may involve circulation in a specific direction, such as the first direction. Step 1240 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a direction, e.g., a counter clockwise or a clockwise. Continuing with the example above, step 1240 may involve activating pump 612 to circulate fluid through path 602 in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1200 then passes to step 1242 where introduction of the second wash fluid into the bioreactor is stopped. In embodiments, step 1242 may involve deactivating a pump, such as pump 554, 654 to stop the introduction of the second wash fluid into the fluid flow path and into the bioreactor (100, 501, and/or 601). In embodiments, stopping the introduction of the second wash fluid stops the process of ultrafiltration.


Flow 1200 then passes to step 1244, where a second fluid, that may not include the reagent, or have a lower concentration of the reagent, may be circulated through the bioreactor. In embodiments, step 1244 may be performed to wash any remaining reagent that has not coated a surface of the bioreactor out of the bioreactor and CES. As noted above, flow 1200 may be part of a larger process such as a process for growing and harvesting cells in a cell expansion system, such as flow 700. Therefore, in embodiments, step 1244 may be implemented as part of steps performed in the larger process, such as step 710 (FIG. 7). Flow 1200 then ends at 1248.


Without being bound by theory, it is believed that having steps 1216, 1220, 1224, 1228, 1232, 1236, 1240, 1244, and 1248 circulate at different flow rates, allows the fluid to flow through more of the hollow fibers e.g., 1108 (FIG. 11) than if just a single flow rate would be used. In one embodiment of a process that follows flow chart 1200, at steps 1216 and 1220 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zone 1212. At steps 1224 and 1228 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zones 1112 and 1116.


At steps 1232 and 1236 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zone 1112, 1116, and 1120 because the rate is slower and the fluid may disperse more. At step 1240 (at the flow rates described above), fluid may flow through the hollow fibers in zones 1112, 1116, 1120, and 1124 because the flow rate is yet slower and fluid may disperse even more. Thus, it is believe that fluid with the reagent may flow into more of the hollow fibers using a sequence of different flow rates, than if a single high flow rate circulation is used.


As noted above, it is also believed that the different flow rates may also affect the longitudinal distribution of the reagent along the bioreactor, e.g., along a hollow fiber. That is, a higher flow rate may allow the reagent to flow further along inside a hollow fiber. For example, at a higher flow rate, the reagent being carried by fluid may reach beyond half the length of the hollow fiber. At a lower flow rate, the reagent being carried by fluid may reach half the length of the hollow fiber. At even a lower flow rate, the reagent being carried by fluid may reach less than half the length of the hollow fiber. Accordingly, in some embodiments, it is believed that the use of different flow rates may provide some improvement in longitudinal distribution of the reagent along the length of the bioreactor, e.g., a hollow fiber. Additionally, with the changing of directions provided for in flow 1200, the reagent may be distributed along the length of the hollow fibers from both sides of a hollow fiber. The combination of flow rate changes and changes in direction, may allow for more even distribution of the reagent along the length of a hollow fiber.


Moreover, it is believed that the continuous addition of wash fluid (starting at step 1214 and ending at step 1242), to create ultrafiltration conditions, further promotes the coating of growth surfaces with the coating reagent. For example, as described above, the ultrafiltration moves the coating reagent toward an inside surface of hollow fiber walls, which may shorten the coating process, in addition to the more complete/uniform distribution of the coating agent provided by the other steps of flow 1200.


As noted above, steps in flow 1200 may be performed for predetermined periods of time. In embodiments, flow 1200 is designed to be performed within a period of time, e.g., relatively quickly. For example, in embodiments, the predetermined period of times may be selected so that substantially all (or most) of the steps of flow 1200 may be performed in less than 90 minutes, such as less than 80 minutes, less than 70 minutes, less than 60 minutes, less than 50 minutes, less than 40 minutes, or even less than 30 minutes. In some embodiments, the steps of flow 800 may be performed in greater than 10 minutes, greater than 20 minutes, greater than 30 minutes, greater than 40 minutes, or greater than 50 minutes. In selecting the periods of time, embodiments provide for each period to be the same in duration. In other embodiments, each period of time may have a different duration. In yet other embodiments, some periods of time may have the same duration while others have different durations. These are merely some examples and flow 1200 is not necessarily limited to being performed during any specific duration.


In one specific embodiment, flow 1200 may provide for performing each of steps 1216 through 1240 in less than 30 minutes. As one example, each of the steps may be performed for 4 minutes resulting in a 28 minute coating process. As yet another example, each of steps 1216 through 1240 may be performed for 8 minutes resulting in a 56 minute coating process. These are merely some non-limiting examples.


Referring now to FIG. 13, flow 1300 starts at 1302 and passes to step 1304 where fluid that includes a reagent may be introduced into a cell expansion system and a bioreactor such as bioreactors 100, 300, 501, and/or 601. In embodiments, step 1304 may involve activating one or more pumps (564, 664) to introduce fluid with the reagent from a bag (562) or connection point (662) into a fluid flow path.


As part of introducing the fluid with the reagent into the cell expansion system, step 1304 may involve optional step 1306, where a wash fluid (e.g., PBS) may be used to chase the reagent from parts of the CES. For example, the wash fluid may move any reagent left behind in an ARC, such as ARC 556/656. The wash fluid may chase any lingering reagent into the bioreactor and/or a fluid flow path associated with the bioreactor e.g., 502/602.


Flow 1300 then passes to step 1307 where a second wash fluid may be introduced into the bioreactor. In embodiments, step 1307 may involve activating a pump, such as pumps 554, 654 to introduce the second wash fluid from a bag (562) or connection point (662) into a fluid flow path and into the bioreactor (100, 501, and/or 601). In embodiments, the second wash fluid is introduced to create conditions for ultrafiltration, as described above. Ultrafiltration allows proteins or molecules (e.g., the coating reagent) that are too large to pass through the pores 818 (FIG. 8) of a hollow fiber 812 (FIG. 8) to adhere to the bioreactor fiber 812 and thus coat the walls while the solution flows through the pores 818. Where the solution flows through the pores 818 of the fiber 812 from the IC 816 to the EC side 820, positive ultrafiltration may result in the deposit of the coating agent or reagent on the inner walls, or IC side 816, of the fibers. In embodiments, the second wash fluid introduced at step 1307 may be continuously introduced as steps 1308 through 1362 are performed.


Flow 1300 passes to step 1308 which may be performed to orient a bioreactor, e.g. bioreactor 100, 501, and/or 601, to an initial orientation. In embodiments, a bioreactor may already be oriented in an initial orientation, in which case step 1308 would not be performed. When performed, step 1308 may in some embodiments be performed by one or rotation mechanisms that may include one or more motors, gears, connectors, shafts, etc. that rotate the bioreactor to a first orientation. In embodiments, the orientation may be an initial horizontal orientation.


Referring now to FIGS. 15-17, a bioreactor 300 (which in embodiments may be bioreactor 100, 501, and/or 601) is shown in different orientations. FIG. 15 illustrates the bioreactor 300 positioned in an initial orientation. As part of optional step 1308, bioreactor 300 may be oriented with its longitudinal axis LA-LA in a starting orientation, such as, for example, a first horizontal orientation as shown in FIG. 15.


Flow 1300 passes from optional step 1308 to step 1310 where fluid that includes a reagent may be circulated through a bioreactor such as bioreactors 100, 501, and/or 601. In embodiments, step 1310 may involve activating one or more pumps to circulate fluid with the reagent through the bioreactor. For example, an IC circulation pump (e.g., 512 or 612) may be activated to circulate fluid through the IC side of a bioreactor at a first circulation flow rate.


In at least one embodiment, fluid may pass through hollow fibers (e.g., the lumen). Step 1310 may involve circulating fluid at a first flow rate. The first flow rate may in embodiments be one of the first flow rates described above with respect to step 1016 (FIG. 10).


In other embodiments, fluid with the reagent may be circulated through the EC side of the bioreactor. Step 1310 may therefore, in embodiments, involve activating an EC circulation pump (e.g., 528 or 628) to circulate fluid through the EC side of bioreactor at a first circulation flow rate.


In embodiments, the reagent may be any protein, nutrient, or other material that is useful in creating conditions for expansion of cells. As described above, the reagent may be a protein that coats a surface in the bioreactor to which cell (e.g., adherent cells) may attach and grow. As one example, a glycoprotein (such as fibronectin, collagen, cryoprecipitate, etc.) may be the reagent that is circulated through a bioreactor, e.g., through the IC circuit of the bioreactor, to coat an inside surface of hollow fibers. The coating may promote the attachment of adherent cells that may later be added to the bioreactor and expanded in the bioreactor. This is merely one example and flow 1300 is not limited to this application.


In some embodiments, step 1310 may involve circulation in a specific direction. In other words, in some embodiments, step 1310 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a first direction 1312, e.g., a counter clockwise or a clockwise direction. As one example, referring now to FIG. 6, step 1310 may involve activating pump 612 to circulate fluid through path 602 in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1300 passes from step 1310 to step 1314 where the bioreactor is maintained in the first orientation, e.g., a horizontal orientation (FIG. 15). Step 1314 may be performed in combination with step 1310. In embodiments, the first period of time may be one of the first periods of time described above with respect to step 1016 (FIG. 10). Step 1314 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1314 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


After step 1314, flow 1300 may pass to optional step 1316, where the bioreactor is rotated to a second orientation. In embodiments, the second orientation may be a horizontal orientation that is about 180 degrees from the original (e.g., first) orientation (e.g., FIG. 15). FIG. 13 illustrates bioreactor 300 rotated 90 degrees from the orientation shown in FIG. 15, with FIG. 17 illustrating bioreactor 300 rotated about 180 degrees from the orientation shown in FIG. 15. In embodiments, step 1316 may be performed to rotate the bioreactor to an orientation shown in FIG. 17 (e.g., a second horizontal orientation). If step 1316 is not performed, flow would pass from step 1314 to step 1318. In these embodiments, the bioreactor may remain in the first orientation (e.g., first horizontal orientation as shown in FIG. 15).


Flow passes to step 1318, wherein fluid with the reagent is circulated at a second flow rate, which may be less than the first flow rate. In embodiments, the second flow rate may be one of the second flow rates described above with respect to step 1020 (FIG. 10).


In some embodiments, step 1318 may involve circulation in a specific direction. In other words, in some embodiments, step 1318 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in a second direction 1320, e.g., a counter clockwise or a clockwise direction. Continuing with the example above, referring FIG. 6, step 1320 may involve activating pump 612 to circulate fluid through path 602 in a clock wise direction. That is, fluid may enter through port 601B and exit through port 601A.


Flow 1300 passes from step 1318 to optional step 1322 where the bioreactor is maintained in the second orientation, e.g., a second horizontal orientation (FIG. 17). Optional step 1322 may be performed in combination with optional step 1318. In embodiments, optional steps 1318 and 1322 may be performed for a second predetermined period of time. In embodiments, the second period of time may be one of the second periods of time described above with respect to step 1020 (FIG. 10). Step 1322 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1322 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


After optional step 1322, flow 1300 may pass to optional step 1324, where the bioreactor is rotated back to the first orientation. In embodiments, the first orientation may be a horizontal orientation that is about the same as the original (e.g., first) orientation (e.g., FIG. 15).


Flow passes to step 1326, wherein fluid with the reagent is circulated at a third flow rate, which may be less than the second flow rate. In embodiments, the third flow rate may be one of the third flow rates described above with respect to step 1024 (FIG. 10).


In some embodiments, step 1326 may involve circulation in a specific direction. In other words, in some embodiments, step 1326 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in the first direction 1328 e.g., a counter clockwise or a clockwise direction. Continuing with the example above, referring to FIG. 6, step 1326 may involve activating pump 612 to circulate fluid through path 602 in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1300 passes from step 1326 to optional step 1330 where the bioreactor is maintained in the first orientation, e.g., a first horizontal orientation (FIG. 15). Optional step 1330 may be performed in combination with optional step 1326. In embodiments, optional steps 1326 and 1330 may be performed for a third predetermined period of time. In embodiments, the third period of time may be one of the third periods of time described above with respect to step 1024 (FIG. 10). Step 1322 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1322 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


After optional step 1326, flow 1300 may pass to optional step 1332, where the bioreactor is rotated back to the second orientation. In embodiments, the second orientation may be a horizontal orientation that is about 180 degrees from the first orientation (e.g., FIG. 17).


Flow 1300 then passes to optional step 1334, where fluid with the reagent is circulated at a fourth flow rate, which may be less than the third flow rate. In embodiments, the fourth flow rate may be one of the fourth flow rates described above with respect to step 1028 (FIG. 10).


In some embodiments, step 1334 may involve circulation in a specific direction. In other words, in some embodiments, step 1334 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in the second direction 1336 e.g., a counter clockwise or a clockwise direction. Continuing with the example above, referring to FIG. 6, step 1334 may involve activating pump 612 to circulate fluid through path 602 in a clock wise direction. That is, fluid may enter through port 601B and exit through port 601A.


Flow 1300 passes from step 1334 to optional step 1338 where the bioreactor is maintained in the second orientation, e.g., a second horizontal orientation (FIG. 17). Optional step 1338 may be performed in combination with optional step 1334. In embodiments, optional steps 1334 and 1338 may be performed for a fourth predetermined period of time. In embodiments, the fourth period of time may be one of the second periods of time described above with respect to step 1028 (FIG. 10). Step 1338 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1338 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


After optional step 1338, flow 1300 may pass to optional step 1340, where the bioreactor is rotated back to the first orientation. In embodiments, the first orientation may be a horizontal orientation that is about the same as the original (e.g., first) orientation (e.g., FIG. 15).


Flow passes to step 1342, wherein fluid with the reagent is circulated at a fifth flow rate, which may be less than the fourth flow rate. In embodiments, the fifth flow rate may be one of the fifth flow rates described above with respect to step 1032 (FIG. 10).


In some embodiments, step 1342 may involve circulation in a specific direction. In other words, in some embodiments, step 1342 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in the first direction 1344 e.g., a counter clockwise or a clockwise direction. Continuing with the example above, referring to FIG. 6, step 1342 may involve activating pump 612 to circulate fluid through path 602 in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1300 passes from step 1342 to optional step 1346 where the bioreactor is maintained in the first orientation, e.g., a first horizontal orientation (FIG. 15). Optional step 1346 may be performed in combination with optional step 1342. In embodiments, optional steps 1342 and 1346 may be performed for a fifth predetermined period of time. In embodiments, the fifth period of time may be one of the second periods of time described above with respect to step 1032 (FIG. 10). Step 1346 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1346 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


After optional step 1346, flow 1300 may pass to optional step 1348, where the bioreactor is rotated back to the second orientation. In embodiments, the second orientation may be a horizontal orientation that is about 180 degrees from the original (e.g., first) orientation (e.g., FIG. 17).


Flow 1300 then passes to optional step 1350, where fluid with the reagent is circulated at a sixth flow rate, which may be less than the fifth flow rate. In embodiments, the fifth flow rate may be one of the fifth flow rates described above with respect to step 1032 (FIG. 10).


In some embodiments, step 1350 may involve circulation in a specific direction. In other words, in some embodiments, step 1350 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in the second direction 1352 e.g., a counter clockwise or a clockwise direction. Continuing with the example above, referring to FIG. 6, step 1350 may involve activating pump 612 to circulate fluid through path 602 in a clock wise direction. That is, fluid may enter through port 601B and exit through port 601A.


Flow 1300 passes from step 1350 to optional step 1354 where the bioreactor is maintained in the second orientation, e.g., a second horizontal orientation (FIG. 17). Optional step 1354 may be performed in combination with optional step 1350. In embodiments, optional steps 1350 and 1354 may be performed for a sixth predetermined period of time. In embodiments, the sixth period of time may be one of the sixth periods of time described above with respect to step 1036 (FIG. 10). Step 1354 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1354 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


After optional step 1346, flow 1300 may pass to optional step 1348, where the bioreactor is rotated back to the first orientation. In embodiments, the first orientation may be a horizontal orientation that is substantially the same as the original (e.g., first) orientation (e.g., FIG. 15).


Flow passes to step 1358, wherein fluid with the reagent is circulated at a seventh flow rate, which may be less than the sixth flow rate. In embodiments, the seventh flow rate may be one of the fifth flow rates described above with respect to step 1040 (FIG. 10).


In some embodiments, step 1358 may involve circulation in a specific direction. In other words, in some embodiments, step 1358 may involve activating a pump such as IC circulation pump (e.g., 512 or 612) in the first direction 1360 e.g., a counter clockwise or a clockwise direction. Continuing with the example above, referring to FIG. 6, step 1358 may involve activating pump 612 to circulate fluid through path 602 in a counter clock wise direction. That is, fluid may enter through port 601A and exit through port 601B.


Flow 1300 passes from step 1358 to optional step 1362 where the bioreactor is maintained in the first orientation, e.g., a first horizontal orientation (FIG. 15). Optional step 1362 may be performed in combination with optional step 1358. In embodiments, optional steps 1358 and 1362 may be performed for a seventh predetermined period of time. In embodiments, the seventh period of time may be one of the seventh periods of time described above with respect to step 1040 (FIG. 10). Step 1362 may be performed in embodiments to provide time to allow the reagent to coat portions of the bioreactor. For example, when the bioreactor comprises hollow fibers, step 1362 may be performed to allow the reagent time to coat interior surfaces of the hollow fibers.


Flow 1300 then passes to step 1363 where introduction of the second wash fluid into the bioreactor is stopped. In embodiments, step 1363 may involve deactivating a pump, such as pump 554, 654 to stop the introduction of the second wash fluid into the fluid flow path and into the bioreactor (100, 501, and/or 601). In embodiments, stopping the introduction of the second wash fluid stops the process of ultrafiltration.


Flow 1300 then passes to step 1364, where a second fluid, that may not include the reagent, or have a lower concentration of the reagent, may be circulated through the bioreactor. In embodiments, step 1364 may be performed to wash any remaining reagent that has not coated a surface of the bioreactor out of the bioreactor and CES. As noted above, flow 1300 may be part of a larger process such as a process for growing and harvesting cells in a cell expansion system, such as flow 700. Therefore, in embodiments, step 1364 may be implemented as part of steps performed in the larger process, such as step 710 (FIG. 7). Flow 1300 then ends at 1366.


Without being bound by theory, it is believed that having steps 1310, 1318, 1326, 1334, 1342, 1350, and 1358 circulate at different flow rates, allows the fluid to flow through more of the hollow fibers e.g., 1108 (FIG. 11) than if just a single flow rate would be used. In one embodiment of a process that follows flow chart 1300, at steps 1310 and 1318 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zone 1112. At steps 1326 and 1334 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zones 1112 and 1116.


At steps 1342 and 1350 (at the flow rates described above), fluid may flow mainly through the hollow fibers in zone 1112, 1116, and 1120 because the rate is slower and the fluid may disperse more. At step 1358 (at the flow rates described above), fluid may flow through the hollow fibers in zones 1112, 1116, 1120, and 1124 because the flow rate is yet slower and fluid may disperse even more. Thus, it is believe that fluid with the reagent may flow into more of the hollow fibers using a sequence of different flow rates, than if a single high flow rate circulation is used.


As noted above, it is also believed that the different flow rates may also affect the longitudinal distribution of the reagent along the bioreactor, e.g., along a hollow fiber. That is, a higher flow rate may allow the reagent to flow further along inside a hollow fiber. For example, at a higher flow rate, the reagent being carried by fluid may reach beyond half the length of the hollow fiber. At a lower flow rate, the reagent being carried by fluid may reach half the length of the hollow fiber. At even a lower flow rate, the reagent being carried by fluid may reach less than half the length of the hollow fiber. Accordingly, in some embodiments, it is believed that the use of different flow rates may provide some improvement in longitudinal distribution of the reagent along the length of the bioreactor, e.g., a hollow fiber. Additionally, with the changing of directions provided for in flow 1300, the reagent may be distributed along the length of the hollow fibers from both sides of a hollow fiber. The combination of flow rate changes and changes in direction, may allow for more even distribution of the reagent along the length of a hollow fiber.


Furthermore, flow 1300 provides for rotation of the bioreactor, as described above. It is also believed that rotation of the bioreactor, in addition to changes in direction and flow rates, provides a process where the reagent may be distributed/coated on hollow fibers more completely and/or uniformly.


Moreover, it is believed that the continuous addition of wash fluid (starting at step 1307 and ending at step 1363), to create ultrafiltration conditions, further promotes the coating of growth surfaces with the coating reagent. For example, as described above, the ultrafiltration moves the coating reagent toward an inside surface of hollow fiber walls, which may shorten the coating process, in addition to the more complete/uniform distribution of the coating agent provided by the other steps of flow 1300.


As noted above, steps in flow 1300 may be performed for predetermined periods of time. In embodiments, flow 1300 is designed to be performed within a period of time, e.g., relatively quickly. For example, in embodiments, the predetermined period of times may be selected so that substantially all (or most) of the steps of flow 1300 may be performed in less than 90 minutes, such as less than 80 minutes, less than 70 minutes, less than 60 minutes, less than 50 minutes, less than 40 minutes, or even less than 30 minutes. In some embodiments, the steps of flow 800 may be performed in greater than 10 minutes, greater than 20 minutes, greater than 30 minutes, greater than 40 minutes, or greater than 50 minutes. In selecting the periods of time, embodiments provide for each period to be the same in duration. In other embodiments, each period of time may have a different duration. In yet other embodiments, some periods of time may have the same duration while others have different durations. These are merely some examples and flow 1300 is not necessarily limited to being performed during any specific duration.


In one specific embodiment, flow 1300 may provide for performing all of steps 1310, 1318, 1326, 1334, 1342, 1350, and 1358 in less than 30 minutes. As one example, each of the steps may be performed for 4 minutes resulting in a 28 minute coating process. As yet another example, each of steps 1310, 1318, 1326, 1334, 1342, 1350, and 1358 may be performed for 8 minutes resulting in a 56 minute coating process. These are merely some non-limiting examples.


Turning now to FIG. 14, flow 1400 begins at 1404 and passes to step 1408 where fluid that includes cells may be circulated through a bioreactor such as bioreactors 100, 300, 501, 601. In embodiments, step 1408 may involve activating one or more pumps to circulate fluid through the bioreactor 100, 300, 501, 601. For example, an IC circulation pump (e.g., 512 or 612) may be activated to circulate fluid through the IC side of the bioreactor at a first circulation flow rate. In at least one embodiment, fluid carrying the cells may pass through hollow fibers of the bioreactor from the IC side to the EC side. In other embodiments, cells may be loaded into the EC side of the bioreactor and have the fluid carrying the cells pass from the EC side to the IC side. In these embodiments, an EC circulation pump (e.g., 528, 628) may be activated to circulate fluid through the EC side of bioreactor at a first circulation flow rate.


In embodiments, the first circulation flow rate may be a relatively high flow rate. In embodiments, the first circulation flow rate may be less than about 500 ml/min, less than about 400 ml/min, or even less than about 300 ml/min. In other embodiments, the first circulation rate may be greater than about 50 ml/min, greater than about 100 ml/min, or even greater than about 150 ml/min. In one embodiment, the first circulation flow rate is between about 100 ml/min and about 300 ml/min, such as about 200 ml/min.


Step 1408 may in some embodiments involve also rotating the bioreactor in a particular sequence to facilitate distribution of the cells through the bioreactor and circulation paths of the CES to which the bioreactor may be fluidly associated. In other embodiments, the circulating step 1408 may involve rotating the bioreactor for some periods of time, but maintaining the bioreactor stationary for other periods of time.


After step 1408, the fluid circulation rate is reduced at step 1412. The circulation rate may be reduced to about zero (0) ml/min, or in other embodiments may be reduced to a rate that is above zero (0) ml/min but still allows cells to settle and attach to the bioreactor e.g., an inside surface of hollow fibers of bioreactor. In embodiments, step 1412 may involve stopping or turning off one or more pumps used in step 1408 to circulate the fluid.


Flow passes from step 1412 to optional step 1416, which may be performed to orient a bioreactor, e.g. bioreactor to an initial orientation. In embodiments, a bioreactor may already be oriented in an initial orientation, whereby step 1416 would not be performed. When performed, step 1416 may in some embodiments be performed by one or more motors.


Referring now to FIGS. 15-19, a bioreactor 300 is shown in FIG. 15 positioned in an initial orientation. As part of optional step 1416, bioreactor 300 may be oriented with its longitudinal axis LA-LA in a starting orientation, such as, for example, a first horizontal orientation as shown in FIG. 15.


Flow passes from 1416, to step 1420 where the bioreactor is maintained at a first orientation to allow cells to settle and in some embodiments attach to a first portion of bioreactor 300. Step 1420 may be performed for a first predetermined period of time.


Referring now to FIGS. 20A-20D and FIGS. 21A-21F these figures illustrate a cross-section of a hollow fiber 2000 (taken perpendicular to a central axis of the hollow fiber 2000 and a central axis of bioreactor 300) that may be one of the hollow fibers of bioreactor 300. These figures illustrate the possible locations of cells within the hollow fibers during some steps of flow chart 1400. As illustrated in FIG. 20A, before the circulation rate is reduced at step 1412, cells within individual hollow fiber 2000 may be distributed, in embodiments evenly, throughout the volume of hollow fiber 2000. When the circulation rate is reduced, the cells may begin to be influenced by gravity 2004 and begin to settle. FIG. 21A also illustrates a similar situation with respect to a hollow fiber 2100 and gravity 2104.


In embodiments, with the bioreactor 300 in the first horizontal orientation (FIG. 15), the cells within bioreactor 300 are allowed to settle onto a first portion of the bioreactor. As illustrated in FIGS. 20B and 21B, the first portion of bioreactor 300 may include at least a portion 2008 of hollow fiber 2000 and/or portion 2108 in hollow fiber 2100. In embodiments, the cells will be allowed to settle for a first predetermined period of time that may be selected to not only allow the cells to settle, but also to attach to portion 2008 of the hollow fiber 2000 (and 2108 of hollow fiber 2100).


In some embodiments, the first predetermined period of time may be long enough in duration to allow the cells to settle and attach to portion 2008 and 2108. In these embodiments, the cells may only need to travel the distance of the inner diameter of hollow fiber 2000 or 2100. For example, in embodiments where the hollow fiber has an inner diameter of between about 150 microns and about 300 microns, the first predetermined period of time may be less than about 20 minutes, less than about 15 minutes, or even less than about 10 minutes. In other embodiments, the first predetermined period of time may be greater than about 1 minute, greater than about 2 minutes, greater than about 3 minutes, or even greater than about 4 minutes. In one embodiment, the first period of time may be between about 3 minutes and about 8 minutes, such as about 5 minutes.


After step 1420, flow passes to step 1424, where the bioreactor 300 is rotated to a second horizontal orientation that is about 180 degrees from the first horizontal orientation. As shown in FIGS. 15-17, the bioreactor may be rotated by first being rotated from its first horizontal orientation (FIG. 15) to a first vertical orientation, which is about 90 degrees from the first horizontal orientation, e.g. axis LA LA in a vertical orientation (FIG. 16). Bioreactor 300 may then be rotated another 90 degrees (FIG. 17) to complete the rotation to the second horizontal orientation. Step 1424 may in some embodiments be performed by one or more motors connected to bioreactor 300. These motors may be part of a rocking device.


In some embodiments, flow 1400 will pass from step 1424 to step 1436 where the bioreactor 300 is maintained in the second horizontal orientation (FIG. 17) for a second predetermined period of time so that the cells are allowed to settle to a second portion of the bioreactor, such as portion 2012 of hollow fiber 2000 (FIG. 20C) or portion 2112 of hollow fiber 2100 (FIG. 21C).


In some embodiments, flow 1400 may include optional steps 1428 and 1432 prior to proceeding to step 1436. Similar to step 1408, step 1428 provides for circulating fluid through the bioreactor 300. In embodiments, step 1428 may involve activating one or more pumps to circulate fluid through the bioreactor 300. As noted above, an IC circulation pump (e.g., 512,612) may be activated to circulate fluid through the IC side of bioreactor 300 at a second circulation flow rate. In at least one embodiment, fluid carrying the cells may pass through hollow fibers of the bioreactor 300. In other embodiments, cells may be loaded into the EC side of the bioreactor 300 and have the fluid carrying the cells. In these embodiments, an EC circulation pump (e.g., 528, 628) may be activated to circulate fluid through the EC side of bioreactor 300 at a second circulation flow rate.


In embodiments, the second circulation flow rate may be less than the first circulation rate. In embodiments, the second circulation flow rate may be less than about 400 ml/min, less than about 300 ml/min, or even less than about 200 ml/min. In other embodiments, the second circulation rate may be greater than about 25 ml/min, greater than about 500 ml/min, or even greater than about 75 ml/min. In one embodiment, the second circulation flow rate is between about 50 ml/min and about 150 ml/min, such as about 100 ml/min.


In some embodiments, step 1428 may also involve circulation in a different direction than the circulation performed in step 1408. In other words, in some embodiments, step 708 may involve circulating fluid in a counter clockwise direction (see IC loop in FIGS. 5 and 6). In some embodiments, the circulation at step 1428 may be clockwise. In other words, the circulation may flow opposite to the circulation at step 1408. In other embodiments, the circulation in step 1408 may flow in the same direction as step 1408, clockwise or counter clockwise.


Optional step 1428 may in some embodiments involve also rotating the bioreactor 300 in a particular sequence to facilitate distribution of the cells through the bioreactor 300 and circulation paths of the CES to which the bioreactor 300 may be fluidly associated. In other embodiments, the circulating step 1428 may involve rotating the bioreactor 300 for some periods of time, but maintaining the bioreactor 300 stationary for other periods of time.


After optional step 1428, the fluid circulation rate is once again reduced at step 1432. The circulation rate may be reduced to about zero (0) ml/min, or in other embodiments may be reduced to a rate that is above zero (0) ml/min but still allows cells to settle and attach to the bioreactor 300, e.g., an inside surface of hollow fibers of bioreactor 300. In embodiments, step 1432 may involve stopping or turning off one or more pumps used in step 1428 to circulate the fluid.


Referring once again to step 1436, maintaining the bioreactor in the second horizontal orientation allows cells to settle on portion 2012 (or 2112 in FIG. 21C), which may be opposite portion 2008, e.g., portion 2008 (or 2108) may be referred to as a “bottom portion” and portion 2012 (or 2112 in FIG. 21C) may be referred to as a “top portion.” FIGS. 20C and 20C illustrate cells settling onto portions 2012 and 2112, or in some embodiments vice versa. In embodiments, the cells will be allowed to settle for a second predetermined period of time that may be selected to not only allow the cells to settle, but also to attach to portion 2012 of the hollow fiber 2000 (or 2112 of fiber 2100).


In some embodiments, the second predetermined period of time may be long enough in duration allow the cells to settle and attach to portion 2012 (or 2112 in FIG. 21C). In these embodiments, the cells may only need to travel the distance of the inner diameter of hollow fiber 2000 or 2100. For example, in embodiments where the hollow fiber has an inner diameter of between about 150 microns and about 300 microns, the second predetermined period of time may be less than about 20 minutes, less than about 15 minutes, or even less than about 10 minutes. In other embodiments, the second predetermined period of time may be greater than about 1 minute, greater than about 2 minutes, greater than about 3 minutes, or even greater than about 4 minutes. In one embodiment, the second period of time may be between about 3 minutes and about 8 minutes, such as about 5 minutes.


In some embodiments, after step 1436, flow 1400 may pass to step 1472 where cells are expanded. Step 1472 may involve a number of substeps, such as circulating fluid into the bioreactor to feed and provide nutrients to the cells attached in the bioreactor. As can be appreciated, step 1472 may also involve providing oxygen to the cells so that they may multiply. Several other parameters in the bioreactor may be controlled in order to optimize the expansion, i.e. growth of the cells. In some embodiments, step 1472 may include circulating fluid to feed the cells for about 24 hours, about 36 hours, about 48 hours, about 60 hours, or even about 72 hours. In some embodiments, the feeding of the cells as part of step 1472 may be performed for less than about 120 hours, less than about 108 hours, less than about 96 hours, less than about 84 hours, or even less than about 72 hours. FIG. 20D illustrates hollow fiber 2000 for this embodiment. Flow then ends at 1476.


In other embodiments, flow 1400 may pass to step 1440, where the bioreactor 300 is rotated back to its original first horizontal orientation. FIG. 18 illustrates bioreactor 300 once it has been rotated back to its first horizontal orientation. Step 1440 may be performed by one or more motors connected to bioreactor 300. These motors may be part of a rocking device. In embodiments, flow may pass from step 1440 to step 1472 where the cells are expanded. Flow then ends at 1476.


In other embodiments, flow 1400 passes from step 1440 to step 1444, or in other embodiments, flow may pass directly from step 1436, to step 1444 (when no additional rotation is performed), where fluid is again circulated but at a third circulation flow rate. Similar to steps 1408 and 1428, fluid is circulated through the bioreactor 300. In embodiments, step 1444 may involve activating one or more pumps to circulate fluid through the bioreactor 300. As noted above, an IC circulation pump (e.g., 512 or 612) may be activated to circulate fluid through the IC side of bioreactor 300 at a third circulation flow rate. In at least one embodiment, fluid carrying the cells may pass through (the lumen of) hollow fibers of the bioreactor 300. In other embodiments, cells may be loaded into the EC side of the bioreactor 300 and have the fluid carrying the cells. In these embodiments, an EC circulation pump (e.g., 528, 628) may be activated to circulate fluid through the EC side of bioreactor 300 at the third circulation flow rate.


In embodiments, the third circulation flow rate may be less than the second circulation rate. In embodiments, the third circulation flow rate may be less than about 200 ml/min, less than about 150 ml/min, or even less than about 100 ml/min. In other embodiments, the third circulation rate may be greater than about 10 ml/min, greater than about 20 ml/min, or even greater than about 30 ml/min. In one embodiment, the third circulation flow rate is between about 20 ml/min and about 100 ml/min, such as about 50 ml/min.


In some embodiments, step 1444 may also involve circulation in a different direction than the circulation performed in step 1428. In other words, in some embodiments, step 1428 may involve circulating fluid in a clockwise direction. In some embodiments, the circulation at step 1444 may be similar to step 1408 and be in a counter clockwise direction (see IC loop in FIGS. 5 and 6). In other words, the circulation at step 1444 may flow opposite to the circulation at step 1428, and the same as the direction of circulation of step 1408. In other embodiments, the circulation in steps 1408, 1428, 1444 may flow in the same direction, clockwise or counter clockwise.


Optional step 1444 may in some embodiments involve also rotating the bioreactor 300 in a particular sequence to facilitate distribution of the cells through the bioreactor 300 and circulation paths of the CES to which the bioreactor 300 may be fluidly associated. In other embodiments, the circulating step 1444 may involve rotating the bioreactor 300 for some periods of time, but maintaining the bioreactor 300 stationary for other periods of time.


Flow passes from 1444 to step 1448, where, the fluid circulation rate is once again reduced. The circulation rate may be reduced to about zero (0) ml/min, or in other embodiments may be reduced to a rate that is above zero (0) ml/min but still allows cells to settle and attach to the bioreactor 300, e.g., an inside surface of hollow fibers of bioreactor 300. In embodiments, step 1448 may involve stopping or turning off one or more pumps used in step 1444 to circulate the fluid.


From step 1448, flow passes to step 1452 where the bioreactor is maintained in a horizontal orientation. In those embodiments that include step 1444 (rotate to first orientation), step 1452 will involve maintaining the first horizontal orientation. In those embodiments that do not include the rotation of step 1440, step 1452 will involve maintaining the second horizontal orientation. In any case, step 1452 is performed to allow cells to settle again, such as on portion 2108 (See FIGS. 21D and 21E; if the rotation step 1440 is performed). In embodiments, the cells will be allowed to settle for a third predetermined period of time that may be selected to not only allow the cells to settle, but also to attach.


In some embodiments, the third predetermined period of time may be long enough in duration to allow the cells to settle and attach to portion 2108. In these embodiments, the cells may only need to travel the distance of the inner diameter of hollow fiber 2100. For example, in embodiments where the hollow fiber 2100 has an inner diameter of between about 150 microns and about 300 microns, the third predetermined period of time may be less than about 20 minutes, less than about 15 minutes, or even less than about 10 minutes. In other embodiments, the third predetermined period of time may be greater than about 1 minute, greater than about 2 minutes, greater than about 3 minutes, or even greater than about 4 minutes. In one embodiment, the third period of time may be between about 3 minutes and about 8 minutes, such as about 5 minutes.


In some embodiments, flow 1400 may pass from step 1452 to step 1472 where the cells are expanded. FIG. 21F illustrates fiber 2100 in these embodiments. Flow would then end at 1476.


In other embodiments, as described below, flow 1400 may include additional rotation (1456), circulation (1460), reduce circulation (1464), and maintain orientation (1468) steps before moving to step 1472 where cells are expanded. In these embodiments, flow 1400 may pass from step 1452 to step 1456, where the bioreactor 300 is rotated back to the second horizontal orientation, if it was rotated at step 1440 to the first horizontal orientation. FIG. 17 illustrates bioreactor 300 in the second horizontal orientation. Step 1456 may be performed by one or more motors connected to bioreactor 300. These motors may be part of a rocking device. In some embodiments, this step may be unnecessary, if step 1440 was not performed to rotate the bioreactor to the first horizontal orientation.


Flow 1400 passes to step 1460 where fluid is again circulated but at a fourth circulation flow rate. Similar to steps 1408, 1428, and 1444, fluid is circulated through the bioreactor 300. In embodiments, step 1444 may involve activating one or more pumps to circulate fluid through the bioreactor 300, as noted above, an IC circulation pump (e.g., 512, 612) may be activated to circulate fluid through the IC side of bioreactor 300 at a fourth circulation flow rate. In at least one embodiment, fluid carrying the cells may pass through hollow fibers of the bioreactor 300. In other embodiments, cells may be loaded into the EC side of the bioreactor 300 and have the fluid carrying the cells. In these embodiments, an EC circulation pump (e.g., 528, 628) may be activated to circulate fluid through the EC side of bioreactor 300 at the fourth circulation flow rate.


In embodiments, the fourth circulation flow rate may be less than the third circulation rate. In embodiments, the fourth circulation flow rate may be less than about 100 ml/min, less than about 75 ml/min, or even less than about 50 ml/min. In other embodiments, the fourth circulation rate may be greater than about 5 ml/min, greater than about 10 ml/min, or even greater than about 15 ml/min. In one embodiment, the fourth circulation flow rate is between about 15 ml/min and about 35 ml/min, such as about 25 ml/min.


In some embodiments, step 1460 may also involve circulation in a different direction than the circulation performed in step 1444. In other words, in some embodiments, step 1444 may involve circulating fluid in a counter clockwise direction. In some embodiments, the circulation at step 1460 may be similar to step 1428 and be in a clockwise direction. In other words, the circulation at step 1460 may flow opposite to the circulation at step 1444, and the same as the direction of circulation of step 1428. In other embodiments, the circulation in steps 1408, 1428, 1444 and 1460 may flow in the same direction, clockwise or counter clockwise.


Step 1460 may in some embodiments involve also rotating the bioreactor 300 in a particular sequence to facilitate distribution of the cells through the bioreactor 300 and circulation paths of the CES to which the bioreactor 300 may be fluidly associated. In other embodiments, the circulating step 1460 may involve rotating the bioreactor 300 for some periods of time, but maintaining the bioreactor 300 stationary for other periods of time.


Flow passes from 1460 to step 1464, where, the fluid circulation rate is once again reduced. The circulation rate may be reduced to about zero (0) ml/min, or in other embodiments may be reduced to a rate that is above zero (0) ml/min but still allows cells to settle and attach to the bioreactor 300, e.g., an inside surface of hollow fibers of bioreactor 300. In embodiments, step 1464 may involve stopping or turning off one or more pumps used in step 1460 to circulate the fluid.


From step 1464, flow passes to step 1468 where the bioreactor is maintained in the second horizontal orientation to allow cells to settle on for example portion 2112 again (see FIG. 21F). In embodiments, the cells will be allowed to settle for a fourth predetermined period of time that may be selected to not only allow the cells to settle, but also to attach once again.


In some embodiments, the fourth predetermined period of time may be long enough in duration to allow the cells to settle and attach. In these embodiments, the cells may only need to travel the distance of the inner diameter of the hollow fiber, e.g., fiber 2100. For example, in embodiments where the hollow fiber 2100 has an inner diameter of between about 150 microns and about 300 microns, the fourth predetermined period of time may be less than about 20 minutes, less than about 15 minutes, or even less than about 10 minutes. In other embodiments, the fourth predetermined period of time may be greater than about 1 minute, greater than about 2 minutes, greater than about 3 minutes, or even greater than about 4 minutes. In one embodiment, the fourth period of time may be between about 3 minutes and about 8 minutes, such as about 5 minutes.


After step 1468, flow 1400 passes to step 1472 where the cells settled and attached to the bioreactor 300, e.g., to hollow fibers of the bioreactor, are expanded, i.e., multiplied. Flow 1400 then ends at 1476.


Without being bound by theory, it is believe that in embodiments, the cell expansion is improved if the steps of flow 1400 are performed. It is believed that these embodiments help to ensure that more portions of the bioreactor, e.g., surface of hollow fibers in the bioreactor, are seeded with cells prior to cell expansion. This may provide for more cells to initially be seeded, and ultimately may improve cell yield and reduce cell doubling time, as compared to conventional processes.


Although flow 1400 includes specific number of steps that provide for rotating, circulating, reducing circulation, and maintaining the orientation of the bioreactor, other embodiments are not limited to these specific number of steps. In other embodiments, even after step 1468, the bioreactor may be rotated again, circulation can be restarted again, followed by another period of reducing circulation to allow cells to settle and maintain the orientation for a period of time to allow cells to attach to portion of a bioreactor. These steps may be performed any number of times. In embodiments, each time the circulation is restarted, it is at a lower rate than the previous circulation. In other embodiments, the circulation rates may be the same each time circulation is started. In yet other embodiments, the direction of circulation may be changed, with circulation in a first direction, followed by stopping the circulation to allow the cells to settle and attach, circulation in a direction opposite the first direction (clockwise vs. counter clockwise) and again stopping the circulation to allow the cells to settle.


Referring back to FIG. 11, zones 1112, 1116, 1120 and 1124 represent fibers that may have fluid circulating through them at different flow rates. In other words, without being bound by theory, it is believed that circulation at relatively high flow rates, such as rates that may be used in circulation steps 1408 or 1428 (FIG. 14) may primarily flow through fibers in zone 1112. It is believed that the higher flow rates do not allow fluid to disperse enough to flow evenly into the hollow fibers in the outer zones. As the flow rate is reduced, such as in steps 1444 and 1460, it is believed that the fluid may disperse into hollow fibers in outer zones, such as 1116, 1120 and 1124.


It is believed that having steps 1408, 1428, 1444 and 1452 circulate at different flow rates, allows the fluid to flow through more of the hollow fibers 1108 than if just a single flow rate would be used. In one embodiment of a process that follows flow chart 1400, at step 1408 (at the flow rates described above), fluid may flow through the hollow fibers in zone 1112. At step 1428 (at the flow rates described above), fluid may flow through the hollow fibers in both zones 1112 and 1116 because the rate is slower and the fluid may disperse more. At step 1444 (at the flow rates described above), fluid may flow through the hollow fibers in zones 1112, 1116, and 1120 because the flow rate is yet slower and fluid may disperse even more. At step 1452 (at the flow rates described above), fluid may flow through the hollow fibers in all the zones 1112, 1116, 1120 and 1124 because the flow rates are even slower and the fluid may disperse through all of the fibers in the various zones. Thus, it is believe that fluid with the cells may flow into more of the hollow fibers using a sequence of different flow rates, than if a single high flow rate circulation is used.


Furthermore, it is also believed that the different flow rates may also affect the longitudinal distribution of cells along the bioreactor, e.g., along a hollow fiber. That is, a higher flow rate may allow cells to flow further along inside a hollow fiber. For example, at a higher flow rate, a cell being carried by fluid may reach beyond half the length of the hollow fiber. At a lower flow rate, a cell being carried by fluid may reach half the length of the hollow fiber. At even a lower flow rate, a cell being carried by fluid may reach less than half the length of the hollow fiber. Accordingly, in some embodiments, it is believed that the use of different flow rates may provide some improvement in longitudinal distribution of cells along the length of the bioreactor, e.g., a hollow fiber.


Referring now to FIG. 22, flow 2200 illustrates a process of expanding cells according to some embodiments of the present disclosure. Flow 2200 starts at 2204 and passes to step 2208 where a bulls-eye coat process is performed on a CES (e.g., CES 500 and/or CES 600) to coat portions of a bioreactor (bioreactors 501, 601). In embodiments, step 2208 may involve performing steps of one or more of the processes described above with respect to flows 1000, 1200, and/or 1300, which may be referred to as bulls-eye coating processes. As described in detail above, flows 1000, 1200, and/or 1300 provide for changing flow rates, changing direction of flows, and/or rotating of a bioreactor to improve the distribution of a coating reagent in a bioreactor. As described above, changing flow rates, changing direction of flows, and/or rotating of a bioreactor may allow interior surfaces of hollow fibers (in a hollow fiber bioreactor) to be more completely coated during a coating process.


From step 2208, flow 2200 passes to steps 2212 where a bulls-eye cell load process is performed on the CES (e.g., CES 500 and/or CES 600) to load cells into the bioreactor (bioreactors 501, 601). In embodiments, step 2212 may involve performing steps of one or more of the processes described above with respect to flow 1400, which may be referred to as a bulls-eye cell loading process. As described in detail above, flow 1400 provides for changing flow rates, changing direction of flows, and/or rotating of a bioreactor to improve the distribution of cells loaded/attached in a bioreactor. As described above, changing flow rates, changing direction of flows, and/or rotating of a bioreactor may allow cells to be more uniformly distributed on interior surfaces of hollow fibers (in a hollow fiber bioreactor).


After step 2212, flow passes to step 2216 where cell are expanded. In embodiments, the expanding of cells may involve a number of steps. For example, step 2216 may involve performing one or more of the steps described above with respect to step 718 in flow 700 (FIG. 7), e.g., feeding of cells.


At step 2220 cells expanded at step 2216 are harvested. In embodiments, the harvesting of cells may involve a number of steps. For example, step 2220 may involve performing one or more of the steps described above with respect to step 722 in flow 700 (FIG. 7). Flow 2220 ends at 2224.


With respect to the processes illustrated in FIGS. 7-10, 12-14, and 22, the operational steps depicted are offered for purposes of illustration and may be rearranged, combined into other steps, used in parallel with other steps, etc., according to embodiments of the present disclosure. Fewer or additional steps may be used in embodiments without departing from the spirit and scope of the present disclosure. Also, steps (and any sub-steps), such as priming, coating a bioreactor, loading cells, for example, may be performed automatically in some embodiments, such as by a processor executing custom and/or pre-programmed tasks stored in memory.


Examples and further description of tasks and protocols, including custom tasks and pre-programmed tasks, for use with a cell expansion system are provided in U.S. patent application Ser. No. 13/269,323 (“Configurable Methods and Systems of Growing and Harvesting Cells in a Hollow Fiber Bioreactor System,” filed Oct. 7, 2011, now U.S. Pat. No. 9,725,689) and U.S. patent application Ser. No. 13/269,351 (“Customizable Methods and Systems of Growing and Harvesting Cells in a Hollow Fiber Bioreactor System,” filed Oct. 7, 2011, now U.S. Pat. No. 9,677,042), which applications are hereby incorporated by reference herein in their entireties for all that they teach and for all purposes.


Next, FIG. 23 illustrates example components of a computing system 2300 upon which embodiments of the present disclosure may be implemented. Computing system 2300 may be used in embodiments, for example, where a cell expansion system uses a processor to execute tasks, such as custom tasks or pre-programmed tasks performed as part of a process, such as process 700, 800, 900, 916, 1000, 1200, 1300, 1400 and/or 2200 described above. In embodiments, pre-programmed tasks may include, “IC/EC Washout” task and/or “Feed Cells” task, for example.


The computing system 2300 may include a user interface 2302, a processing system 2304, and/or storage 2306. The user interface 2302 may include output device(s) 2308, and/or input device(s) 2310 as understood by a person of skill in the art. Output device(s) 2308 may include one or more touch screens, in which the touch screen may comprise a display area for providing one or more application windows. The touch screen may also be an input device 2310 that may receive and/or capture physical touch events from a user or operator, for example. The touch screen may comprise a liquid crystal display (LCD) having a capacitance structure that allows the processing system 2304 to deduce the location(s) of touch event(s), as understood by those of skill in the art. The processing system 2304 may then map the location of touch events to UI elements rendered in predetermined locations of an application window. The touch screen may also receive touch events through one or more other electronic structures, according to embodiments. Other output devices 2308 may include a printer, speaker, etc. Other input devices 2310 may include a keyboard, other touch input devices, mouse, voice input device, etc., as understood by a person of skill in the art.


Processing system 2304 may include a processing unit 2312 and/or a memory 2314, according to embodiments of the present disclosure. The processing unit 2312 may be a general purpose processor operable to execute instructions stored in memory 2314. Processing unit 2312 may include a single processor or multiple processors, according to embodiments. Further, in embodiments, each processor may be a multi-core processor having one or more cores to read and execute separate instructions. The processors may include general purpose processors, application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs), other integrated circuits, etc., as understood by a person of skill in the art.


The memory 2314 may include any short-term or long-term storage for data and/or processor executable instructions, according to embodiments. The memory 2314 may include, for example, Random Access Memory (RAM), Read-Only Memory (ROM), or Electrically Erasable Programmable Read-Only Memory (EEPROM), as understood by a person of skill in the art. Other storage media may include, for example, CD-ROM, tape, digital versatile disks (DVD) or other optical storage, tape, magnetic disk storage, magnetic tape, other magnetic storage devices, etc., as understood by a person of skill in the art.


Storage 2306 may be any long-term data storage device or component. Storage 2306 may include one or more of the systems described in conjunction with the memory 2314, according to embodiments. The storage 2306 may be permanent or removable. In embodiments, storage 2306 stores data generated or provided by the processing system 2304.


EXAMPLES

Results for some examples of protocols/methods/processes that may be used with a cell expansion system, such as CES 500 (FIG. 5) and/or CES 600 (FIG. 6) that implement aspects of the embodiments such as those shown in FIGS. 700, 800, 900, and/or 916, 1000, 1200, 1300, 1400 and/or 2200 are described below. Although specific features may be described in the examples, such examples are provided merely for illustrative and descriptive purposes. For example, while examples may provide for the expansion of MSCs, other cell types may be used in other embodiments. The present embodiments are not limited to the examples provided herein.


It is noted that the example protocols/methods/processes are provided for illustrative purposes and are not intended to limit other embodiments, which may include different or additional steps, parameters, or other features. The example protocols/methods/processes, including the steps (and any sub-steps), may be performed automatically in some embodiments, such as by a processor executing custom tasks or pre-programmed tasks stored in memory. In other embodiments, the steps (and any sub-steps) may be performed through the combination of automated and manual execution of operations. In further embodiments, the steps (and any sub-steps) may be performed by an operator(s) or user(s) or through other manual means.


Some examples provide example data from embodiments providing for the expansion of cells using various coating procedures, various cell loading procedures, various coating materials (e.g., cryoprecipitate (CPPT), fibronectin (FN)), and/or combination(s) of such procedures and/or materials. Such procedures include, for example: positive ultrafiltration coating procedure; positive ultrafiltration coating procedure with a bulls-eye (BE) cell load procedure; positive ultrafiltration coating procedure with a load cells with uniform suspension (LWUS) cell loading procedure; overnight coating with cryoprecipitate; overnight coating with fibronectin; bulls-eye coating procedure; 28-minute bulls-eye coating procedure; etc. Examples and further description of a bulls-eye coating procedure(s) are provided in an application U.S. patent application Ser. No. 15/616,745, now U.S. Pat. No. 10,577,575, entitled, “Coating a Bioreactor,” filed on Jun. 7, 2017, which similar to the present application, also claims priority to U.S. Provisional Application Ser. No. 62/347,012, entitled “Coating a Bioreactor,” and filed on Jun. 7, 2016. Examples of other coating processes/steps that, in embodiments, may be utilized in combination with the embodiments described herein are described in U.S. patent application Ser. No. 15/616,635, entitled “METHODS AND SYSTEMS FOR COATING A CELL GROWTH SURFACE,” filed Jun. 7, 2017, which similar to the present application also claims priority to U.S. Provisional Patent Application No. 62/347,025, entitled “GROWTH SURFACE COATING,” filed Jun. 7, 2016. These applications are hereby incorporated by reference in their entireties for all that they teach and for all purposes. As described above, examples and further description of a bulls-eye cell loading procedure(s) are provided in U.S. patent application Ser. No. 14/542,276 (U.S. Pat. No. 9,617,506), entitled, “Expanding Cells in a Bioreactor,” issued on Apr. 11, 2017, which is hereby incorporated by reference herein in its entirety for all that it teaches and for all purposes.


Example 1

Below is an example of a protocol that may be used for implementing embodiments of flows 1000, 1200, and/or 1300 on CES systems such as CES 500, 600. Although specific settings are shown and described below, other embodiments may provide for different values.


Day: 0 Bulls-Eye Coat Bioreactor


Purpose: coats the bioreactor membrane with a reagent.


Step 1: loads a reagent into the IC loop until the bag is empty.


Step 2: chases the reagent from the ARC into the IC loop.


Step 3: coats the bioreactor using +UFR.


Before starting this task, the following preconditions may be satisfied:


Coating is preceded by system prime with RT PBS; and


Include 40 mL or more of air in the cell inlet bag.


Table 24 describes the bags of solution attached to each line when performing Coat Bioreactor. These solutions and corresponding volumes are based on some settings for this task.









TABLE 24







Solutions for Coat Bioreactor









Bag
Solution in Bag
Volume (estimation)





Cell Inlet
None
N/A


Reagent
CPPT or Fibronectin
6-25 mL CPPT in 100 mL




total volume w/PBS or




5 mg Fibronectin in 100 mL




total volume w/PBS


IC Media
None
N/A


Wash
PBS
1 L


EC Media
None
N/A









Coat Bioreactor pathway: Task>System Management>Coat Bioreactor


1 Enter the values for each setting for step 1 shown in Table 25.









TABLE 25







Step 1 for Coat Bioreactor










Setting
Factory
Laboratory
Modifications












IC Inlet
Reagent



IC Inlet Rate
10 mL/min



IC Circulation Rate
100 mL/min 



EC Inlet
None



EC Inlet Rate
 0 mL/min



EC Circulation Rate
30 mL/min



Outlet
EC Outlet



Rocker Control
Stationary (0°)



Stop Condition
Empty Bag









2 Enter the values for each setting for step 2 shown in Table 26.









TABLE 26







Step 2 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications












IC Inlet
Wash



IC Inlet Rate
10 mL/min



IC Circulation Rate
100 mL/min 



EC Inlet
None



EC Inlet Rate
 0 mL/min



EC Circulation Rate
30 mL/min



Outlet
EC Outlet



Rocker Control
Stationary (0°)



Stop Condition
IC Volume (22 mL)









3 Enter the values for each setting for step 3 shown in Table 27.









TABLE 27







Step 3 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications














IC Inlet
None





IC Inlet Rate
 0 mL/min





IC Circulation Rate

custom character


−300
mL/min


EC Inlet
Wash





EC Inlet Rate
0.1 mL/min 





EC Circulation Rate
30 mL/min





Outlet
EC Outlet





Rocker Control
Stationary (180°)





Stop Condition

custom character


4
min









4 Enter the values for each setting for step 4 shown in Table 28.









TABLE 28







Step 4 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications














IC Inlet
None





IC Inlet Rate
0 mL/min





IC Circulation Rate
0 mL/min

250
mL/min


EC Inlet
Wash





EC Inlet Rate
0.1 mL/min





EC Circulation Rate
30 mL/min 





Outlet
EC Outlet





Rocker Control
Stationary (0°)





Stop Condition

custom character


4
min









5 Enter the values for each setting for step 5 shown in Table 29.









TABLE 29







Step 5 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications














IC Inlet
None





IC Inlet Rate
 0 mL/min





IC Circulation Rate

custom character


−200
mL/min


EC Inlet
Wash





EC Inlet Rate
0.1 mL/min 





EC Circulation Rate
30 mL/min





Outlet
EC Outlet





Rocker Control
Stationary (180°)





Stop Condition

custom character


4
min









6 Enter the values for each setting for step 6 shown in Table 30.









TABLE 30







Step 6 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications














IC Inlet
None





IC Inlet Rate
 0 mL/min





IC Circulation Rate

custom character


150
mL/min


EC Inlet
Wash





EC Inlet Rate
0.1 mL/min 





EC Circulation Rate
30 mL/min





Outlet
EC Outlet





Rocker Control
Stationary (0°)





Stop Condition

custom character


4
min









7 Enter the values for each setting for step 7 shown in Table 31.









TABLE 31







Step 7 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications














IC Inlet
None





IC Inlet Rate
 0 mL/min





IC Circulation Rate

custom character


−100
mL/min


EC Inlet
Wash





EC Inlet Rate
0.1 mL/min 





EC Circulation Rate
30 mL/min





Outlet
EC Outlet





Rocker Control
Stationary (180°)





Stop Condition

custom character


4
min









8 Enter the values for each setting for step 8 shown in Table 32.









TABLE 32







Step 8 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications














IC Inlet
None





IC Inlet Rate
 0 mL/min





IC Circulation Rate

custom character


50
mL/min


EC Inlet
Wash





EC Inlet Rate
0.1 mL/min 





EC Circulation Rate
30 mL/min





Outlet
EC Outlet





Rocker Control
Stationary (0°)





Stop Condition

custom character


4
min









9 Enter the values for each setting for step 9 shown in Table 33.









TABLE 33







Step 9 Settings for Coat Bioreactor










Setting
Factory
Laboratory
Modifications














IC Inlet
None





IC Inlet Rate
 0 mL/min





IC Circulation Rate

custom character


−25
mL/min


EC Inlet
Wash





EC Inlet Rate
0.1 mL/min 





EC Circulation Rate
30 mL/min





Outlet
EC Outlet





Rocker Control
Stationary (180°)





Stop Condition

custom character


4
min









Example 2

Example results of expanding cells using a coating procedure(s) with, for example, the above methods 800, 1000, and/or 1100 and/or with systems 500, 600, are shown in graph 1600 of FIG. 16, in accordance with embodiments of the present disclosure. For example, such cell growth surface coating and resulting cell expansion may use the QUANTUM® Cell Expansion System manufactured by Terumo BCT, Inc. in Lakewood, Colo. FIG. 16 illustrates example results for coating a cell growth surface through a coating procedure with ultrafiltration, e.g., about 10-minute positive ultrafiltration coating procedure (10 min +UF), versus an overnight circulating coating procedure. As shown in graph 1600 of FIG. 16, example results may be provided for using cryoprecipitate (CPPT) as a coating agent. Example comparison results may also be provided (not shown in FIG. 16) for using fibronectin (FN) as a coating agent. In this example, two donors, e.g., Donor 1 and Donor 2, may be used to determine an MSC harvest yield. Donor 1 data includes both a Load Cells with Uniform Suspension cell loading procedure (LWUS) and a bulls-eye cell loading procedure (BullsEye Load). Donor 2 data includes results for using a load with uniform suspension cell loading procedure (LWUS).


For Donor 1 and Donor 2, 5×106 MSC may be loaded into a bioreactor, e.g., bioreactor 501, 601, preconditioned with cell culture media comprised of αMEM+GlutaMAX (Gibco CAT #32561102) and 10% FBS (Hyclone CAT #5H30070.03). Donor 1 MSC may be cultured for 6.8 days and Donor 2 MSC may be cultured for 6.9 days. For Donor 1, n=1 (where n=number of machines or CESs, e.g., QUANTUM® Systems) for both overnight-coated and 10-minute coated bioreactors. For Donor 2, n=1 for the overnight-coated CES, e.g., QUANTUM® System, and n=2 for the two 10-minute coated CESs, e.g., QUANTUM® Systems.


Harvest yields for Donor 1 QUANTUM® System runs may both be observed to be 1.93×108 MSC. For example, overnight coating with load with uniform suspension cell loading procedure (LWUS) may yield 193×106 MSC 1604; and 10-minute ultrafiltration coating with load with uniform suspension cell loading procedure (LWUS) may yield 193×106 MSC 1608. To confirm efficacy of the 10-minute coating technique with other cell load protocols, an additional comparison may be made between QUANTUM® Systems loaded using the bulls-eye cell loading procedure (BullsEye Load). The Donor 1 MSC yield for the Overnight coated with bulls-eye cell loading may be observed to be 223×106 MSC 1612, and MSC yield for the 10-minute ultrafiltration coat with bulls-eye cell loading procedure (BullsEye Load) may be observed to be 215×106 MSC 1616. The Donor 2 MSC expansion may be observed to yield 191×106 MSC 1620 from the Overnight coated QUANTUM® System (n=1) with load with uniform suspension cell loading procedure (LWUS), and 205×106 MSC 1624 and 193×106 MSC 1628, respectively, for the two runs of 10-minute ultrafiltration coated QUANTUM® Systems (n=2) with load with uniform suspension cell loading procedure (LWUS).


Example results (not shown in FIG. 16) may also be provided for using fibronectin (FN) as a coating agent with similar methods and systems as described above. Cell yields for 10-minute ultrafiltration FN coated QUANTUM® Systems may be observed to be in the range of 40% to 50% of Overnight-coated harvests.


Example 3

Example results of expanding cells by coating a cell growth surface of a cell expansion system, such as CES 500 (FIG. 5) and/or CES 600 (FIG. 6), for example, with various coating procedures are illustrated in FIGS. 17A and 17B. For example, such cell growth surface coating and resulting cell expansion may use the QUANTUM® Cell Expansion System manufactured by Terumo BCT, Inc. in Lakewood, Colo. FIGS. 17A and 17B illustrate example results for coating a cell growth surface through a coating procedure with ultrafiltration, e.g., about 10-minute ultrafiltration coating procedure (10 min UF), versus coating using an overnight circulating coating procedure or a bulls-eye coating procedure, e.g., a 28-minute modified bulls-eye coating procedure (28 min BE). For example, a 10-minute positive ultrafiltration coating procedure may be used. In such procedures, 5 million MSCs may be loaded into the system, and 25 mL of a cryoprecipitate solution may be used for coating the cell growth surface of a hollow fiber bioreactor. The 28-minute bulls-eye coating time period used to coat the hollow fibers, e.g., fibers 812 (FIG. 8B), may be divided into seven (7) different time periods, each division being four (4) minutes long. During each 4-minute divisional time period, the circulation rate for the IC loop 502, 602 may be changed by adjusting the rate and/or direction of the circulation pump 512, 612. For example, the direction and/or circulation rate for the pump 512, 612 for each subsequent time division may be −300 mL/min, 250 mL/min, −200 mL/min, 150 mL/min, −100 mL/min, 50 mL/min, and −25 mL/min. The results from using these coating procedures with cryoprecipitate (CPPT) may be as shown in FIGS. 17A and 17B.



FIGS. 17A and 17B illustrate example results of using CPPT to coat the cell growth surface of a plurality of hollow fibers using various coating and cell loading procedures, and combinations thereof. As shown in graph 1700 of FIG. 17A, the 28-minute bulls-eye coating procedure (28 min BE) with bulls-eye cell loading procedure (BullsEye) may outperform the following procedures: the 28-minute bulls-eye coating procedure (28 min BE) with load with uniform suspension cell loading procedure (LWUS); the Overnight (o/n) coating procedure with load with uniform suspension cell loading procedure (LWUS); the Overnight coating procedure with bulls-eye cell loading procedure (BullsEye); the 10-minute ultrafiltration coating procedure (10 min UF) with load with uniform suspension cell loading procedure (LWUS); and the 10-minute ultrafiltration coating procedure (10 min UF) with bulls-eye cell loading procedure (BullsEye).


As shown in graph 1700 of FIG. 17A, the 28-minute bulls-eye coating procedure (28 min BE) procedure with bulls-eye cell loading procedure (BullsEye) may yield 2.33×108 cells 1704 while the Overnight coating procedure with bulls-eye cell loading procedure (BullsEye) may yield 2.23×108 cells 1708. The Overnight coating procedure with load with uniform suspension cell loading procedure (LWUS) may yield 1.93×108 cells 1712, while the 28-minute bulls-eye coating (28 min BE) procedure with load with uniform suspension cell loading procedure (LWUS) may yield 1.53×108 cells 1716. A 10-minute ultrafiltration procedure (10 min UF) with bulls-eye cell loading procedure (BullsEye) may result in 2.15×108 cells 1720, while a 10-minute ultrafiltration coating procedure (10 min UF) LWUS procedure may yield 1.93×108 cells 1724.


These example yields are compared in FIG. 17B. Graph 1726 of FIG. 17B illustrates a percentage difference versus control procedure using cryoprecipitate (CPPT) as a coating agent in various coating procedures and cell loading procedures, and combinations thereof. As shown in graph 1726 of FIG. 17B, compared to the Overnight coating procedure with load with uniform suspension cell loading procedure (LWUS) 1728, the Overnight coating procedure with bulls-eye cell loading procedure (BullsEye) may yield 16% 1732 more cells; the 28-minute bulls-eye coating (28 min BE) procedure with load with uniform suspension cell loading procedure (LWUS) may yield 21% 1736 fewer cells; the 28-minute bulls-eye coating procedure (28 min BE) with bulls-eye cell loading procedure (BullsEye) may yield 21% 1740 more cells; the 10-minute ultrafiltration coating procedure (10 min) with load with uniform suspension cell loading procedure (LWUS) may yield substantially the same number 1744 of cells; and the 10-minute ultrafiltration coating procedure (10 min) with bulls-eye cell loading procedure (BullsEye) may yield 11% 1748 more cells.


Example 4

Example results of expanding cells by coating a cell growth surface of a cell expansion system, such as CES 500 (FIG. 5) and/or CES 600 (FIG. 6), for example, with various coating procedures are illustrated in FIGS. 18A and 18B. For example, such cell growth surface coating and resulting cell expansion may use the QUANTUM® Cell Expansion System manufactured by Terumo BCT, Inc. in Lakewood, Colo. FIGS. 18A and 18B illustrate example results for coating a cell growth surface through a coating procedure with ultrafiltration, e.g., about 10-minute ultrafiltration coating procedure (10 min UF), versus coating using an overnight circulating coating procedure, or a bulls-eye coating (BE) procedure, e.g., a 28-minute modified bulls-eye coating procedure (28 min BE). For example, a 10-minute positive ultrafiltration coating procedure may be used. In such procedures, 5 million MSCs may be loaded into the system, and a 5 mg fibronectin (FN) solution may be used for coating the cell growth surface of a hollow fiber bioreactor. In an embodiment, such 5 mg FN solution may be circulated at 20 mL/minute. In the QUANTUM® System, such 5 mg FN solution may be circulated at 20 mL/minute in the 189 mL IC loop, according to an embodiment. The 28-minute bulls-eye coating time period used to coat the hollow fibers, e.g., fibers 908 (FIG. 9), may be divided into seven (7) different time periods, each division being four (4) minutes long. During each 4-minute divisional time period, the circulation rate for the IC loop 502, 602 may be changed by adjusting the rate and/or direction of the circulation pump 512, 612. For example, the direction and/or circulation rate for the pump 512, 612 for each subsequent time division may be −300 mL/min, 250 mL/min, −200 mL/min, 150 mL/min, −100 mL/min, 50 mL/min, and −25 mL/min. The results from using these coating procedures with fibronectin (FN) may be as shown in FIGS. 18A and 18B.



FIGS. 18A and 18B illustrate example results of using FN to coat the cell growth surface of a plurality of hollow fibers using various coating and cell loading procedures, and combinations thereof.


The Overnight coating procedure with bulls-eye cell loading procedure (BullsEye) may outperform the following: the Overnight coating procedure with load with uniform suspension cell loading procedure (LWUS); the 28-minute bulls-eye coating (28 min BE) procedure with load with uniform suspension cell loading procedure (LWUS); the 28-minute bulls-eye coating (28 min BE) procedure with bulls-eye cell loading procedure (BullsEye); the 10-minute ultrafiltration coating procedure (10 min UF) with load with uniform suspension cell loading procedure (LWUS); and the 10-minute ultrafiltration coating procedure (10 min UF) with bulls-eye cell loading procedure (BullsEye). As shown in graph 1800 of FIG. 18A, the 28-minute bulls-eye coating procedure (28 min BE) with bulls-eye cell loading procedure (BullsEye) may yield 1.29×108 cells 1804, while the Overnight coating procedure with bulls-eye cell loading procedure (BullsEye) may yield 2.30×108 cells 1808. The Overnight coating procedure with load with uniform suspension cell loading procedure (LWUS) may yield 1×108 cells 1812, while the 28-minute bulls-eye coating procedure (28 min BE) with load with uniform suspension cell loading procedure (LWUS) may yield 9.57×107 cells 1816. A 10-minute ultrafiltration coating procedure (10 min UF) with a bulls-eye cell loading procedure (BullsEye) may result in 7.34×107 cells 1820, while a 10-minute ultrafiltration procedure (10 min UF) with load with uniform suspension cell loading procedure (LWUS) may yield 7.54×107 cells 1824.


These example yields are compared in FIG. 18B. Graph 1826 of FIG. 18B illustrates a percentage difference versus control procedure using fibronectin (FN) as a coating agent using in various coating procedures and cell loading procedures, and combinations thereof. As shown in graph 1826 of FIG. 18B, compared to the Overnight coating procedure with load with uniform suspension cell loading procedure (LWUS) 1828, the Overnight coating procedure with bulls-eye cell loading procedure (BullsEye) may yield 21% 1832 more cells; the 28-minute bulls-eye coating procedure with load with uniform suspension cell loading procedure (LWUS) may yield 50% 1836 fewer cells; the 28-minute bulls-eye coating procedure (28 min BE) with bulls-eye cell loading procedure (BullsEye) may yield 32% 1840 fewer cells; the 10-minute ultrafiltration coating procedure (10 min) with load with uniform suspension cell loading procedure (LWUS) may yield 60% 1844 fewer cells; and the 10-minute ultrafiltration coating procedure (10 min) with bulls-eye cell loading procedure (BullsEye) may yield 61% 1848 fewer cells.


Example 5

Example results of expanding cells by coating a cell growth surface of a cell expansion system, such as CES 500 (FIG. 5) and/or CES 600 (FIG. 6), for example, with various coating procedures are illustrated in FIGS. 19A and 19B. For example, such cell growth surface coating and resulting cell expansion may use the QUANTUM® Cell Expansion System manufactured by Terumo BCT, Inc. in Lakewood, Colo. FIGS. 19A and 19B illustrate example results for coating a cell growth surface through a coating procedure with coating using an overnight circulating coating procedure versus a bulls-eye coating procedure, e.g., a 56-minute modified bulls-eye coating procedure (56 min BE). In such procedures, 5 million MSCs may be loaded into the system, and a 5 mg fibronectin (FN) solution may be used for coating the cell growth surface of a hollow fiber bioreactor. In an embodiment, such 5 mg FN solution may be circulated at 20 mL/minute. In the QUANTUM® System, such 5 mg FN solution may be circulated at 20 mL/minute in the 189 mL IC loop, according to an embodiment. The 56-minute bulls-eye coating (56 min BE) time period used to coat the hollow fibers, e.g., fibers 908 (FIG. 9), may be divided into seven (7) different time periods, each division being minutes (8) minutes long. During each 8-minute divisional time period, the circulation rate for the IC loop 502, 602 may be changed by adjusting the rate and/or direction of the circulation pump 512, 612. For example, the direction and/or circulation rate for the pump 512, 612 for each subsequent time division may be −300 mL/min, 250 mL/min, −200 mL/min, 150 mL/min, −100 mL/min, 50 mL/min, and −25 mL/min. The results from using these coating procedures with fibronectin (FN) may be as shown in FIGS. 19A and 19B.



FIGS. 19A and 19B illustrate example results of using FN to coat the cell growth surface of a plurality of hollow fibers using various coating and cell loading procedures, and combinations thereof.


The Overnight coating procedure with uniform suspension cell loading procedure (LWUS) may outperform the following: the 56-minute bulls-eye coating (56 min BE) procedure with uniform suspension cell loading procedure (LWUS) and the 56-minute bulls-eye coating procedure (56 min BE) with BullsEye loading procedure. As shown in graph 1900 of FIG. 19A, the 56-minute bulls-eye coating procedure (56 min BE) with bulls-eye cell loading procedure (BullsEye) may yield 1.58×108 cells 1904 in a first run and 1.59×108 cells 1908 in a second run. The 56-minute bulls-eye coating procedure (56 min BE) with uniform suspension cell loading (LWUS) may yield 1.38×108 cells 1912. The Overnight coating procedure with uniform suspension cell loading procedure (LWUS) may yield 2.75×108 cells 1916.


These example yields are compared in FIG. 19B. Graph 1920 of FIG. 19B illustrates a percentage difference versus control procedure using fibronectin (FN) as a coating agent using various coating procedures and cell loading procedures, and combinations thereof. As shown in graph 1920 of FIG. 19B, compared to the Overnight coating procedure with load with uniform suspension cell loading procedure (LWUS) 1924, the 56-minute bulls-eye coating procedure (56 min BE) with uniform suspension cell loading procedure (LWUS) may yield 50% 1928 fewer cells; the 56-minute bulls-eye coating procedure (56 min BE) with bulls-eye cell loading procedure (BullsEye) may yield 43% 1932 fewer cells in a first run, and 42% 1936 fewer cells in a second run.


Example 6

The objective of this study is to characterize the expansion of human bone marrow derived mesenchymal stem cells (hMSCs) using two unique cell seeding methodologies in the QUANTUM® cell expansion system.


The current cell loading procedure used on the QUANTUM cell expansion system for pre-selected hMSCs distributes the cells in the bioreactor via uniform cell suspension. The cells are loaded into the IC Circulation loop of the QUANTUM cell expansion system and then circulated at relatively high flow rates (200 mL/min) for two minutes. This circulation method, coinciding with deliberate bioreactor motion, results in a uniform suspension of cells. Once the cells are uniformly suspended, circulation and bioreactor motion stops and the cells settle onto the bioreactor surface.


One limitation of this cell loading procedure is that only the trough of the bioreactor fiber is seeded with cells. hMSCs are frequently seeded at a specified cell density (e.g., 500 cells/cm2). In order to achieve a specified seed density, only approximately 50% of the bioreactor surface area can be considered when determining the appropriate number of cells to load. At 500 cells/cm2, the QUANTUM cell expansion system bioreactor can be seeded with 10.5E+06 cells (500 cells/cm2×21000 cm2). However, only 50% of the bioreactor surface area can be considered “seed able” due to the aforementioned mechanics of the current cell load protocol. In addition, expanding cells attempting to migrate to the “unseedable” surface of the bioreactor must overcome gravity in order to utilize that surface. It is theorized here that migrating cells may take the path of least resistance; resulting in rapid confluence within the cell population compared to those expanded in its flask counter-part.


A total of seven sterilized QUANTUM CES Disposable sets with a bioreactor may be fibronectin coated (5 mg) overnight. All QUANTUM systems may be seeded with pre-cultured hMSCs. One QUANTUM cell expansion system may use the current Load with Circulation Task and serve as the experiment control. Three QUANTUM cell expansion systems may use “Load with Circulation Task: Modification 1” (Modification 1) and three QUANTUM cell expansion systems may use “Load with Circulation Task: Modification 2” (Modification 2).


Disposable Sets: All bioreactors may be integrated into a QUANTUM cell expansion system (CES) disposable set and sterilized with ethylene oxide.


Cell Source and Density: The bioreactor that may be used may have a 2.1 m2 inner (IC) surface area. As a result, an adjustment to seeding densities for control flasks may need to be made based on the bioreactor volume fraction of the IC loop. All bioreactors may be uniformly loaded with a maximum of 20E+06 pre-selected MSCs (existing passages 1-3) from a direct re-load of the same cell source. Cells from a single donor are preferred. Seed three (3) T25 control flasks with hMSCs at the same density per cm2 as the bioreactor for comparative purposes.


CES Media IC Input Q Management & Harvest: The media feed rate (IC Input Q) may be doubled when the glucose levels fall below 70 mg/dL; the IC Input Q may be doubled a second time in the course of one day if the glucose values continue to fall below 70 mg/dL. All disposable sets may be harvested at the same time and no later than Day 8 to limit potential aggregation. Cell harvest time may be determined as a result of the metabolic characteristics displayed by the cell cultures. The target harvest time may be post-log phase growth of the cells.


Post-Harvest Evaluation: Evaluations may be performed on each of the harvest products. These evaluations may include cell count and viability.


Quantum CES Cell Load Modification 1


The current cell load procedure may be performed with the following modifications shown in bold. After allowing the cells to attach for 5 minutes, all bioreactors may be rotated 180 degrees to allow unattached cells to settle to the top of the hollow fiber membrane for an additional 5 minutes. Then bioreactor may be rotated back to the home horizontal position and proceed with the expansion protocol. The rationale for the modification is to distribute the cells over the entire surface area of the bioreactor hollow fiber.


Day: 0 Attach Cells with One (1) Rotation


Purpose: enables adherent cells to attach to the bioreactor membrane while allowing flow on the EC circulation loop. The pump flow rate to the IC loop may be set to zero.


Table 34 describes the bags of solution that may be attached to each line when performing Attach Cells. These solutions and corresponding volumes are based on the default settings for this task.









TABLE 34







Solutions for Attach Cells Modification 1


Table 34: Solutions for Attach Cells


Table 34: Solutions for Attach Cells













Volume





(estimate based on



Bag
Solution in Bag
factory default)






Cell Inlet
None
N/A



Reagent
None
N/A



IC Media
Media with Protein
6 mL/hour



Wash
None
N/A



EC Media
None
N/A









Cells pathway: Task>Load and Attach>Attach Cells


Enter the values for each setting for Attach Cells shown in Protocol Table 35-37.









TABLE 35







Task > Load and Attach > Attach Cells, Step 1 Modification 1


Table 35: Task Settings for Attach Cells, Step 1












Laboratory



Setting
Factory Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0




IC Circulation
0




Rate





EC Inlet
EC Media
IC Media



EC Inlet Rate
0




EC Circulation
0




Rate





Outlet
EC Waste




Rocker Control
Stationary (0°)

Stationary 180°


Stop Condition
Manual

Time: 5 minutes
















TABLE 36







Task > Load and Attach > Attach Cells, Step 2 Modification 1


Table 36: Task Settings for Attach Cells, Step 2












Laboratory



Setting
Factory Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0




IC Circulation
0




Rate





EC Inlet
EC Media
IC Media



EC Inlet Rate
0




EC Circulation
0




Rate





Outlet
EC Waste




Rocker Control
Stationary (0°)




Stop Condition
Manual

Time: 5 minutes
















TABLE 37







Task > Load and Attach > Attach Cells, Step 3 Modification 1


Table 37: Task Settings for Attach Cells, Step 3












Laboratory



Setting
Factory Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0




IC Circulation
0




Rate





EC Inlet
EC Media
IC Media



EC Inlet Rate

0.1





EC Circulation
30 




Rate





Outlet
EC Waste




Rocker Control
Stationary (0°)

Stationary 180°


Stop Condition
Manual









Quantum CES Cell Load Modification 2


The current cell load procedure, pre-selected MSC Expansion Protocol, may be performed with the following modifications shown in bold. Cells may be attached to the top of the hollow fiber by rotating the bioreactor to the 180 degree position during the cell attachment phase (18-24 hours). Then rotate the bioreactor back to the home position and proceed with the expansion protocol. The rationale for the modification is to allow gravity to influence the direction of cell migration toward the empty growth surface during cell expansion.


The force of gravity may be used to “influence” the cell migration during expansion. This may be accomplished by seeding the cells as described in the current cell load procedure, then during expansion the bioreactor may be rotated 180°. In this configuration the unoccupied growth surface of the bioreactor is below the seeded cells. The cells may then expand in the direction of least resistance (e.g., downward, aided by gravity).


Day: 0 Attach Cells with One (1) Rotation


Purpose: enables adherent cells to attach to the bioreactor membrane while allowing flow on the EC circulation loop. The pump flow rate to the IC loop may be set to zero.


Table 38 describes the bags of solution that may be attached to each line when performing Attach Cells. These solutions and corresponding volumes are based on the default settings for this task.









TABLE 38







Solutions for Attach Cells Modification 2


Table 38: Solutions for Attach Cells













Volume





(estimate based on



Bag
Solution in Bag
factory default)






Cell Inlet
None
N/A



Reagent
None
N/A



IC Media
Media with Protein
6 mL/hour



Wash
None
N/A



EC Media
None
N/A









Cells pathway: Task>Load and Attach>Attach Cells









TABLE 39







Task > Load and Attach > Attach Cells Modification 2


Table 39: Task Settings for Attach Cells, Step 1












Laboratory



Setting
Factory Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0




IC Circulation
0




Rate





EC Inlet
EC Media
IC Media



EC Inlet Rate

0.1





EC Circulation
30 




Rate





Outlet
EC Waste




Rocker Control
Stationary (0°)

Stationary 180°


Stop Condition
Manual









The results may be as follows:















TABLE 40





Quantum

hMSC
hMSC
Harvest
Harvest
Percent


Run
Modification
Seeding
Seeding//cm2
hMSC
hMSC/cm2
Increase





















Q621
Control
1.05E+07
500
2.56E+08
12,194
 0%


Q622
Mod 1
1.05E+07
500
3.02E+08
14,376
18%


Q623
Mod 1
1.05E+07
500


Q624
Mod 1
1.05E+07
500
3.49E+08
16,596
51%






















TABLE 41





Quantum

hMSC
hMSC
Harvest
Harvest
Percent


Run
Modification
Seeding
Seeding//cm2
hMSC
hMSC/cm2
Increase






















Control
1.05E+07
500
2.56E+08
12,194
 0%


Average
Mod 1
1.05E+07
500
3.40E+08
16,197
35%



















TABLE 42






# of Cells
# Cells
Doubling


Load Condition
Seeded
Harvested
Time (hrs)







Control
10.5 × 106
256 × 106
34.9


Gravity Influenced Expansion
10.5 × 106
345 × 106
30.9


(Modification 2)


Gravity Influenced Expansion
10.5 × 106
347 × 106
31.9


(Modification 2)


Gravity Influenced Expansion
10.5 × 106
388 × 106
31.9


(Modification 2)









Example 7

The Bull's Eye cell loading procedure is a series of steps designed to increase cell yield by allowing for a more even distribution of cells within the bioreactor of the QUANTUM® cell expansion system and by reducing the number of cells lost during a seeding process.


The Bull's Eye cell loading technique for the QUANTUM cell expansion system provides a series of steps that include and add to the ‘Load Cells with Uniform Suspension’ protocol (QUANTUM Cell Expansion System Operator's Manual for Software Version 2.0) that is commonly used to seed the bioreactor. In Load Cells with Uniform Suspension (LCWUS), suspended cells have a single opportunity to enter and attach to the internal surface of one fiber of the bioreactor after the cell suspension is circulated through the IC loop at 200 mL/min. Bull's Eye may allow cells that do not attach after the initial suspension and those that may be left in the IC loop rather than in the bioreactor to be re-suspended and transported to a different fiber within the bioreactor for subsequent attachment.


The Bull's Eye load may operate on the principle that a cell suspension introduced to the bioreactor via circulation of the IC loop may pass through a different set of bioreactor fibers depending on the rate of circulation of that cell suspension in the IC loop.


Following an initial 200 mL/min suspension cycle in loading cells with uniform suspension (LCWUS), the cell suspension in the IC loop may be circulated alternately in the positive and negative directions at sequentially lower circulation rates: −100 mL/min, 50 mL/min, −25 mL/min. Each progressively slower cycle of the IC loop may allow those cells still left in suspension an additional opportunity to enter and attach to the inner surface of a bioreactor fiber.


Each cycling of the fluid in the IC loop may be followed by a 7-minute cell-attachment period during which the IC circulation rate may be zero. MSC cells have been demonstrated to attach within 5 minutes to the inner surface of a fiber in a bioreactor used in the QUANTUM cell expansion system. As such, the 7-minute attachment may allow for 5 minutes for cell attachment, and 2 extra minutes to allow for slower-attaching cells. The four total cycles of cell suspension and cell attachment in the IC loop may be followed by a 24 hr attachment period after which an appropriate cell feeding schedule may be input as desired.


Day: −1 Coat Bioreactor


Purpose: coats the bioreactor membrane with a reagent.


Step 1: loads a reagent into the IC loop until the bag is empty.


Step 2: chases the reagent from the ARC into the IC loop.


Step 3: circulates the reagent in the IC loop.


Before starting this task, the following preconditions may be satisfied:


Include at least 40 mL of air in the cell inlet bag.


Table 43 describes the bags of solution that may be used to attach to each line when performing Coat Bioreactor. These solutions and corresponding volumes may be based on the default settings for this task.









TABLE 43







Solutions for Coat Bioreactor











Volume




(estimation based on


Bag
Solution in Bag
factory default values)





Cell Inlet
None
N/A


Reagent
Fibronectin
5 mg Fibronectin in 100 mL PBS


IC Media
None
N/A


Wash
PBS
0.1 L + 6 mL/hr (overnight)


EC Media
None
N/A









Coat Bioreactor pathway: Task>System Management>Coat Bioreactor


Enter the values for each setting for step 1 shown in Table 44.









TABLE 44







Step 1 for Coat Bioreactor











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
Reagent



IC Inlet Rate
10 mL/min


IC Circulation
100 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
 0 mL/min


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Empty Bag









Enter the values for each setting for step 2 shown in Table 45.









TABLE 45







Step 2 Setting for Coat Bioreactor











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
Wash



IC Inlet Rate
10 mL/min


IC Circulation
100 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
 0 mL/min


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
IC Volume (22 mL)









Enter the values for each setting for step 3 shown in Table 46.









TABLE 46







Step 3 Settings for Coat Bioreactor











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
None



IC Inlet Rate
 0 mL/min


IC Circulation
20 mL/min


Rate


EC Inlet
Wash


EC Inlet Rate
0.1 mL/min 


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Manual









Day: 0 IC EC Washout


Purpose: used to replace the fluid on both the IC circulation loop and the EC circulation loop. The replacement volume is specified by the number of IC Volumes and EC Volumes exchanged. Table 47 describes the bags of solution that may be attached to each line when performing IC EC Washout. These solutions and corresponding volumes may be based on the default settings for this task.









TABLE 47







Solutions for IC EC Washout













Volume





(estimation based on



Bag
Solution in Bag
factory default values)







Cell Inlet
None
N/A



Reagent
None
N/A



IC Media
Media with Protein
1.4 L



Wash
None
N/A



EC Media
None
N/A










IC EC Washout pathway: Task>Washout>IC EC Washout


Confirm the values for each setting for IC EC Washout shown in Table 48.









TABLE 48







Task Settings for IC EC Washout











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
IC Media




IC Inlet Rate
100 mL/min


IC Circulation
−17 mL/min


Rate


EC Inlet
EC Media
IC Media


EC Inlet Rate
148 mL/min


EC Circulation
−1.7 mL/min 


Rate


Outlet
IC and EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
Exchange



(2.5 IC Volumes)



(2.5 EC Volumes)









Day: 0 Condition Media


Follow the instructions in this task to allow the media to reach equilibrium with the provided gas supply before loading the cells. This task may include two separate steps:


Step 1: provides rapid contact between the media and the gas supply by using a high EC circulation rate.


Step 2: maintains the system in a proper state until the operator is ready to load the cells.


Table 49 describes the bags of solution that may be attached to each line when performing Condition Media. These solutions and corresponding volumes may be based on the default settings for this task.









TABLE 49







Solutions for Condition Media













Volume





(estimation based on



Line
Solution in Bag
factory default values)







Cell Inlet
None
N/A



Reagent
None
N/A



IC Media
None
N/A



Wash
None
N/A



EC Media
Media without Protein
0.1 L plus 6 mL/hour










Condition Media pathway: Task>System Management>Condition Media


Enter the values for each setting for step 1 shown in Table 50.









TABLE 50







Step 1 Settings for Condition Media











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
 0 mL/min


IC Circulation
100 mL/min


Rate


EC Inlet
EC Media
IC Media


EC Inlet Rate
 0.1 mL/min


EC Circulation
250 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Time (10 min)









Enter the values for each setting for step 2 shown in Table 51.









TABLE 51







Step 2 Settings for Condition Media











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
 0 mL/min


IC Circulation
100 mL/min 


Rate


EC Inlet
EC Media
IC Media


EC Inlet Rate
0.1 mL/min 


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Manual









Day: 0 Load Cells with Uniform Suspension


Purpose: loads the cells into the bioreactor from the cell inlet bag until the bag is empty. This task only uses IC circulation to distribute the cells and does not attempt to chase the cells from the line into the bioreactor. This task may include three separate steps.


Step 1: loads the cells from the cell inlet bag into the bioreactor.


Step 2: chases the cells from the ARC to the bioreactor. Larger chase volumes spread the cells and move them towards the IC outlet.


Step 3: promotes distribution of cells across membrane via IC circulation and no IC inlet thus no ultrafiltration.


Before starting this task, the following preconditions may be satisfied:


Include at least 40 mL of air in the cell inlet bag.


Table 52 describes the bags of solution that may be attached to each line when performing Load Cells With Uniform Suspension. These solutions and corresponding volumes may be based on the default settings for this task.









TABLE 52







Solutions for Load Cells With Uniform Suspension













Volume





(estimation based on



Line
Solution in Bag
factory default values)







Cell Inlet
Cells
N/A



Reagent
None
N/A



IC Media
Media with Protein
0.2 L



Wash
None
N/A



EC Media
None
N/A










Load Cells with Uniform suspension pathway: Task>Load and Attach>Load Cells with Uniform Suspension


Confirm the values for each setting for step 1 shown in Table 53.









TABLE 53







Step 1 Settings for Load Cells With Uniform Suspension











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
Cell




IC Inlet Rate
50 mL/min

25 mL/min


IC Circulation
200 mL/min 

150 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
 0 mL/min


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
Empty Bag









Confirm the values for each setting for step 2 shown in Table 54.









TABLE 54







Step 2 Settings for Load Cells with Uniform Suspension











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
IC Media




IC Inlet Rate
50 mL/min

25 mL/min


IC Circulation
200 mL/min 

150 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
 0 mL/min


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
IC Volume (22 mL)









Confirm the values for each setting for step 3 shown in Table 55.









TABLE 55







Step 3 Settings for Load Cells with Uniform Suspension











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
None



IC Inlet Rate
0 mL/min


IC Circulation
200 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
0 mL/min


EC Circulation
30 mL/min 


Rate


Outlet
EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
Time (2.0 min)









Day: 0 Bull's Eye Attachment


Purpose: allows adherent cells to attach to the bioreactor membrane while allowing flow on the EC circulation loop. The pump flow rate to the IC loop may be set to zero.


Step 1: Allows cells 7 minutes to attach to the inner surface of the bioreactor at 180°.


Step 2: Circulates the IC fluid and the remaining suspended cells at a high rate in a direction opposite to the initial load.


Step 3: This step is a second 7.0 minute allowance for further cell attachment. Those cells that were relocated from the IC loop or from a different region of the bioreactor will be given a chance to settle and adhere to the bioreactor.


Step 4: Again re-circulates those cells remaining in the IC loop and those cells that have yet to attach to a surface. Circulation may be in the positive direction and the circulation rate may be lower this time to avoid removing those cells that have already attached and to seed preferentially regions of the bioreactor that may not have been seeded in previous steps.


Step 5: This step is a third 7.0 minute allowance for further cell attachment. Those cells that were relocated from the IC loop or from a different region of the bioreactor will be given a chance to settle and adhere to the bioreactor.


Step 6: re-circulates those cells remaining in the IC loop and those cells that have yet to attach to a surface. Circulation may be in the negative direction and the circulation rate is lower this time to avoid removing those cells that have already attached.


Step 7: 24 hour attach cells phase. Cells may have 24 hours to anchor solidly to the bioreactor before feeding begins.


Table 56 describes the bags of solution that may be attached to each line when performing Bull's Eye Attachment. These solutions and corresponding volumes may be based on the default settings for this task.









TABLE 56







Solutions for Bull's Eye Attachment













Volume





(estimation based on



Bag
Solution in Bag
factory default values)







Cell Inlet
None
N/A



Reagent
None
N/A



IC Media
Media with Protein
6 mL/hour



Wash
None
N/A



EC Media
None
N/A










Bull's Eye attachment Cells pathway: Task>Custom>Custom


Enter the values for each setting shown in Table 57.









TABLE 57







Step 1 Task Settings for Bull's Eye Attachment











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0 mL/min


IC Circulation
0 mL/min


Rate


EC Inlet
EC Media


EC Inlet Rate
0.1 mL/min  


EC Circulation
30 mL/min 


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)
Stationary (180°)


Stop Condition
Time (7.0 min)









Enter the values for each setting shown in Table 58.









TABLE 58







Step 2 Task Settings for Bull's Eye Attachment











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0 mL/min


IC Circulation
0 mL/min

−100 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
0 mL/min


EC Circulation
0 mL/min

30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary

In Motion





(−90°, 180°, 1 sec)


Stop Condition
Manual

Time (2.0 min)









Enter the values for each setting shown in Table 59.









TABLE 59







Step 3 Task Settings for Bull's Eye Attachment











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0 mL/min


IC Circulation
0 mL/min


Rate


EC Inlet
EC Media
IC Media


EC Inlet Rate
0.1 mL/min  


EC Circulation
30 mL/min 


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Time (7.0 min)









Enter the values for each setting shown in Table 60.









TABLE 60







Step 4 Task Settings for Bull's Eye Attachment











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0 mL/min


IC Circulation
0 mL/min

50 mL/min


Rate


EC Inlet
None


EC Inlet Rate
0 mL/min


EC Circulation
0 mL/min

30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary

In Motion





(−90°, 180°, 1 sec)


Stop Condition
Manual

Time (4.0 min)









Enter the values for each setting shown in Table 61.









TABLE 61







Step 5 Task Settings for Bull's Eye Attachment











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
None



IC Inlet Rate
0 mL/min


IC Circulation
0 mL/min


Rate


EC Inlet
EC Media


EC Inlet Rate
0.1 mL/min  


EC Circulation
30 mL/min 


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Time (7.0 min)









Enter the values for each setting shown in Table 62.









TABLE 62







Step 6 Task Settings for Bull's Eye Attachment











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0 mL/min


IC Circulation
0 mL/min

−25 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
0 mL/min


EC Circulation
0 mL/min

30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
Stationary

In Motion





(−90°, 180°, 1 sec)


Stop Condition
Manual

Time (8.0 min)









Enter the values for each setting shown in Table 63.









TABLE 63







Task Settings for Bull's Eye Attachment











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
None




IC Inlet Rate
0 mL/min


IC Circulation
0 mL/min


Rate


EC Inlet
EC Media
IC Media


EC Inlet Rate
0.1 mL/min  


EC Circulation
30 mL/min 


Rate


Outlet
EC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Manual

Time (1440.0 min)









Day: 1 Feed Cells


Purpose: continuously adds a low flow rate to the IC circulation loop and/or the EC circulation loop. There are several outlet settings that can be used to remove the fluid added to the system during this task.


Table 64 describes the bags of solution that may be attached to each line when performing Feed Cells. These solutions and corresponding volumes may be based on the default settings for this task.









TABLE 64







Solutions for Feed Cells













Volume





(estimation based on



Bag
Solution in Bag
factory default values)







Cell Inlet
None
N/A



Reagent
None
N/A



IC Media
Media with Protein
6 mL/hour



Wash
None
N/A



EC Media
None
N/A










Confirm the values for each setting for step 1 for shown in Table 65.









TABLE 65







Task Settings for Feed Cells











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
IC Media



IC Inlet Rate
0.1 mL/min 


IC Circulation
20 mL/min


Rate


EC Inlet
None


EC Inlet Rate
 0 mL/min


EC Circulation
30 mL/min


Rate


Outlet
IC Outlet


Rocker Control
Stationary (0°)


Stop Condition
Manual









Increase IC Inlet rate as needed.


Release Adherent Cells And Harvest


Purpose: releases cells from the membrane, leaving the cells in the IC loop and transfers cells in suspension from the IC circulation loop, including cells in the bioreactor, into the harvest bag.


Step 1: performs the IC EC Washout task in preparation for adding a reagent. For example, the system replaces IC EC media with PBS to remove protein, Ca++, and Mg++ in preparation for adding trypsin.


Step 2: loads a reagent into the system until the bag is empty.


Step 3: chases the reagent into the IC loop.


Step 4: mixes the reagent within the IC loop.


Step 5: transfers cells in suspension from the IC circulation loop, including cells in the bioreactor, to the harvest bag.


Before starting this task, the following preconditions may be satisfied:


Include at least 40 mL of air on the cell inlet bag.


Table 66 describes the bags of solution that may be attached to each line when performing Release Adherent Cells And Harvest. These solutions and corresponding volumes may be based on the default settings for this task.









TABLE 66







Solutions for Release Adherent Cells And Harvest













Volume





(estimation based on



Bag
Solution in Bag
factory default values)







Cell Inlet
None
N/A












Reagent
Trypsin
180
mL



IC Media
Media with Protein
0.6
L



Wash
PBS
1.4
L











EC Media
None
N/A










Release Adherent Cells pathway: Task>Release and Harvest>Release Adherent Cells And Harvest


Confirm the values for each setting for step 1 shown in Table 67.









TABLE 67







Step 1 Settings for Release Adherent Cells And Harvest











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
Wash



IC Inlet Rate
100 mL/min


IC Circulation
−17 mL/min


Rate


EC Inlet
Wash


EC Inlet Rate
148 mL/min


EC Circulation
−1.7 mL/min 


Rate


Outlet
IC and EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
Exchange



(2.5 IC Volumes)



(2.5 EC Volumes)









Confirm the values for each setting for step 2 shown in Table 68.









TABLE 68







Step 2 Settings for Release Adherent Cells And Harvest











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
Reagent



IC Inlet Rate
50 mL/min


IC Circulation
300 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
 0 mL/min


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
Empty Bag









Confirm the values for each setting for step 3 shown in Table 69.









TABLE 69







Step 3 Settings for Release Adherent Cells And Harvest











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
Wash



IC Inlet Rate
50 mL/min


C Circulation
300 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
 0 mL/min


EC Circulation
30 mL/min


Rate


Outlet
EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
IC Volume (22 mL)









Confirm the values for each setting for step 4 shown in Table 70.









TABLE 70







Step 4 Settings for Release Adherent Cells And Harvest











Factory
Laboratory



Setting
Default
Default
Modifications












IC Inlet
None



IC Inlet Rate
0 mL/min


IC Circulation
300 mL/min 


Rate


EC Inlet
None


EC Inlet Rate
0 mL/min


EC Circulation
30 mL/min 


Rate


Outlet
EC Outlet


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
Time (4 min)









Confirm the values for each setting for step 5 shown in Table 71.









TABLE 71







Step 5 Settings for Release Adherent Cells And Harvest











Factory
Laboratory



Setting
Default
Default
Modifications





IC Inlet
IC Media




IC Inlet Rate
400 mL/min 


IC Circulation
−70 mL/min 


Rate


EC Inlet
EC Media
IC Media


EC Inlet Rate
60 mL/min


EC Circulation
30 mL/min


Rate


Outlet
Harvest


Rocker Control
In Motion



(−90°, 180°, 1 sec)


Stop Condition
IC Volume (378 mL)









The results of the study may be as follows:

















TABLE 72











69%
Un-
Mean








Adjusted
adjusted
Flask








Doubling
Doubling
Doubling



Time
#Cells
#Cells

Agg
Time
Time
Time


Load
(days)
Loaded
Harvested
Viability
(0-5)
(Hrs)
(Hrs)
(Hrs)























BullsEye
4.8
1.52E+06
1.97E+08
98.1%
2
27.2
31.2
24.1


BullsEye
4.8
1.52E+06
2.05E+08
98.0%
2
26.8
30.7
24.1


BullsEye
4.8
 .52E+06
2.01E+08
99.3%
2
27.1
31.0
24.1


Control
4.8
1.52E+06
1.38E+08
99.3%
2
31.0
36.2
24.1









The Bull's Eye load may be evaluated using MSC from four different donors. Yields from Bull's Eye loaded harvests may be consistently higher than the yields loaded using LCWUS and cultured under identical conditions. The mean cell yield increase using Bull's Eye (n=6) vs. LCWUS (n=4) may be 25%.


Viability of MSC samples from the IC loop taken immediately after performing the Bull's Eye load may be 100%. Viability of MSC from Bull's Eye harvests may be over 98% for all samples. MSC from Bull's Eye harvests may display typical morphology in culture, and all MSC biomarkers measured by flow cytometry may conform to ISCT standards.


Example 8

The same protocol as described above with respect to EXAMPLE 7 may be used to study modifications to the Bulls Eye attachment protocol. The modifications to the Bulls Eye attachment (Bulls Eye II), and to the protocol described above, include eliminating the attachments phases after the circulation rates: 100 ml/min; −50 ml/min; and 25 ml/min. That is, instead of having 7 minute stop conditions as described above, there is no stop condition so that the next circulation rate follows the previous circulation rate. A control, as well as an original Bulls Eye run (Bulls Eye I) may also be performed as a comparison.


The results of this study may be as follows:

















TABLE 73











69%
Un-
Mean








Adjusted
adjusted
Flask








Doubling
Doubling
Doubling



Time
#Cells
#Cells

Agg
Time
Time
Time


Load
(days)
Loaded
Harvested
Viability
(0-5)
(Hrs)
(Hrs)
(Hrs)























BullsEye I
4.9
1.52E+07
2.60E+08
99.2%
0
25.4
28.7
26.0 (500










cells/cm2)


Control
4.9
1.52E+07
1.94E+08
97.5%
1
27.9
32.0
5.5 (345










cells/cm2)


BullsEye II
4.9
1.52E+07
2.10E+08
98.1%
1
27.2
31.1
?


BullsEye II
4.9
1.52E+07
2.07E+08
98.7%
1
27.3
31.2
?









It will be apparent to those skilled in the art that various modifications and variations can be made to the methods and structure of the present invention without departing from its scope. Thus it should be understood that the present invention is not be limited to the specific examples given. Rather, the present invention is intended to cover modifications and variations within the scope of the following claims and their equivalents.


As used herein, “at least one,” “one or more,” and “and/or” are open-ended expressions that are both conjunctive and disjunctive in operation. For example, each of the expressions “at least one of A, B and C,” “at least one of A, B, or C,” “one or more of A, B, and C,” “one or more of A, B, or C” and “A, B, and/or C” can mean A alone, B alone, C alone, A and B together, A and C together, B and C together, or A, B and C together.


While example embodiments and applications of the present invention have been illustrated and described, it is to be understood that the invention is not limited to the precise configuration and resources described above. Various modifications, changes, and variations apparent to those skilled in the art may be made in the arrangement, operation, and details of the methods and systems of the present invention disclosed herein without departing from the scope of the present invention.

Claims
  • 1. A system for growing cells, the system comprising: a bioreactor comprising a hollow fiber membrane with a plurality of hollow fibers;a first pump;a second pump;a processor; anda memory including processor executable instructions that when executed by the processor perform the steps of: activating the first pump to introduce a first fluid into the bioreactor, and while introducing the first fluid into the bioreactor: activating the second pump to circulate a second fluid at a first flow rate through the bioreactor, wherein the second fluid comprises a reagent, wherein the first fluid promotes coating of the bioreactor with the reagent;while circulating the second fluid, maintaining the bioreactor in a first orientation for a first period of time to allow at least a first portion of the reagent to coat the bioreactor by ultrafiltration; andafter the first period of time, changing the flow rate of the second pump to circulate the second fluid at a second flow rate slower than the first flow rate through the bioreactor for a second period of time to allow a second portion of the reagent to coat the bioreactor by ultrafiltration;stopping the first pump; andactivating the second pump to circulate a third fluid through the bioreactor to remove a portion of the reagent not coated on the bioreactor.
  • 2. The system of claim 1, further comprising a rocking device including a motor for rotating the bioreactor from the first orientation to a second orientation.
  • 3. The system of claim 2, wherein the first orientation is about 180 degrees from the second orientation.
  • 4. The system of claim 2, wherein the memory includes processor executable instructions that when executed by the processor cause the rocking device to rotate the bioreactor from the first orientation to the second orientation after the first period of time and before circulating the second fluid at the second flow rate.
  • 5. The system of claim 1, wherein the second fluid at the second flow rate travels in a direction opposite to a direction of the second fluid at the first flow rate within the bioreactor.
  • 6. The system of claim 1, wherein the first and second portions of the reagent are coated on an intracapillary surface of the hollow fibers.
  • 7. The system of claim 1, wherein the first and second portions of the reagent are coated on an extracapillary surface of the hollow fibers.
  • 8. The system of claim 1, wherein a direction of ultrafiltration is based on a cell growth surface of the bioreactor on which cells are grown.
  • 9. The system of claim 1, wherein the memory includes processor executable instructions that when executed by the processor activate the second pump to load cells into the bioreactor.
  • 10. The system of claim 6, wherein the first and second portions of the reagent aid attachment of the cells to the hollow fibers.
  • 11. The system of claim 7, wherein the memory includes processor executable instructions that when executed by the processor activate the second pump to feed the cells.
  • 12. A system for growing cells, the system comprising: a bioreactor comprising a hollow fiber membrane with a plurality of hollow fibers;a first pump;a second pump;processing circuitry configured to: activate the first pump to introduce a first fluid into the bioreactor;activate the second pump to circulate a second fluid at a first flow rate through the bioreactor, wherein the second fluid comprises a reagent, wherein the first fluid promotes coating of the bioreactor with the reagent;while circulating the second fluid, maintain the bioreactor in a first orientation for a first period of time to allow at least a first portion of the reagent to coat the bioreactor by ultrafiltration;after the first period of time, change the flow rate of the second pump to circulate the second fluid at a second flow rate slower than the first flow rate through the bioreactor for a second period of time to allow a second portion of the reagent to coat the bioreactor by ultrafiltration;stop the first pump; andactivate the second pump to circulate a third fluid through the bioreactor to remove a portion of the reagent not coated on the bioreactor.
  • 13. The system of claim 12, further comprising a rocking device including a motor for rotating the bioreactor from the first orientation to a second orientation.
  • 14. The system of claim 13, wherein the first orientation is about 180 degrees from the second orientation.
  • 15. The system of claim 13, wherein the processing circuitry is configured to control the rocking device to rotate the bioreactor from the first orientation to the second orientation after the first period of time and before circulating the second fluid at the second flow rate.
  • 16. The system of claim 12, wherein the second fluid at the second flow rate travels in a direction opposite to a direction of the second fluid at the first flow rate within the bioreactor.
  • 17. The system of claim 12, wherein the first and second portions of the reagent are coated on an intracapillary surface of the hollow fibers.
  • 18. The system of claim 12, wherein the first and second portions of the reagent are coated on an extracapillary surface of the hollow fibers.
CROSS-REFERENCE TO RELATED APPLICATION

This application is a divisional application of, and claims priority to, U.S. patent application Ser. No. 15/616,876, entitled, “Coating a Bioreactor,” filed on Jun. 7, 2017, now U.S. Pat. No. 11,104,874, issued on Aug. 31, 2021, which claims priority to, and the benefit of, U.S. Provisional Application Ser. No. 62/347,025, filed on Jun. 7, 2016, and entitled, “Growth Surface Coating,” and U.S. Provisional Application Ser. No. 62/347,012, filed on Jun. 7, 2016, and entitled, “Coating a Bioreactor.” The disclosures of the above-identified applications are hereby incorporated by reference in their entireties as if set forth herein in full for all that they teach and for all purposes.

US Referenced Citations (1062)
Number Name Date Kind
2997077 Rodrigues Aug 1961 A
3013435 Rodrigues Dec 1961 A
3067915 Shapiro et al. Dec 1962 A
3191807 Rodrigues Jun 1965 A
3283727 Rodrigues Nov 1966 A
3701717 Ingvorsen Oct 1972 A
3821087 Knazek et al. Jun 1974 A
3896061 Tanzawa et al. Jul 1975 A
4173415 Wyatt Nov 1979 A
4301010 Eddleman et al. Nov 1981 A
4301118 Eddleman et al. Nov 1981 A
4391912 Yoshida et al. Jul 1983 A
4412990 Lundblad et al. Nov 1983 A
4418691 Yannas et al. Dec 1983 A
4439322 Sonoda et al. Mar 1984 A
4439901 Eddleman Apr 1984 A
4478829 Landaburu et al. Oct 1984 A
4486188 Altshuler et al. Dec 1984 A
4509695 Bessman Apr 1985 A
4585654 Landaburu et al. Apr 1986 A
4618586 Walker et al. Oct 1986 A
4629686 Gruenberg Dec 1986 A
4647539 Bach Mar 1987 A
4650766 Harm et al. Mar 1987 A
4670544 Schwinn et al. Jun 1987 A
4705918 Harmon Nov 1987 A
4722902 Harm et al. Feb 1988 A
4727059 Binder et al. Feb 1988 A
4804628 Cracauer et al. Feb 1989 A
4828706 Eddleman May 1989 A
4885087 Kopf Dec 1989 A
4889812 Guinn et al. Dec 1989 A
4894342 Guinn et al. Jan 1990 A
4897358 Carrasco Jan 1990 A
4918019 Guinn Apr 1990 A
4940541 Aoyagi Jul 1990 A
4960521 Keller Oct 1990 A
4973558 Wilson et al. Nov 1990 A
4988623 Schwarz et al. Jan 1991 A
5015585 Robinson May 1991 A
5019054 Clement et al. May 1991 A
5079168 Amiot Jan 1992 A
5126238 Gebhard et al. Jun 1992 A
5130141 Law et al. Jul 1992 A
5149544 Gentile et al. Sep 1992 A
5162225 Sager et al. Nov 1992 A
5169930 Ruoslahti et al. Dec 1992 A
5192553 Boyse et al. Mar 1993 A
5197985 Caplan et al. Mar 1993 A
5202254 Amiot Apr 1993 A
5225346 Matsumiya et al. Jul 1993 A
5226914 Caplan et al. Jul 1993 A
5240614 Ofsthun et al. Aug 1993 A
5240861 Bieri Aug 1993 A
5283058 Faustman Feb 1994 A
5310676 Johansson et al. May 1994 A
5324428 Flaherty Jun 1994 A
5330915 Wilson et al. Jul 1994 A
5342752 Platz et al. Aug 1994 A
5399493 Emerson et al. Mar 1995 A
5416022 Amiot May 1995 A
5422197 Zito Jun 1995 A
5436151 McGlave et al. Jul 1995 A
5437994 Emerson et al. Aug 1995 A
5439757 Zito Aug 1995 A
5459069 Palsson et al. Oct 1995 A
5460964 McGlave et al. Oct 1995 A
H1509 Eran et al. Dec 1995 H
5478739 Slivka et al. Dec 1995 A
5486359 Caplan et al. Jan 1996 A
5496659 Zito Mar 1996 A
5507949 Ho Apr 1996 A
5510257 Sirkar et al. Apr 1996 A
5512180 Ho Apr 1996 A
5527467 Ofsthun et al. Jun 1996 A
5541105 Melink et al. Jul 1996 A
5543316 Zawadzka et al. Aug 1996 A
5545492 Zito Aug 1996 A
5549674 Humes et al. Aug 1996 A
5571720 Grandies et al. Nov 1996 A
5591625 Gerson et al. Jan 1997 A
5593580 Kopf Jan 1997 A
5595909 Hu et al. Jan 1997 A
5599703 Davis et al. Feb 1997 A
5605822 Emerson et al. Feb 1997 A
5605829 McGlave et al. Feb 1997 A
5605835 Hu et al. Feb 1997 A
5622857 Goffe Apr 1997 A
5626731 Cooley et al. May 1997 A
5627070 Gruenberg May 1997 A
5631006 Melink et al. May 1997 A
5635386 Palsson et al. Jun 1997 A
5635387 Fei et al. Jun 1997 A
5643736 Bruder et al. Jul 1997 A
5643794 Liu et al. Jul 1997 A
5646043 Emerson et al. Jul 1997 A
5654186 Cerami et al. Aug 1997 A
5656421 Gebhard et al. Aug 1997 A
5658995 Kohn et al. Aug 1997 A
5667985 O'Leary et al. Sep 1997 A
5670147 Emerson et al. Sep 1997 A
5670351 Emerson et al. Sep 1997 A
5674750 Kraus et al. Oct 1997 A
5684712 Goffe et al. Nov 1997 A
5686289 Humes et al. Nov 1997 A
5688687 Palsson et al. Nov 1997 A
5695989 Kalamasz Dec 1997 A
5700289 Breitbart et al. Dec 1997 A
5705534 D'Agostino et al. Jan 1998 A
5707859 Miller et al. Jan 1998 A
5712163 Parenteau et al. Jan 1998 A
5728581 Schwartz et al. Mar 1998 A
5733541 Taichman et al. Mar 1998 A
5733542 Haynesworth et al. Mar 1998 A
5736396 Bruder et al. Apr 1998 A
5744347 Wagner et al. Apr 1998 A
5750651 Oppermann et al. May 1998 A
5753506 Johe May 1998 A
5763194 Slowiaczek et al. Jun 1998 A
5763197 Tsukamoto et al. Jun 1998 A
5763261 Gruenberg Jun 1998 A
5763266 Palsson et al. Jun 1998 A
5766944 Ruiz Jun 1998 A
5772994 Ildstad et al. Jun 1998 A
5783075 Eddleman et al. Jul 1998 A
5783216 Faustman Jul 1998 A
5785912 Cooley et al. Jul 1998 A
5804446 Cerami et al. Sep 1998 A
5806529 Reisner et al. Sep 1998 A
5807686 Wagner et al. Sep 1998 A
5811094 Caplan et al. Sep 1998 A
5811397 Francavilla et al. Sep 1998 A
5817773 Wilson et al. Oct 1998 A
5821218 Toback et al. Oct 1998 A
5827735 Young et al. Oct 1998 A
5827740 Pittenger Oct 1998 A
5830921 Cooley et al. Nov 1998 A
5833979 Schinstine et al. Nov 1998 A
5837258 Grotendorst Nov 1998 A
5837539 Caplan et al. Nov 1998 A
5840502 Van Vlasselaer Nov 1998 A
5840576 Schinstine et al. Nov 1998 A
5840580 Terstappen et al. Nov 1998 A
5842477 Naughton et al. Dec 1998 A
5843633 Yin et al. Dec 1998 A
5846796 Cerami et al. Dec 1998 A
5853247 Shroyer Dec 1998 A
5853717 Schinstine et al. Dec 1998 A
5855608 Brekke et al. Jan 1999 A
5855613 Antanavich et al. Jan 1999 A
5855619 Caplan et al. Jan 1999 A
5858747 Schinstine et al. Jan 1999 A
5858782 Long et al. Jan 1999 A
5861315 Nakahata Jan 1999 A
5866115 Kanz et al. Feb 1999 A
5866420 Talbot et al. Feb 1999 A
5868930 Kopf Feb 1999 A
5882295 Kope Mar 1999 A
5882918 Goffe Mar 1999 A
5882929 Fofonoff et al. Mar 1999 A
5888807 Palsson et al. Mar 1999 A
5902741 Purchio et al. May 1999 A
5906827 Khouri et al. May 1999 A
5906934 Grande et al. May 1999 A
5908782 Marshak et al. Jun 1999 A
5908784 Johnstone et al. Jun 1999 A
5912177 Turner et al. Jun 1999 A
5914108 Tsukamoto et al. Jun 1999 A
5922597 Verfaillie et al. Jul 1999 A
5922847 Broudy et al. Jul 1999 A
5925567 Kraus et al. Jul 1999 A
5928945 Seliktar et al. Jul 1999 A
5935849 Schinstine et al. Aug 1999 A
5938929 Shimagaki et al. Aug 1999 A
5939323 Valentini et al. Aug 1999 A
5942225 Bruder et al. Aug 1999 A
5955353 Amiot Sep 1999 A
5958763 Goffe Sep 1999 A
5965436 Thiede et al. Oct 1999 A
5972703 Long et al. Oct 1999 A
5980795 Klotzer et al. Nov 1999 A
5981211 Hu et al. Nov 1999 A
5981708 Lawman et al. Nov 1999 A
5985653 Armstrong et al. Nov 1999 A
5994129 Armstrong et al. Nov 1999 A
5998184 Shi Dec 1999 A
6001585 Gramer Dec 1999 A
6001643 Spaulding Dec 1999 A
6001647 Peck et al. Dec 1999 A
6004743 Kenyon et al. Dec 1999 A
6010696 Caplan et al. Jan 2000 A
6015554 Galy Jan 2000 A
6022540 Bruder et al. Feb 2000 A
6022742 Kopf Feb 2000 A
6022743 Naughton et al. Feb 2000 A
6027743 Khouri et al. Feb 2000 A
6030836 Thiede et al. Feb 2000 A
6040180 Johe Mar 2000 A
6045818 Cima et al. Apr 2000 A
6048721 Armstrong et al. Apr 2000 A
6048727 Kopf Apr 2000 A
6049026 Muschler Apr 2000 A
6054121 Cerami et al. Apr 2000 A
6060270 Humes May 2000 A
6066317 Yang et al. May 2000 A
6071691 Hoekstra et al. Jun 2000 A
6074366 Rogers et al. Jun 2000 A
6082364 Balian et al. Jul 2000 A
6083747 Wong et al. Jul 2000 A
6086643 Clark et al. Jul 2000 A
6087113 Caplan et al. Jul 2000 A
6096532 Armstrong et al. Aug 2000 A
6096537 Chappel Aug 2000 A
6103117 Shimagaki et al. Aug 2000 A
6103522 Torok-Storb et al. Aug 2000 A
6110176 Shapira Aug 2000 A
6110482 Khouri et al. Aug 2000 A
6114307 Jaspers et al. Sep 2000 A
6117985 Thomas et al. Sep 2000 A
6120491 Kohn et al. Sep 2000 A
6127141 Kopf Oct 2000 A
6129911 Faris Oct 2000 A
6143293 Weiss et al. Nov 2000 A
6146360 Rogers et al. Nov 2000 A
6146888 Smith et al. Nov 2000 A
6149902 Artavanis-Tsakonas et al. Nov 2000 A
6149906 Mosca Nov 2000 A
6150164 Humes Nov 2000 A
6152964 Van Blitterswijk et al. Nov 2000 A
6162643 Wille, Jr. Dec 2000 A
6165225 Antanavich et al. Dec 2000 A
6165785 Ogle et al. Dec 2000 A
6174333 Kadiyala et al. Jan 2001 B1
6174526 Cerami et al. Jan 2001 B1
6174666 Pavlakis et al. Jan 2001 B1
6179871 Halpern Jan 2001 B1
6197325 MacPhee et al. Mar 2001 B1
6197575 Griffith et al. Mar 2001 B1
6200606 Peterson et al. Mar 2001 B1
6214369 Grande et al. Apr 2001 B1
6214574 Kopf Apr 2001 B1
6224860 Brown May 2001 B1
6225119 Qasba et al. May 2001 B1
6225368 D'Agostino et al. May 2001 B1
6228117 De Bruijn et al. May 2001 B1
6228607 Kersten et al. May 2001 B1
6228635 Armstrong et al. May 2001 B1
6238908 Armstrong et al. May 2001 B1
6239157 Mbalaviele May 2001 B1
6242252 Reid et al. Jun 2001 B1
6248319 Zsebo et al. Jun 2001 B1
6248587 Rodgers et al. Jun 2001 B1
6255112 Thiede et al. Jul 2001 B1
6258597 Bachovchin et al. Jul 2001 B1
6258778 Rodgers et al. Jul 2001 B1
6261549 Fernandez et al. Jul 2001 B1
6280718 Kaufman et al. Aug 2001 B1
6280724 Moore Aug 2001 B1
6281012 McIntosh et al. Aug 2001 B1
6281195 Rueger et al. Aug 2001 B1
6287864 Bagnis et al. Sep 2001 B1
6291249 Mahant et al. Sep 2001 B1
6297213 Oppermann et al. Oct 2001 B1
6299650 Van Blitterswijk et al. Oct 2001 B1
6306424 Vyakarnam et al. Oct 2001 B1
6306575 Thomas et al. Oct 2001 B1
6322784 Pittenger et al. Nov 2001 B1
6322786 Anderson Nov 2001 B1
6326198 Emerson et al. Dec 2001 B1
6326201 Fung et al. Dec 2001 B1
6328765 Hardwick et al. Dec 2001 B1
6328960 McIntosh et al. Dec 2001 B1
6333029 Vyakarnam et al. Dec 2001 B1
6335195 Rodgers et al. Jan 2002 B1
6338942 Kraus et al. Jan 2002 B2
6340592 Stringer Jan 2002 B1
6342370 Connolly et al. Jan 2002 B1
6355239 Bruder et al. Mar 2002 B1
6358252 Shapira Mar 2002 B1
6361997 Huss Mar 2002 B1
6365149 Vyakarnam et al. Apr 2002 B2
6368636 McIntosh et al. Apr 2002 B1
6372210 Brown Apr 2002 B2
6372244 Antanavich et al. Apr 2002 B1
6372494 Naughton et al. Apr 2002 B1
6372495 Flendrig Apr 2002 B1
6372892 Ballinger et al. Apr 2002 B1
6376742 Zdrahala et al. Apr 2002 B1
6379953 Bruder et al. Apr 2002 B1
6387367 Davis-Sproul et al. May 2002 B1
6387369 Pittenger et al. May 2002 B1
6387693 Rieser et al. May 2002 B2
6387964 D'Agostino et al. May 2002 B1
6392118 Hammang et al. May 2002 B1
6394812 Sullivan et al. May 2002 B1
6399580 Elias et al. Jun 2002 B1
6410320 Humes Jun 2002 B1
6414219 Denhardt et al. Jul 2002 B1
6416496 Rogers et al. Jul 2002 B1
6417205 Cooke et al. Jul 2002 B1
6419829 Ho et al. Jul 2002 B2
6420138 Gentz et al. Jul 2002 B1
6423681 Barasch et al. Jul 2002 B1
6426332 Rueger et al. Jul 2002 B1
6428802 Atala Aug 2002 B1
6429012 Kraus et al. Aug 2002 B1
6429013 Halvorsen et al. Aug 2002 B1
6432653 Okarma Aug 2002 B1
6432711 Dinsmore et al. Aug 2002 B1
6440407 Bauer et al. Aug 2002 B1
6440734 Pykett et al. Aug 2002 B1
6451562 Ruben et al. Sep 2002 B1
6454811 Sherwood et al. Sep 2002 B1
6455678 Yin et al. Sep 2002 B1
6458585 Vachula et al. Oct 2002 B1
6458589 Rambhatla et al. Oct 2002 B1
6461495 Morrissey et al. Oct 2002 B1
6461853 Zhu Oct 2002 B1
6464983 Grotendorst Oct 2002 B1
6465205 Hicks, Jr. Oct 2002 B2
6465247 Weissman et al. Oct 2002 B1
6465249 Reya et al. Oct 2002 B2
6468794 Uchida et al. Oct 2002 B1
6472200 Mitrani Oct 2002 B1
6475481 Talmadge Nov 2002 B2
6479064 Atala Nov 2002 B1
6482231 Abatangelo et al. Nov 2002 B1
6482411 Ahuja et al. Nov 2002 B1
6482645 Atala Nov 2002 B2
6482926 Thomas et al. Nov 2002 B1
6488925 Ruben et al. Dec 2002 B2
6491918 Thomas et al. Dec 2002 B1
6495129 Li et al. Dec 2002 B1
6495364 Hammang et al. Dec 2002 B2
6497875 Sorrell et al. Dec 2002 B1
6498034 Strobl Dec 2002 B1
6506574 Rambhatla et al. Jan 2003 B1
6511510 de Bruijn et al. Jan 2003 B1
6511767 Calver et al. Jan 2003 B1
6511958 Atkinson et al. Jan 2003 B1
6514514 Atkinson et al. Feb 2003 B1
6524452 Clark et al. Feb 2003 B1
6528052 Smith et al. Mar 2003 B1
6528245 Sanchez-Ramos et al. Mar 2003 B2
6531445 Cohen et al. Mar 2003 B1
6534084 Vyakarnam et al. Mar 2003 B1
6537807 Smith et al. Mar 2003 B1
6541024 Kadiyala et al. Apr 2003 B1
6541249 Wager et al. Apr 2003 B2
6544506 Reisner Apr 2003 B2
6548734 Glimcher et al. Apr 2003 B1
6555324 Olweus et al. Apr 2003 B1
6555374 Gimble et al. Apr 2003 B1
6559119 Burgess et al. May 2003 B1
6562616 Toner et al. May 2003 B1
6565843 Cohen et al. May 2003 B1
6566126 Cadwell May 2003 B2
6569421 Hodges May 2003 B2
6569427 Boyse et al. May 2003 B1
6569428 Isner et al. May 2003 B1
6569654 Shastri et al. May 2003 B2
6576188 Rose et al. Jun 2003 B1
6576428 Assenmacher et al. Jun 2003 B1
6576464 Gold et al. Jun 2003 B2
6576465 Long Jun 2003 B1
6582471 Bittmann et al. Jun 2003 B1
6582955 Martinez et al. Jun 2003 B2
6586192 Peschle et al. Jul 2003 B1
6589728 Csete et al. Jul 2003 B2
6589786 Mangano et al. Jul 2003 B1
6596274 Abatangelo et al. Jul 2003 B1
6599300 Vibe-Hansen et al. Jul 2003 B2
6599520 Scarborough et al. Jul 2003 B2
6610535 Lu et al. Aug 2003 B1
6613798 Porter et al. Sep 2003 B1
6616912 Eddleman et al. Sep 2003 B2
6617070 Morrissey et al. Sep 2003 B1
6617152 Bryhan et al. Sep 2003 B2
6617159 Cancedda et al. Sep 2003 B1
6623749 Williams et al. Sep 2003 B2
6623942 Ruben et al. Sep 2003 B2
6624108 Clark et al. Sep 2003 B1
6626950 Brown et al. Sep 2003 B2
6627191 Bartelmez et al. Sep 2003 B1
6632425 Li et al. Oct 2003 B1
6632620 Makarovskiy Oct 2003 B1
6632934 Moreadith et al. Oct 2003 B1
6638765 Rosenberg Oct 2003 B1
6642019 Anderson et al. Nov 2003 B1
6642048 Xu et al. Nov 2003 B2
6642049 Chute et al. Nov 2003 B1
6642201 Khavinson et al. Nov 2003 B1
6645489 Pykett et al. Nov 2003 B2
6645727 Thomas et al. Nov 2003 B2
6645763 Kobayashi et al. Nov 2003 B2
6649189 Talmadge et al. Nov 2003 B2
6649595 Clackson et al. Nov 2003 B2
6649631 Orme et al. Nov 2003 B1
6653105 Triglia et al. Nov 2003 B2
6653134 Prockop et al. Nov 2003 B2
6660523 Blom et al. Dec 2003 B2
6662805 Frondoza et al. Dec 2003 B2
6667034 Palsson et al. Dec 2003 B2
6667176 Funk et al. Dec 2003 B1
6670169 Schob et al. Dec 2003 B1
6670175 Wang et al. Dec 2003 B2
6673603 Baetge et al. Jan 2004 B2
6673606 Tennekoon et al. Jan 2004 B1
6677306 Veis et al. Jan 2004 B1
6680166 Mullon et al. Jan 2004 B1
6683192 Baxter et al. Jan 2004 B2
6685936 McIntosh et al. Feb 2004 B2
6685971 Xu Feb 2004 B2
6686198 Melton et al. Feb 2004 B1
6696575 Schmidt et al. Feb 2004 B2
6699716 Sullivan et al. Mar 2004 B2
6703017 Peck et al. Mar 2004 B1
6703209 Baetscher et al. Mar 2004 B1
6706293 Quintanilla Almagro et al. Mar 2004 B1
6709864 Pittenger et al. Mar 2004 B1
6712850 Vyakarnam et al. Mar 2004 B2
6719969 Hogaboam et al. Apr 2004 B1
6719970 Costantino et al. Apr 2004 B1
6720340 Cooke et al. Apr 2004 B1
6730314 Jeschke et al. May 2004 B2
6730315 Usala et al. May 2004 B2
6730510 Roos et al. May 2004 B2
6733746 Daley et al. May 2004 B2
6734000 Chin et al. May 2004 B2
6740493 Long et al. May 2004 B1
6759039 Tsang et al. Jul 2004 B2
6759245 Toner et al. Jul 2004 B1
6761883 Weissman et al. Jul 2004 B2
6761887 Kavalkovich et al. Jul 2004 B1
6767699 Polo et al. Jul 2004 B2
6767737 Wilson et al. Jul 2004 B1
6767738 Gage et al. Jul 2004 B1
6767740 Sramek et al. Jul 2004 B2
6770478 Crowe et al. Aug 2004 B2
6777227 Ricci et al. Aug 2004 B2
6777231 Katz et al. Aug 2004 B1
6780612 Ford et al. Aug 2004 B1
6787355 Miller et al. Sep 2004 B1
6790455 Chu et al. Sep 2004 B2
6793939 Badylak Sep 2004 B2
6797269 Mosca et al. Sep 2004 B2
6797514 Berenson et al. Sep 2004 B2
6800480 Bodnar et al. Oct 2004 B1
6802971 Gorsuch et al. Oct 2004 B2
6805860 Alt Oct 2004 B1
6809117 Enikolopov et al. Oct 2004 B2
6811773 Gentz et al. Nov 2004 B1
6811776 Kale et al. Nov 2004 B2
6814961 Jensen et al. Nov 2004 B1
6821513 Fleming Nov 2004 B1
6821790 Mahant et al. Nov 2004 B2
6828145 Avital et al. Dec 2004 B2
6833269 Carpenter Dec 2004 B2
6835377 Goldberg et al. Dec 2004 B2
6835566 Smith et al. Dec 2004 B2
6838284 de Bruijn et al. Jan 2005 B2
6841150 Halvorsen et al. Jan 2005 B2
6841151 Stringer Jan 2005 B2
6841294 Morrissey et al. Jan 2005 B1
6841355 Livant Jan 2005 B2
6841386 Kraus et al. Jan 2005 B2
6841542 Bartelmez et al. Jan 2005 B2
6844011 Faustman Jan 2005 B1
6844187 Weschler et al. Jan 2005 B1
6849051 Sramek et al. Feb 2005 B2
6849255 Gazit et al. Feb 2005 B2
6849454 Kelly et al. Feb 2005 B2
6849662 Enikolopov et al. Feb 2005 B2
6852308 Kohn et al. Feb 2005 B2
6852321 Colucci et al. Feb 2005 B2
6852533 Rafii et al. Feb 2005 B1
6855242 Comninellis et al. Feb 2005 B1
6855542 DiMilla et al. Feb 2005 B2
6863900 Kadiyala et al. Mar 2005 B2
6866843 Habener et al. Mar 2005 B2
6872389 Faris Mar 2005 B1
6875430 McIntosh et al. Apr 2005 B2
6887600 Morrissey et al. May 2005 B2
6887704 Peled et al. May 2005 B2
6908763 Akashi et al. Jun 2005 B1
6911201 Merchav et al. Jun 2005 B1
6914279 Lu et al. Jul 2005 B2
6939955 Rameshwar Sep 2005 B2
6943008 Ma Sep 2005 B1
6965018 Mikesell et al. Nov 2005 B2
6969308 Doi et al. Nov 2005 B2
6979308 MacDonald et al. Dec 2005 B1
6979321 Geis et al. Dec 2005 B2
6988004 Kanno et al. Jan 2006 B2
7008394 Geise et al. Mar 2006 B2
7015037 Furcht et al. Mar 2006 B1
7029666 Bruder et al. Apr 2006 B2
7033339 Lynn Apr 2006 B1
7033823 Chang Apr 2006 B2
7041493 Rao May 2006 B2
7045098 Stephens May 2006 B2
7052517 Murphy et al. May 2006 B2
7056493 Kohn et al. Jun 2006 B2
7112441 Uemura et al. Sep 2006 B2
7118672 Husain et al. Oct 2006 B2
7122178 Simmons et al. Oct 2006 B1
7160719 Nyberg Jan 2007 B2
7169295 Husain et al. Jan 2007 B2
7172696 Martinez et al. Feb 2007 B1
7175763 Husain et al. Feb 2007 B2
7192776 Stephens Mar 2007 B2
7195711 Gorsuch et al. Mar 2007 B2
7250154 Kohn et al. Jul 2007 B2
7270996 Cannon et al. Sep 2007 B2
7271234 Kohn et al. Sep 2007 B2
7294259 Cote et al. Nov 2007 B2
7300571 Cote et al. Nov 2007 B2
7303676 Husain et al. Dec 2007 B2
7303677 Cote et al. Dec 2007 B2
7341062 Chachgues et al. Mar 2008 B2
7358001 Morrissey et al. Apr 2008 B2
7361493 Hammond et al. Apr 2008 B1
7368169 Kohn et al. May 2008 B2
7378271 Bader May 2008 B2
7399872 Webster et al. Jul 2008 B2
7416884 Gemmiti et al. Aug 2008 B2
7425440 Malinge et al. Sep 2008 B2
7435586 Bartlett et al. Oct 2008 B2
7438902 Habener et al. Oct 2008 B2
7439057 Frangos et al. Oct 2008 B2
7452529 Brown, Jr. et al. Nov 2008 B2
7491388 Mc Intosh et al. Feb 2009 B1
7494811 Wolfinbarger, Jr. et al. Feb 2009 B2
7514074 Pittenger et al. Apr 2009 B2
7514075 Hedrick et al. Apr 2009 B2
7524676 Reiter et al. Apr 2009 B2
7531351 Marx et al. May 2009 B2
7534601 Wikswo et al. May 2009 B2
7534609 Merchav et al. May 2009 B2
7572374 Gorsuch et al. Aug 2009 B2
7579179 Bryhan et al. Aug 2009 B2
7585412 Gorsuch et al. Sep 2009 B2
7588938 Ma Sep 2009 B2
7598075 Smith et al. Oct 2009 B2
7608447 Cohen et al. Oct 2009 B2
7659118 Furcht et al. Feb 2010 B2
7678573 Merchav et al. Mar 2010 B2
7682822 Noll et al. Mar 2010 B2
7682823 Runyon Mar 2010 B1
7718430 Antwiler May 2010 B2
7722896 Kohn et al. May 2010 B2
D620732 Andrews Aug 2010 S
7838122 Kohn et al. Nov 2010 B2
7838289 Furcht et al. Nov 2010 B2
7892829 Pittenger et al. Feb 2011 B2
7919307 Klaus et al. Apr 2011 B2
7927587 Blazer et al. Apr 2011 B2
7989851 Lu et al. Aug 2011 B2
8008528 Kohn et al. Aug 2011 B2
8034365 Baluca Oct 2011 B2
8075881 Verfaillie et al. Dec 2011 B2
8147824 Maziarz et al. Apr 2012 B2
8147863 Kohn et al. Apr 2012 B2
8158120 Pittenger et al. Apr 2012 B2
8158121 Pittenger et al. Apr 2012 B2
8252280 Verfaillie et al. Aug 2012 B1
8252887 Bolikal et al. Aug 2012 B2
8288159 Warren et al. Oct 2012 B2
8288590 Kohn et al. Oct 2012 B2
8298823 Warren et al. Oct 2012 B2
8309347 Antwiler Nov 2012 B2
8361453 Uhrich et al. Jan 2013 B2
8377683 Lu et al. Feb 2013 B2
8383397 Wojciechowski et al. Feb 2013 B2
8383806 Rameshwar Feb 2013 B2
8399245 Leuthaeuser et al. Mar 2013 B2
8415449 Kohn et al. Apr 2013 B2
8435781 Kodama May 2013 B2
8461289 Kohn et al. Jun 2013 B2
8476399 Bolikal et al. Jul 2013 B2
8486621 Luo et al. Jul 2013 B2
8486695 Danilkovitch et al. Jul 2013 B2
8492140 Smith et al. Jul 2013 B2
8492150 Parker et al. Jul 2013 B2
8524496 Meiron et al. Sep 2013 B2
8529888 Meiron et al. Sep 2013 B2
8540499 Page et al. Sep 2013 B2
8551511 Brandom et al. Oct 2013 B2
8580249 Blazar et al. Nov 2013 B2
8678638 Wong Mar 2014 B2
8785181 Antwiler Jul 2014 B2
8852570 Pittenger et al. Oct 2014 B2
8852571 Pittenger et al. Oct 2014 B2
8852572 Pittenger et al. Oct 2014 B2
8852573 Pittenger et al. Oct 2014 B2
8852574 Pittenger et al. Oct 2014 B2
8852575 Pittenger et al. Oct 2014 B2
8895291 DiLorenzo et al. Nov 2014 B2
9057045 Gibbons et al. Jun 2015 B2
9109193 Galliher et al. Aug 2015 B2
9175259 Nankervis Nov 2015 B2
9220810 Ma et al. Dec 2015 B2
9441195 Wojciechowski et al. Sep 2016 B2
9534198 Page et al. Jan 2017 B2
9732313 Hirschel et al. Aug 2017 B2
10093956 Hirschel et al. Oct 2018 B2
10494421 Castillo Dec 2019 B2
10577575 Frank Mar 2020 B2
20010017188 Cooley et al. Aug 2001 A1
20010020086 Hubbell et al. Sep 2001 A1
20010021516 Wei et al. Sep 2001 A1
20010029046 Beaulieu Oct 2001 A1
20010033834 Wilkison et al. Oct 2001 A1
20010036663 Kraus et al. Nov 2001 A1
20010041687 Mruk Nov 2001 A1
20010044413 Pierce et al. Nov 2001 A1
20010049139 Lagasse et al. Dec 2001 A1
20020015724 Yang et al. Feb 2002 A1
20020018804 Austin et al. Feb 2002 A1
20020028510 Sanberg et al. Mar 2002 A1
20020031757 Ohgushi et al. Mar 2002 A1
20020037278 Ueno et al. Mar 2002 A1
20020045260 Hung et al. Apr 2002 A1
20020064869 Ebner et al. May 2002 A1
20020076400 Katz et al. Jun 2002 A1
20020077687 Ahn Jun 2002 A1
20020082698 Parenteau et al. Jun 2002 A1
20020116054 Lundell et al. Aug 2002 A1
20020128581 Vishnoi et al. Sep 2002 A1
20020128582 Farrell et al. Sep 2002 A1
20020128583 Min et al. Sep 2002 A1
20020128584 Brown et al. Sep 2002 A1
20020130100 Smith Sep 2002 A1
20020132343 Lum Sep 2002 A1
20020139743 Critz et al. Oct 2002 A1
20020142457 Umezawa et al. Oct 2002 A1
20020146678 Benvenisty Oct 2002 A1
20020146817 Cannon et al. Oct 2002 A1
20020150989 Greene et al. Oct 2002 A1
20020151056 Sasai et al. Oct 2002 A1
20020159981 Peled et al. Oct 2002 A1
20020160032 Long et al. Oct 2002 A1
20020160510 Hariri Oct 2002 A1
20020168765 Prockop et al. Nov 2002 A1
20020169408 Beretta et al. Nov 2002 A1
20020182241 Borenstein et al. Dec 2002 A1
20020182664 Dolecek et al. Dec 2002 A1
20020188962 Denhardt et al. Dec 2002 A1
20020197240 Chiu Dec 2002 A1
20030021850 Xu Jan 2003 A1
20030022390 Stephens Jan 2003 A1
20030027330 Lanza et al. Feb 2003 A1
20030027331 Yan et al. Feb 2003 A1
20030032143 Neff et al. Feb 2003 A1
20030036168 Ni et al. Feb 2003 A1
20030040113 Mizuno et al. Feb 2003 A1
20030049236 Kassem et al. Mar 2003 A1
20030054331 Fraser et al. Mar 2003 A1
20030059851 Smith Mar 2003 A1
20030059939 Page et al. Mar 2003 A1
20030078345 Morrisey Apr 2003 A1
20030082795 Shuler et al. May 2003 A1
20030086915 Rader et al. May 2003 A1
20030089471 Gehr et al. May 2003 A1
20030092101 Ni et al. May 2003 A1
20030101465 Lawman et al. May 2003 A1
20030103957 McKerracher Jun 2003 A1
20030104568 Lee Jun 2003 A1
20030113813 Heidaran et al. Jun 2003 A1
20030113910 Levanduski Jun 2003 A1
20030124091 Tuse et al. Jul 2003 A1
20030124721 Cheatham et al. Jul 2003 A1
20030130593 Gonzalez Jul 2003 A1
20030133918 Sherley Jul 2003 A1
20030138950 McAllister et al. Jul 2003 A1
20030143727 Chang Jul 2003 A1
20030148152 Morrisey Aug 2003 A1
20030149011 Ackerman et al. Aug 2003 A1
20030152558 Luft et al. Aug 2003 A1
20030157078 Hall et al. Aug 2003 A1
20030157709 DiMilla et al. Aug 2003 A1
20030161817 Young et al. Aug 2003 A1
20030166272 Abuljadayel Sep 2003 A1
20030170214 Bader Sep 2003 A1
20030180296 Salcedo et al. Sep 2003 A1
20030185817 Thomas et al. Oct 2003 A1
20030202938 Rameshwar Oct 2003 A1
20030203483 Seshi Oct 2003 A1
20030204323 Morrisey Oct 2003 A1
20030211602 Atala Nov 2003 A1
20030211603 Earp et al. Nov 2003 A1
20030216718 Hamblin et al. Nov 2003 A1
20030219898 Sugaya et al. Nov 2003 A1
20030223968 Yang Dec 2003 A1
20030224420 Hellerstein et al. Dec 2003 A1
20030224510 Yamaguchi et al. Dec 2003 A1
20030225010 Rameshwar Dec 2003 A1
20030232432 Bhat Dec 2003 A1
20030232752 Freeman et al. Dec 2003 A1
20030235909 Hariri et al. Dec 2003 A1
20040009158 Sands et al. Jan 2004 A1
20040009589 Levenberg et al. Jan 2004 A1
20040010231 Leonhardt et al. Jan 2004 A1
20040014209 Lassar et al. Jan 2004 A1
20040018174 Palasis Jan 2004 A1
20040018617 Hwang Jan 2004 A1
20040023324 Sakano et al. Feb 2004 A1
20040023370 Yu et al. Feb 2004 A1
20040027914 Vrane Feb 2004 A1
20040033214 Young et al. Feb 2004 A1
20040033599 Rosenberg Feb 2004 A1
20040037811 Penn et al. Feb 2004 A1
20040037815 Clarke et al. Feb 2004 A1
20040038316 Kaiser et al. Feb 2004 A1
20040053869 Andrews et al. Mar 2004 A1
20040062753 Rezania et al. Apr 2004 A1
20040063205 Xu Apr 2004 A1
20040067585 Wang et al. Apr 2004 A1
20040071668 Bays et al. Apr 2004 A1
20040072259 Scadden et al. Apr 2004 A1
20040077079 Storgaard et al. Apr 2004 A1
20040079248 Mayer et al. Apr 2004 A1
20040087016 Keating et al. May 2004 A1
20040091936 West May 2004 A1
20040096476 Uhrich et al. May 2004 A1
20040097408 Leder et al. May 2004 A1
20040101959 Marko et al. May 2004 A1
20040107453 Furcht et al. Jun 2004 A1
20040110286 Bhatia Jun 2004 A1
20040115804 Fu et al. Jun 2004 A1
20040115806 Fu Jun 2004 A1
20040120932 Zahner Jun 2004 A1
20040121461 Honmou et al. Jun 2004 A1
20040121464 Rathjen et al. Jun 2004 A1
20040126405 Sahatjian et al. Jul 2004 A1
20040128077 Koebler et al. Jul 2004 A1
20040131601 Epstein et al. Jul 2004 A1
20040132184 Dennis et al. Jul 2004 A1
20040136967 Weiss et al. Jul 2004 A1
20040137612 Baksh Jul 2004 A1
20040137613 Vacanti et al. Jul 2004 A1
20040143174 Brubaker Jul 2004 A1
20040143863 Li et al. Jul 2004 A1
20040151700 Harlan et al. Aug 2004 A1
20040151701 Kim et al. Aug 2004 A1
20040151706 Shakhov et al. Aug 2004 A1
20040151729 Michalopoulos et al. Aug 2004 A1
20040152190 Sumita Aug 2004 A1
20040161419 Strom et al. Aug 2004 A1
20040171533 Zehentner et al. Sep 2004 A1
20040180347 Stanton et al. Sep 2004 A1
20040191902 Hambor et al. Sep 2004 A1
20040197310 Sanberg et al. Oct 2004 A1
20040197375 Rezania et al. Oct 2004 A1
20040208786 Kevy et al. Oct 2004 A1
20040214275 Soejima et al. Oct 2004 A1
20040219134 Naughton et al. Nov 2004 A1
20040219136 Hariri Nov 2004 A1
20040219563 West et al. Nov 2004 A1
20040224403 Bhatia Nov 2004 A1
20040229351 Rodriguez et al. Nov 2004 A1
20040234972 Owens et al. Nov 2004 A1
20040235158 Bartlett et al. Nov 2004 A1
20040235160 Nishikawa et al. Nov 2004 A1
20040235166 Prockop et al. Nov 2004 A1
20040242469 Lee et al. Dec 2004 A1
20040258669 Dzau et al. Dec 2004 A1
20040259242 Malinge et al. Dec 2004 A1
20040259254 Honmou et al. Dec 2004 A1
20040260058 Scheek et al. Dec 2004 A1
20040260318 Hunter et al. Dec 2004 A1
20040265996 Schwarz et al. Dec 2004 A1
20050002914 Rosen et al. Jan 2005 A1
20050003460 Nilsson et al. Jan 2005 A1
20050003527 Lang et al. Jan 2005 A1
20050003534 Huberman et al. Jan 2005 A1
20050008624 Peled et al. Jan 2005 A1
20050008626 Fraser et al. Jan 2005 A1
20050009178 Yost et al. Jan 2005 A1
20050009179 Gemmiti et al. Jan 2005 A1
20050009181 Black et al. Jan 2005 A1
20050013804 Kato et al. Jan 2005 A1
20050014252 Chu et al. Jan 2005 A1
20050014253 Ehmann et al. Jan 2005 A1
20050014254 Kruse Jan 2005 A1
20050014255 Tang et al. Jan 2005 A1
20050019801 Rubin et al. Jan 2005 A1
20050019908 Hariri Jan 2005 A1
20050019910 Takagi et al. Jan 2005 A1
20050019911 Gronthos et al. Jan 2005 A1
20050026836 Dack et al. Feb 2005 A1
20050031587 Tsutsui et al. Feb 2005 A1
20050031595 Peled et al. Feb 2005 A1
20050031598 Levenberg et al. Feb 2005 A1
20050032122 Hwang et al. Feb 2005 A1
20050032207 Wobus et al. Feb 2005 A1
20050032209 Messina et al. Feb 2005 A1
20050032218 Gerlach Feb 2005 A1
20050036980 Chaney et al. Feb 2005 A1
20050037488 Mitalipova et al. Feb 2005 A1
20050037490 Rosenberg et al. Feb 2005 A1
20050037492 Xu et al. Feb 2005 A1
20050037493 Mandalam et al. Feb 2005 A1
20050037949 O'Brien et al. Feb 2005 A1
20050106119 Brandom et al. May 2005 A1
20050106127 Kraus et al. May 2005 A1
20050112447 Fletcher et al. May 2005 A1
20050112762 Hart et al. May 2005 A1
20050118712 Tsai et al. Jun 2005 A1
20050130297 Sarem et al. Jun 2005 A1
20050136093 Denk Jun 2005 A1
20050137517 Blickhan et al. Jun 2005 A1
20050142162 Hunter et al. Jun 2005 A1
20050149157 Hunter et al. Jul 2005 A1
20050152946 Hunter et al. Jul 2005 A1
20050158289 Simmons et al. Jul 2005 A1
20050172340 Logvinov et al. Aug 2005 A1
20050175665 Hunter et al. Aug 2005 A1
20050175703 Hunter et al. Aug 2005 A1
20050178395 Hunter et al. Aug 2005 A1
20050178396 Hunter et al. Aug 2005 A1
20050180957 Scharp et al. Aug 2005 A1
20050181502 Furcht et al. Aug 2005 A1
20050182463 Hunter et al. Aug 2005 A1
20050183731 Hunter et al. Aug 2005 A1
20050186244 Hunter et al. Aug 2005 A1
20050186671 Cannon et al. Aug 2005 A1
20050187140 Hunter et al. Aug 2005 A1
20050196421 Hunter et al. Sep 2005 A1
20050208095 Hunter et al. Sep 2005 A1
20050244963 Teplyashin Nov 2005 A1
20050249731 Aslan et al. Nov 2005 A1
20050255118 Wehner Nov 2005 A1
20050261674 Nobis et al. Nov 2005 A1
20050277577 Hunter et al. Dec 2005 A1
20050281790 Simmons et al. Dec 2005 A1
20050282733 Prins et al. Dec 2005 A1
20050283844 Furcht et al. Dec 2005 A1
20060002900 Binder et al. Jan 2006 A1
20060008452 Simmons et al. Jan 2006 A1
20060019388 Hutmacher et al. Jan 2006 A1
20060019389 Yayon et al. Jan 2006 A1
20060054941 Lu et al. Mar 2006 A1
20060083720 Fraser et al. Apr 2006 A1
20060099198 Thomson et al. May 2006 A1
20060166364 Senesac Jul 2006 A1
20060172008 Yayon et al. Aug 2006 A1
20060193840 Gronthos et al. Aug 2006 A1
20060228798 Verfaillie et al. Oct 2006 A1
20060233834 Guehenneux et al. Oct 2006 A1
20060239909 Anderson et al. Oct 2006 A1
20060258586 Sheppard et al. Nov 2006 A1
20060258933 Ellis et al. Nov 2006 A1
20060259998 Brumbley et al. Nov 2006 A1
20060280748 Buckheit Dec 2006 A1
20060286077 Gronthos et al. Dec 2006 A1
20070005148 Barofsky et al. Jan 2007 A1
20070011752 Paleyanda Jan 2007 A1
20070042462 Hildinger Feb 2007 A1
20070065938 Gronthos et al. Mar 2007 A1
20070105222 Wolfinbarger et al. May 2007 A1
20070116612 Williamson May 2007 A1
20070117180 Morikawa et al. May 2007 A1
20070122904 Nordon May 2007 A1
20070123996 Sugaya et al. May 2007 A1
20070160583 Lange et al. Jul 2007 A1
20070166834 Williamson et al. Jul 2007 A1
20070178071 Westenfelder Aug 2007 A1
20070196421 Hunter et al. Aug 2007 A1
20070197957 Hunter et al. Aug 2007 A1
20070198063 Hunter et al. Aug 2007 A1
20070202485 Nees et al. Aug 2007 A1
20070203330 Kretschmar et al. Aug 2007 A1
20070208134 Hunter et al. Sep 2007 A1
20070231305 Noll et al. Oct 2007 A1
20070238169 Abilez et al. Oct 2007 A1
20070258943 Penn et al. Nov 2007 A1
20070274970 Gordon et al. Nov 2007 A1
20070275457 Granchelli et al. Nov 2007 A1
20070295651 Martinez et al. Dec 2007 A1
20070298015 Beer et al. Dec 2007 A1
20070298497 Antwiler Dec 2007 A1
20080003663 Bryhan et al. Jan 2008 A1
20080009458 Dornan et al. Jan 2008 A1
20080032398 Cannon et al. Feb 2008 A1
20080050770 Zhang et al. Feb 2008 A1
20080063600 Aguzzi et al. Mar 2008 A1
20080064649 Rameshwar Mar 2008 A1
20080069807 Jy et al. Mar 2008 A1
20080095676 Andretta Apr 2008 A1
20080095690 Liu Apr 2008 A1
20080103412 Chin May 2008 A1
20080110827 Cote et al. May 2008 A1
20080113426 Smith et al. May 2008 A1
20080113440 Gurney et al. May 2008 A1
20080153077 Henry Jun 2008 A1
20080160597 van der Heiden et al. Jul 2008 A1
20080166808 Nyberg Jul 2008 A1
20080181879 Catelas et al. Jul 2008 A1
20080190857 Beretta et al. Aug 2008 A1
20080194017 Esser et al. Aug 2008 A1
20080206831 Coffey et al. Aug 2008 A1
20080220522 Antwiler Sep 2008 A1
20080220523 Antwiler Sep 2008 A1
20080220524 Noll et al. Sep 2008 A1
20080220526 Ellison et al. Sep 2008 A1
20080221443 Ritchie et al. Sep 2008 A1
20080227189 Bader Sep 2008 A1
20080227190 Antwiler Sep 2008 A1
20080248572 Antwiler Oct 2008 A1
20080254533 Antwiler Oct 2008 A1
20080268165 Fekety et al. Oct 2008 A1
20080306095 Crawford Dec 2008 A1
20090004738 Merchav et al. Jan 2009 A1
20090011399 Fischer Jan 2009 A1
20090047289 Denhardt et al. Feb 2009 A1
20090074728 Gronthos et al. Mar 2009 A1
20090075881 Catelas et al. Mar 2009 A1
20090076481 Stegmann et al. Mar 2009 A1
20090081770 Srienc et al. Mar 2009 A1
20090081797 Fadeev et al. Mar 2009 A1
20090092608 Ni et al. Apr 2009 A1
20090098103 Madison et al. Apr 2009 A1
20090098645 Fang et al. Apr 2009 A1
20090100944 Newby Apr 2009 A1
20090104163 Deans et al. Apr 2009 A1
20090104692 Bartfeld et al. Apr 2009 A1
20090104699 Newby et al. Apr 2009 A1
20090118161 Cruz May 2009 A1
20090181087 Kraus et al. Jul 2009 A1
20090183581 Wilkinson et al. Jul 2009 A1
20090191627 Fadeev et al. Jul 2009 A1
20090191632 Fadeev et al. Jul 2009 A1
20090191634 Martin et al. Jul 2009 A1
20090203065 Gehman et al. Aug 2009 A1
20090203129 Furcht et al. Aug 2009 A1
20090203130 Furcht et al. Aug 2009 A1
20090214382 Burgess et al. Aug 2009 A1
20090214481 Muhs et al. Aug 2009 A1
20090214652 Hunter et al. Aug 2009 A1
20090215022 Page et al. Aug 2009 A1
20090227024 Baker et al. Sep 2009 A1
20090227027 Baker et al. Sep 2009 A1
20090233334 Hildinger et al. Sep 2009 A1
20090233353 Furcht et al. Sep 2009 A1
20090233354 Furcht et al. Sep 2009 A1
20090258379 Klein et al. Oct 2009 A1
20090269841 Wojciechowski et al. Oct 2009 A1
20090270725 Leimbach et al. Oct 2009 A1
20090280153 Hunter et al. Nov 2009 A1
20090280565 Jolicoeur et al. Nov 2009 A1
20090291890 Madison et al. Nov 2009 A1
20100009409 Hubbell et al. Jan 2010 A1
20100021954 Deshayes et al. Jan 2010 A1
20100021990 Edwards et al. Jan 2010 A1
20100028311 Motlagh et al. Feb 2010 A1
20100042260 Antwiler Feb 2010 A1
20100075410 Desai et al. Mar 2010 A1
20100086481 Baird et al. Apr 2010 A1
20100092536 Hunter et al. Apr 2010 A1
20100093607 Dickneite Apr 2010 A1
20100105138 Dodd et al. Apr 2010 A1
20100111910 Rakoczy May 2010 A1
20100129376 Denhardt et al. May 2010 A1
20100129912 Su et al. May 2010 A1
20100136091 Moghe et al. Jun 2010 A1
20100144037 Antwiler Jun 2010 A1
20100144634 Zheng et al. Jun 2010 A1
20100183561 Sakthivel et al. Jul 2010 A1
20100183585 Van Zant et al. Jul 2010 A1
20100203020 Ghosh Aug 2010 A1
20100230203 Karayianni Sep 2010 A1
20100248366 Fadeev et al. Sep 2010 A1
20100278933 Sayeski et al. Nov 2010 A1
20100285453 Goodrich Nov 2010 A1
20100285590 Verfaillie et al. Nov 2010 A1
20100291180 Uhrich Nov 2010 A1
20100291181 Uhrich et al. Nov 2010 A1
20100297234 Sugino et al. Nov 2010 A1
20100304427 Faris et al. Dec 2010 A1
20100304482 Deshayes et al. Dec 2010 A1
20100310524 Bechor et al. Dec 2010 A1
20100316446 Runyon Dec 2010 A1
20110085746 Wong et al. Apr 2011 A1
20110111498 Oh et al. May 2011 A1
20110129447 Meretzki et al. Jun 2011 A1
20110129486 Meiron Jun 2011 A1
20110143433 Oh et al. Jun 2011 A1
20110159584 Gibbons et al. Jun 2011 A1
20110171182 Abelman Jul 2011 A1
20110171659 Furcht et al. Jul 2011 A1
20110177595 Furcht et al. Jul 2011 A1
20110212493 Hirschel et al. Sep 2011 A1
20110256108 Meiron et al. Oct 2011 A1
20110256160 Meiron et al. Oct 2011 A1
20110293583 Aberman Dec 2011 A1
20120028352 Oh et al. Feb 2012 A1
20120051976 Lu et al. Mar 2012 A1
20120058554 Deshayes et al. Mar 2012 A1
20120064047 Verfaillie et al. Mar 2012 A1
20120064583 Edwards et al. Mar 2012 A1
20120086657 Stanton, IV et al. Apr 2012 A1
20120118919 Cianciolo May 2012 A1
20120122220 Merchav et al. May 2012 A1
20120135043 Maziarz et al. May 2012 A1
20120145580 Paruit et al. Jun 2012 A1
20120156779 Anneren et al. Jun 2012 A1
20120178885 Kohn et al. Jul 2012 A1
20120189713 Kohn et al. Jul 2012 A1
20120208039 Barbaroux et al. Aug 2012 A1
20120219531 Oh et al. Aug 2012 A1
20120219737 Sugino et al. Aug 2012 A1
20120226013 Kohn et al. Sep 2012 A1
20120231519 Bushman et al. Sep 2012 A1
20120237557 Lewitus et al. Sep 2012 A1
20120295352 Antwiler Nov 2012 A1
20120308531 Pinxteren et al. Dec 2012 A1
20120315696 Luitjens et al. Dec 2012 A1
20130004465 Aberman Jan 2013 A1
20130039892 Aberman Feb 2013 A1
20130058907 Wojciechowski et al. Mar 2013 A1
20130059383 Borgart et al. Mar 2013 A1
20130101561 Sabaawy Apr 2013 A1
20130143313 Niazi Jun 2013 A1
20130157353 Borgart et al. Jun 2013 A1
20130259843 Duda et al. Oct 2013 A1
20130319575 Mendyk Dec 2013 A1
20130323213 Meiron et al. Dec 2013 A1
20130337558 Meiron et al. Dec 2013 A1
20140004553 Parker et al. Jan 2014 A1
20140017209 Aberman et al. Jan 2014 A1
20140030805 Kasuto et al. Jan 2014 A1
20140051162 Nankervis Feb 2014 A1
20140051167 Nankervis et al. Feb 2014 A1
20140112893 Tom et al. Apr 2014 A1
20140186937 Smith et al. Jul 2014 A1
20140193895 Smith et al. Jul 2014 A1
20140193911 Newby et al. Jul 2014 A1
20140242039 Meiron et al. Aug 2014 A1
20140248244 Danilkovitch et al. Sep 2014 A1
20140315300 Oh et al. Oct 2014 A1
20140342448 Nagels Nov 2014 A1
20150004693 Danilkovitch et al. Jan 2015 A1
20150104431 Pittenger et al. Apr 2015 A1
20150111252 Hirschel et al. Apr 2015 A1
20150125138 Karnieli et al. May 2015 A1
20150140653 Jones et al. May 2015 A1
20150175950 Hirschel et al. Jun 2015 A1
20150225685 Hirschel et al. Aug 2015 A1
20150247122 Tom et al. Sep 2015 A1
20150259749 Santos et al. Sep 2015 A1
20150275170 Nankervis Oct 2015 A1
20160090569 Vang Mar 2016 A1
20160362650 Wojciechowski et al. Dec 2016 A1
20160362652 Page et al. Dec 2016 A1
20170349869 Frank et al. Dec 2017 A1
20170349872 Frank Dec 2017 A1
20170349873 Frank et al. Dec 2017 A1
20180010082 Jaques et al. Jan 2018 A1
20180030398 Castillo Feb 2018 A1
20180155668 Hirschel et al. Jun 2018 A1
20190194628 Rao et al. Jun 2019 A1
Foreign Referenced Citations (316)
Number Date Country
1016332 Aug 1977 CA
102406926 Apr 2012 CN
3833925 Sep 1989 DE
4007703 Sep 1991 DE
10244859 Apr 2004 DE
10327988 Jul 2004 DE
102012200939 Jul 2013 DE
0220650 May 1987 EP
750938 Jan 1997 EP
906415 Apr 1999 EP
959980 Dec 1999 EP
1007631 Jun 2000 EP
1028737 Aug 2000 EP
1028991 Aug 2000 EP
1066052 Jan 2001 EP
1066060 Jan 2001 EP
1084230 Mar 2001 EP
1147176 Oct 2001 EP
1220611 Jul 2002 EP
1223956 Jul 2002 EP
1325953 Jul 2003 EP
1437404 Jul 2004 EP
1437406 Jul 2004 EP
1447443 Aug 2004 EP
1452594 Sep 2004 EP
1062321 Dec 2004 EP
1484080 Dec 2004 EP
1498478 Jan 2005 EP
1538196 Jun 2005 EP
1036057 Oct 2005 EP
1605044 Dec 2005 EP
1756262 Feb 2007 EP
1771737 Apr 2007 EP
1882030 Jan 2008 EP
1908490 Apr 2008 EP
1971679 Sep 2008 EP
1991668 Nov 2008 EP
2200622 Jun 2010 EP
2208782 Jul 2010 EP
2264145 Dec 2010 EP
2027247 Jan 2011 EP
2303293 Apr 2011 EP
2311938 Apr 2011 EP
2331957 Jun 2011 EP
2334310 Jun 2011 EP
2334783 Jun 2011 EP
2361968 Aug 2011 EP
2366775 Sep 2011 EP
2465922 Jun 2012 EP
2481819 Aug 2012 EP
2548951 Jan 2013 EP
2561066 Feb 2013 EP
2575831 Apr 2013 EP
2591789 May 2013 EP
2624845 Aug 2013 EP
2626417 Aug 2013 EP
2641606 Sep 2013 EP
2689008 Jan 2014 EP
2694639 Feb 2014 EP
2697362 Feb 2014 EP
2739720 Jun 2014 EP
2807246 Dec 2014 EP
1414671 Nov 1975 GB
2297980 Aug 1996 GB
2360789 Oct 2001 GB
3285 May 2007 HU
H02245177 Sep 1990 JP
2003052360 Feb 2003 JP
2003510068 Mar 2003 JP
2005278564 Oct 2005 JP
2006223273 Aug 2006 JP
2007000038 Jan 2007 JP
2012-506257 Mar 2012 JP
5548207 Jul 2014 JP
2019-516029 Jun 2019 JP
2019-525765 Sep 2019 JP
101228026 Jan 2013 KR
10-2015-0002762 Jan 2015 KR
101504392 Mar 2015 KR
101548790 Aug 2015 KR
101553040 Sep 2015 KR
10-2017-0076679 Jul 2017 KR
10-2018-0027501 Mar 2018 KR
102027596 Oct 2019 KR
10-2020-0034790 Mar 2020 KR
10-2020-0058433 May 2020 KR
115206 Apr 2003 MY
8602379 Apr 1986 WO
8801643 Mar 1988 WO
WO 8912676 Dec 1989 WO
9002171 Mar 1990 WO
WO-9013306 Nov 1990 WO
WO-9105238 Apr 1991 WO
9107485 May 1991 WO
WO-9106641 May 1991 WO
WO-9109194 Jun 1991 WO
9210564 Jun 1992 WO
WO-9425571 Nov 1994 WO
9504813 Feb 1995 WO
9521911 Aug 1995 WO
WO 9524468 Sep 1995 WO
WO-9629395 Sep 1996 WO
WO-9639035 Dec 1996 WO
WO-9705826 Feb 1997 WO
9716527 May 1997 WO
WO-9729792 Aug 1997 WO
WO-9739104 Oct 1997 WO
WO-1997-040137 Oct 1997 WO
WO 9822588 May 1998 WO
WO-9831403 Jul 1998 WO
9853046 Nov 1998 WO
WO-9851317 Nov 1998 WO
WO-9851785 Nov 1998 WO
WO-9905180 Feb 1999 WO
WO-9924391 May 1999 WO
WO-9924490 May 1999 WO
WO-9927167 Jun 1999 WO
WO-9949015 Sep 1999 WO
WO-0006704 Feb 2000 WO
WO-0009018 Feb 2000 WO
WO-0016420 Mar 2000 WO
WO-0017326 Mar 2000 WO
WO-0029002 May 2000 WO
WO-0032225 Jun 2000 WO
WO-0044058 Jul 2000 WO
WO 0046354 Aug 2000 WO
WO-0054651 Sep 2000 WO
WO-0056405 Sep 2000 WO
WO-0059933 Oct 2000 WO
WO-0069449 Nov 2000 WO
0075275 Dec 2000 WO
WO-0075196 Dec 2000 WO
WO-0077236 Dec 2000 WO
WO-2001000783 Jan 2001 WO
WO-2001011011 Feb 2001 WO
WO-2001018174 Mar 2001 WO
WO-2001021766 Mar 2001 WO
0123520 Apr 2001 WO
WO-2001025402 Apr 2001 WO
WO-2001029189 Apr 2001 WO
WO-0122810 Apr 2001 WO
WO-2001034167 May 2001 WO
WO-2001049851 Jul 2001 WO
WO-2001054706 Aug 2001 WO
WO-2001-094541 Dec 2001 WO
0228996 Apr 2002 WO
WO-2002042422 May 2002 WO
WO-2002057430 Jul 2002 WO
WO-2002092794 Nov 2002 WO
WO-2002101385 Dec 2002 WO
WO-2003010303 Feb 2003 WO
WO-2003014313 Feb 2003 WO
WO-2003016916 Feb 2003 WO
WO-2003023018 Mar 2003 WO
WO-2003023019 Mar 2003 WO
WO-2003025167 Mar 2003 WO
WO-2003029402 Apr 2003 WO
WO 03039459 May 2003 WO
WO-2003040336 May 2003 WO
WO-2003042405 May 2003 WO
WO-2003046161 Jun 2003 WO
WO-2003055989 Jul 2003 WO
WO-2003061685 Jul 2003 WO
WO-2003061686 Jul 2003 WO
WO-2003068961 Aug 2003 WO
WO-2003072064 Sep 2003 WO
WO-2003078609 Sep 2003 WO
WO-2003078967 Sep 2003 WO
WO-2003080816 Oct 2003 WO
WO-2003082145 Oct 2003 WO
WO-2003085099 Oct 2003 WO
WO-2003089631 Oct 2003 WO
WO-2003091398 Nov 2003 WO
WO-2003095631 Nov 2003 WO
03105663 Dec 2003 WO
WO-2004001697 Dec 2003 WO
WO-2004012226 Feb 2004 WO
WO-2004016779 Feb 2004 WO
2004024303 Mar 2004 WO
WO-2004018526 Mar 2004 WO
WO-2004018655 Mar 2004 WO
WO-2004026115 Apr 2004 WO
WO-2004029231 Apr 2004 WO
WO-2004042023 May 2004 WO
WO-2004042033 May 2004 WO
WO-2004042040 May 2004 WO
WO-2004044127 May 2004 WO
WO-2004044158 May 2004 WO
WO-2004046304 Jun 2004 WO
WO-2004050826 Jun 2004 WO
WO-2004053096 Jun 2004 WO
WO-2004055155 Jul 2004 WO
WO-2004056186 Jul 2004 WO
WO-2004065616 Aug 2004 WO
WO-2004069172 Aug 2004 WO
WO-2004070013 Aug 2004 WO
WO-2004072264 Aug 2004 WO
WO-2004073633 Sep 2004 WO
WO-2004074464 Sep 2004 WO
WO-2004076642 Sep 2004 WO
WO-2004076653 Sep 2004 WO
2004090112 Oct 2004 WO
WO-2004087870 Oct 2004 WO
WO-2004094588 Nov 2004 WO
WO-2004096975 Nov 2004 WO
WO-2004104166 Dec 2004 WO
WO-2004106499 Dec 2004 WO
WO-2004113513 Dec 2004 WO
WO-2005001033 Jan 2005 WO
WO-2005001081 Jan 2005 WO
WO-2005003320 Jan 2005 WO
WO-2005007799 Jan 2005 WO
WO-2005010172 Feb 2005 WO
WO-2005011524 Feb 2005 WO
WO-2005012480 Feb 2005 WO
WO-2005012510 Feb 2005 WO
WO-2005012512 Feb 2005 WO
WO-05014775 Feb 2005 WO
WO-2005028433 Mar 2005 WO
WO-05044972 May 2005 WO
WO-2005056747 Jun 2005 WO
WO-05051316 Jun 2005 WO
WO-2005063303 Jul 2005 WO
WO-2005075636 Aug 2005 WO
2005087915 Sep 2005 WO
WO 2005104755 Nov 2005 WO
WO-2005107760 Nov 2005 WO
WO-2006009291 Jan 2006 WO
WO-2006032075 Mar 2006 WO
WO-2006032092 Mar 2006 WO
WO 2006037022 Apr 2006 WO
WO-2006108229 Oct 2006 WO
WO-2006113881 Oct 2006 WO
WO-2006121445 Nov 2006 WO
WO-06124021 Nov 2006 WO
WO-06129312 Dec 2006 WO
WO 2007038572 Apr 2007 WO
WO 2007059473 May 2007 WO
WO-2007115367 Oct 2007 WO
WO-2007115368 Oct 2007 WO
WO 2007117765 Oct 2007 WO
2007136821 Nov 2007 WO
WO-2007136760 Nov 2007 WO
2007139742 Dec 2007 WO
2007139746 Dec 2007 WO
2007139747 Dec 2007 WO
2007139748 Dec 2007 WO
WO-2008006168 Jan 2008 WO
WO-2008011664 Jan 2008 WO
WO-2008017128 Feb 2008 WO
WO-2008028241 Mar 2008 WO
WO-08040812 Apr 2008 WO
WO 2008073635 Jun 2008 WO
2008109674 Sep 2008 WO
WO-2008116261 Oct 2008 WO
WO-2008149129 Dec 2008 WO
2009034186 Mar 2009 WO
WO-2009026635 Mar 2009 WO
WO-09058146 May 2009 WO
WO-09080054 Jul 2009 WO
WO-09081408 Jul 2009 WO
WO-2009140452 Nov 2009 WO
WO-09132457 Nov 2009 WO
WO-2009144720 Dec 2009 WO
WO-10005527 Jan 2010 WO
WO-201 0019886 Feb 2010 WO
WO-10014253 Feb 2010 WO
WO-10019997 Feb 2010 WO
WO-2010026573 Mar 2010 WO
WO-2010026574 Mar 2010 WO
WO-2010026575 Mar 2010 WO
WO 2010036760 Apr 2010 WO
WO-2010059487 May 2010 WO
WO-10061377 Jun 2010 WO
WO-10068710 Jun 2010 WO
WO-10071826 Jun 2010 WO
WO-10083385 Jul 2010 WO
WO-10111255 Sep 2010 WO
WO-10119036 Oct 2010 WO
WO-10123594 Oct 2010 WO
WO-201 1025445 Mar 2011 WO
WO 2011098592 Aug 2011 WO
WO 2011130617 Oct 2011 WO
WO-2011132087 Oct 2011 WO
WO-2011147967 Dec 2011 WO
WO-201 2072924 Jun 2012 WO
WO-2012127320 Sep 2012 WO
WO-201 2140519 Oct 2012 WO
WO-2012138968 Oct 2012 WO
2012171026 Dec 2012 WO
2012171030 Dec 2012 WO
WO 2013085682 Jun 2013 WO
WO-2013110651 Aug 2013 WO
WO-2014037862 Mar 2014 WO
WO-2014037863 Mar 2014 WO
WO-2014068508 May 2014 WO
WO-2014128306 Aug 2014 WO
WO-2014128634 Aug 2014 WO
WO-2014131846 Sep 2014 WO
WO-2014141111 Sep 2014 WO
WO-2015004609 Jan 2015 WO
WO 2015059714 Apr 2015 WO
2015073913 May 2015 WO
WO 2015069943 May 2015 WO
WO 2015118148 Aug 2015 WO
WO 2015118149 Aug 2015 WO
WO-2015131143 Sep 2015 WO
WO 2016130940 Aug 2016 WO
WO 2017072201 May 2017 WO
WO 2017158611 Sep 2017 WO
WO 2017207822 Dec 2017 WO
WO 2018183426 Oct 2018 WO
WO 2019155032 Aug 2019 WO
WO 2019238919 Dec 2019 WO
WO 2020020569 Jan 2020 WO
WO 2020079274 Apr 2020 WO
Non-Patent Literature Citations (317)
Entry
Chang et al., “Membrane Bioreactors: Present and Prospects”, Advances in Biochemical Engineering, 1991, pp. 27-64, vol. 44.
Chang, Ho Nam, “Membrane Bioreactors: Engineering Aspects”, Biotech. Adv., 1987, pp. 129-145, vol. 5.
Edgington, Stephen M., “New Horizons for Stem-Cell Bioreactors”, Biotechnology, Oct. 1992, pp. 1099-1106, vol. 10.
Gastens et al., “Good Manufacturing Practice-Compliant Expansion of Marrow-Derived Stem and Progenitor Cells for Cell Therapy”, Cell Transplantation, 2007, pp. 685-696, vol. 16.
Gramer et al., “Screening Tool for Hollow-Fiber Bioreactor Process Development”, Biotechnol. Prog., 1998, pp. 203-209, vol. 14.
Hirschel et al., “An Automated Hollow Fiber System for the Large Scale Manufacture of Mammalian Cell Secreted Product”, Large Scale Cell Culture Technology, ed. Bjorn K. Lydersen, 1987, pp. 113-144, Hanser Publishers.
Infanger et al., “Simulated weightlessness changes the cytoskeleton and extracellular matrix proteins in papillary thyroid carcinoma cells”, Cell and Tissue Research, 2006, 324(2): 267-277.
Jones et al., “Genetic stability of bone marrow-derived human mesenchymal stromal cells in the Quantum System”, Cytotherapy, 2013; 15: 1323-1339.
Liu et al., “Ex vivo Expansion of Hematopoietic Stem Cells Derived from Umbilical Cord Blood in Rotating Wall Vessel”, Journal of Biotechnology, 2006, 124:592-601.
Nankervis et al., “Shear Stress Conditions in the Quantum Cell Expansion System”, Poster Session—TERMIS AM Annual Conference 2013, Nov. 12, 2013.
Nguyen et al., “QUANTUM® Cell Expansion System: Automated Expansion of Human Mesenchymal Stem Cells from Precultured Cells Using the Quantum Cell Expansion System”, Terumo BCT, Inc., 2012.
Nielsen, Lars Keld, “Bioreactors for Hematopoietic Cell Culture”, Annu. Rev. Biomed. Eng., 1999, vol. 1, pp. 129-152.
Pörtner et al., “An Overview on Bioreactor Design, Prototyping and Process Control for Reproducible Three-Dimensional Tissue Culture”, Drug Testing in Vitro: Breakthroughs and Trends in Cell Culture Technology, ed. Uwe Marx and Volker Sandig, 2007, Wiley-VCH, pp. 53-78.
Zhao et al., “Perfusion Bioreactor System for Human Mesenchymal Stem Cell Tissue Engineering: Dynamic Cell Seeding and Construct Development”, Biotechnology and Bioengineering, Aug. 20, 2005, vol. 91, No. 4, pp. 482-493.
Biovest International, “AutovaxIDTM: advanced hollow fibre bioreactors with automated lactate control yield higher density monoclonal antibody production”, VWRbioMarke, No. 21, Sep. 2008, pp. 10-11.
Clausen et al., “Lactate as an Indicator of Terminating Time in Insect Cell Culture Baculovirus Expression Vector Systems”, Biotechnology Techniques, vol. 10, No. 10, Oct. 1996, pp. 721-726.
Gerlach, J.C. et al., “Comparison of hollow fibre membranes for hepatocyte immobilization in bioreactors,” The International Journal of Artificial Organs, 1996, vol. 19 No. 10, pp. 610-616.
Gloeckner et al., “New Miniaturized Hollow-Fiber Bioreacter for in Vivo Like Cell Culture, Cell Expansion, and Production of Cell-Derived Products”, Biotechnol. Prog., Aug. 21, 2001, vol. 17, No. 5, pp. 828-831.
Grayson et al., “Effects of Hypoxia on Human Mesenchymal Stem Cell Expansion and Plasticity in 3D Constructs”, J. Cellular Physiology, 2006, 207:331-339.
Lloyd, J.R. et al., “Hollow-Fibre bioreactors compared to batch and chemostat culture for the production of a recombinant toxoid by a marine Vibrio,” Appl. Microbiol Biotechnol, Aug. 1997, vol. 48, pp. 155-161.
Neumann, Detlef et al., “Bioreaktorsteurung mit grafischer Bedienoberflache,” ATP Automatisierungstechnische Praxis, Mar. 1995, pp. 16-23, vol. 37, No. 3, Munchen, DE. (English language translation provided).
Notice of Allowance and Fee(s) Due, U.S. Appl. No. 15/616,635, dated Feb. 5, 2020.
Notice of Allowance and Fee(s) Due, U.S. Appl. No. 15/616,635, dated Apr. 22, 2020.
Notice of Allowance and Fee(s) Due, U.S. Appl. No. 15/616,745, dated Nov. 14, 2019.
Notice of Allowance and Fee(s) Due, U.S. Appl. No. 15/616,876, dated Jan. 2, 2020.
Office Action, U.S. Appl. No. 15/616,635, dated Jun. 24, 2019.
Office Action, U.S. Appl. No. 15/616,745, dated Jun. 10, 2019.
Office Action, U.S. Appl. No. 15/616,876, dated Apr. 18, 2019.
Ozturk et al., “Real-Time Monitoring and Control of Glucose and Lactate Concentrations in a Mammalian Cell Perfusion Reactor”, Biotechnology and Bioengineering, vol. 53, No. 4, Feb. 20, 1997, pp. 372-378.
Sauer, I. et al., “Extracorporeal liver support based on primary human liver cells and albumin dialysis-treatment of patient with primary graft non function,” Journal of Hepatology, Oct. 2003, vol. 39 No. 4, pp. 649-653.
Wang et al., “Influence of Oxygen on the Proliferation and Metabolism of Adipose Derived Adult Stem Cells”, J. Cellular Physiology, 2005, 204:184-161.
Zhao et al., “Effects of Oxygen Transport on 3-D human Mesenchymal Stem Cell Metabolic Activity in Perfusion and Static Cultures: Experiments and Mathematical Model”, Biotechnol. Prog, 2005, 27, 1269-1280.
“The Effect of Rocking Rate and Angle on T Cell Cultures Grown in XuriTM Cell Expansion Systems,” GE Healthcare UK Limited, Cell therapy bioreactor systems, Application note 29-1166-55 AA, Aug. 2014, www.gelifesciences.com/xuri.
Abumiya et al., “Shear Stress Induces Expression of Vascular Endothelial Growth Factor Receptor Flk-1/KDR Through the CT-Rich Sp1 Binding Site,” Ateriosclerosis, Thrombosis, and Vascular Biology, vol. 22, Jun. 2002, pp. 907-913.
Akiyama et al., “Ultrathin Poly(N-isopropylacrylamide) Grafted Layer on Polystyrene Surfaces for Cell Adhesion/Detachment Control,” Langmuir, vol. 20, No. 13, May 26, 2004, pp. 5506-5511.
Akram et al., “Mesenchymal Stem Cells Promote Alveolar Epithelial Cell Wound Repair in vitro through Distinct Migratory and Paracrine Mechanisms,” Respiratory Research, vol. 14, No. 9, 2013, pp. 1-16.
Alenazi et al., “Modified Polyether-sulfone Membrane: a Mini Review,” Designed Monomers And Polymers, vol. 20, No. 1, 2017, pp. 532-546.
Anamelechi et al., “Streptavidin Binding and Endothelial Cell Adhesion to Biotinylated Fibronectin,” Langmuir, vol. 23, No. 25, Dec. 4, 2007, pp. 12583-12588.
Azar et al., “Heart Rates of Male and Female Sprague-Dawley and Spontaneously Hypertensive Rats Housed Singly or in Groups,” Journal of the American Association for Laboratory Animal Science, vol. 50, No. 2, Mar. 2011, pp. 175-184.
Baecher-Allan et al., “CD4+CD25high Regulatory Cells in Human Peripheral Blood,” The Journal of Immunology, vol. 167, 2001, pp. 1245-1253.
Bai et al., “Expansion of Primitive Human Hematopoietic Stem Cells by Culture in a Zwitterionic Hydrogel,” Nature Medicine, vol. 25, Oct. 2019, pp. 1566-1575.
Barker et al., “CD34+ Cell Content of 126 341 Cord Blood Units in the US Inventory: Implications for Transplantation and Banking,” Blood Advances, vol. 3, No. 8, Apr. 23, 2019, pp. 1267-1271.
Boitano et al., “Aryl Hydrocarbon Receptor Antagonists Promote the Expansion of Human Hematopoietic Stem Cells,” Science, vol. 329, No. 5997, published Sep. 10, 2010. corrected May 6, 2011, pp. 1345-1348.
Brunstein et al., “Infusion of ex vivo Expanded T Regulatory Cells in Adults Transplanted with Umbilical Cord Blood: Safety Profile and Detection Kinetics,” Blood, vol. 117, No. 3, Jan. 20, 2011, pp. 1061-1070.
Bryce et al., “In vitro micronucleus assay scored by flow cytometry provides a comprehensive evaluation of cytogenetic damage and cytotoxicity,” Mutation Research, vol. 630, Mar. 19, 2007, pp. 78-91.
Bryce et al., “Interlaboratory Evaluation of a Flow Cytometric, High Content in vitro Micronucleus Assay,” Mutation Research, vol. 650, Jan. 7, 2008, pp. 181-195.
Camacho Villa et al., “CD133+CD34+ and CD133+CD38+ Blood Progenitor Cells as Predictors of Platelet Engraftment in Patients Undergoing Autologous Peripheral Blood Stem Cell Transplantation,” Transfusion and Apheresis Science, vol. 46, 2012, pp. 239-244.
Cano et al., “Immobilization of endo-1,4-β-xylanase on Polysulfone Acrylate Membranes: Synthesis and Characterization,” Journal of Membrane Science, vol. 280, Feb. 28, 2006, pp. 383-388.
Carvell et al., “Monitoring Live Biomass in Disposable Bioreactors,” BioProcess International, vol. 14, No. 3, Mar. 2016, pp. 40-48.
Carvell et al., “On-line Measurements and Control of Viable Cell Density in Cell Culture Manufacturing Processes Using Radio Frequency Impedance,” Cytotechnology, 2006, vol. 50, pp. 35-48.
Cuchiara et al., “Covalent Immobilization of SCF and SDF1α for in vitro Culture of Hematopoietic Progenitor Cells,” Acta Biomaterials, vol. 9, No. 12, Dec. 2013, pp. 9258-9269.
Da Silva et al., “Smart Thermoresponsive Coatings and Surfaces for Tissue Engineering: Switching Cell-Material Boundaries,” Trends in Biotechnology, vol. 15, No. 12, 2007, pp. 577-583.
Garlie et al., “T Cells Coactivated with Immobilized Anti-CD3 and Anti-CD28 as Potential Immunotherapy for Cancer,” Journal of Immunotherapy, vol. 22, No. 4, 1999, pp. 336-345.
Hao et al., “A Functional Comparison of CD34+ CD38-Cells in Cord Blood and Bone Marrow,” Blood, vol. 86, No. 10, Nov. 15, 1995, pp. 3745-3753.
Harimoto et al., “Novel Approach for Achieving Double-Layered Cell Sheets Co-Culture: Overlaying Endothelial Cell Sheets onto Monolayer Hepatocytes Utilizing Temperature-Responsive Culture Dishes,” Journal of Biomedical Material Research, vol. 62, 2002, pp. 464-470.
Högstedt et al., “Frequency and Size Distribution of Micronuclei in Lymphocytes Stimulated with Phytohemagglutinin and Pokeweed Mitogen in Workers Exposed to Piperazine,” Hereditas, vol. 109, 1998, pp. 139-142.
Horwitz et al., “Phase I/II Study of Stem-Cell Transplantation Using a Single Cord Blood Unit Expanded Ex Vivo with Nicotinamide,” Journal of Clinical Oncology, vol. 37, No. 5, Dec. 4, 2018, pp. 367-376.
Itkin et al., “SDF-1 Keeps HSC Quiescent at Home,” Blood, vol. 117, No. 2, Jan. 13, 2011, pp. 373-374.
Jang et al., “Syndecan-4 Proteoliposomes Enhance Fibroblast Growth Factor-2 (FGF-2)-Induced Proliferation, Migration, and Neovascularization of Ischemic Muscle,” PNAS, vol. 109, No. 5, Jan. 31, 2012, pp. 1679-1684.
Johansson et al., “Pancreatic Islet Survival and Engraftment Is Promoted by Culture on Functionalized Spider Silk Matrices,” PLoS ONE, Jun. 19, 2015, pp. 1-21.
Klein et al., “Affinity Membranes Prepared from Hydrophilic Coatings on Microporous Polysulfone Hollow Fibers,” Journal of Membrane Science, vol. 90, 1994, pp. 69-80.
Koestenbauer et al., “Protocols for Hematopoietic Stem Cell Expansion from Umbilical Cord Blood,” Cell Transplantation, vol. 18, May 6, 2009, pp. 1059-1068.
Koller et al., “Clinical-scale Human Umbilical Cord Blood Cell Expansion in a Novel Automated Perfusion Culture System,” Bone Marrow Transplantation, vol. 21, 1998, pp. 653-663.
Lang et al., “Generation of Hematopoietic Humanized Mice in the Newborn BALB/C-Rag2null II2rγnull Mouse Model: A Multivariable Optimization Approach,” Clinical Immunology, vol. 140, Apr. 14, 2011, pp. 102-116.
Lataillade et al., “Chemokine SDF-1 Enhances Circulating CD341 Cell Proliferation in Synergy with Cytokines: Possible Role in Progenitor Survival,” Blood, vol. 95, No. 3, Feb. 1, 2000, pp. 756-768.
Lee et al., “Long-Term Outcomes Following CD19 CAR T Cell Therapy for B-ALL Are Superior in Patients Receiving a Fludarabine/Cyclophosphamide Preparative Regimen and Post-CAR Hematopoietic Stem Cell Transplantation,” Blood, vol. 128, No. 22, Dec. 2, 2016, Ab. 218.
Li et al., “Heparin-induced Conformation Changes of Fibronectin within the Extracellular Matrix Promote hMSC Osteogenic Differentiation,” Biomaterials Science, vol. 3, 2015, pp. 73-84.
Malin et al., “Noninvasive Prediction of Glucose by Near-Infrared Diffuse Reflectance Spectroscopy,” Clinical Chemistry, vol. 45, No. 9, 1999, pp. 1651-1658.
Marek-Trzonkowska et al., “Administration of CD4+ CD25high CD127- Regulatory T Cells Preserves β-Cell Function in Type 1 Diabetes in Children,” Diabetes Care, vol. 35, No. 9, Sep. 2012, pp. 1817-1820.
Murugappan et al., “Human Hematopoietic Progenitor Cells Grow Faster under Rotational Laminar Flows,” Biotechnology Progress—Cell Culture & Tissue Engineering, Online, Apr. 22, 2010.
Nelson et al., “Emergent Patterns of Growth Controlled by Multicellular Form and Mechanics,” PNAS, vol. 102, No. 33, Aug. 16, 2005, pp. 11594-11599.
Nicolette et al., “In Vitro Micronucleus Screening of Pharmaceutical Candidates by Flow Cytometry in Chinese Hamster V79 Cells,” Environmental and Molecular Mutagenesis, vol. 52, Oct. 20, 2010, pp. 355-362.
Nugent et al., “Adventitial Endothelial Implants Reduce Matrix Metalloproteinase-2 Expression and Increase Luminal Diameter in Porcine Arteriovenous Grafts,” Journal of Vascular Surgery, vol. 46, No. 3, Sep. 2007, pp. 548-556.e2.
Okano et al., “Mechanism of Cell Detachment from Temperature-Modulated, Hydrophilic-Hydrophobic Polymer Surfaces,” Biomaterials, vol. 16, No. 4, 1995, pp. 297-303.
Putnam et al., “Expansion of Human Regulatory T-Cells from Patients with Type 1 Diabetes,” Diabetes, vol. 58, Mar. 2009, pp. 652-662.
Rahmahwati et al., “The Synthesis of Polyethersulfone (PES) Derivatives for the Immobilization of Lipase Enzyme,” Key Engineering Materials, vol. 811, Jul. 8, 2019, pp. 14-21.
Rodrigues et al., “Stem Cell Cultivation in Bioreactors,” Biotechnology Advances, vol. 29, Jun. 25, 2011, pp. 815-829.
Ronco et al., “Blood and Dialysate Flow Distributions in Hollow-Fiber Hemodialyzers Analyzed by Computerized Helical Scanning Technique,” Journal of the American Society of Nephrology, vol. 13, 2002, pp. S53-S61.
Ryu et al., “Near-infrared Light Responsive Synthetic c-di-GMP Module for Optogenetic Applications,” ACS Synthetic Biology, vol. 3, Jan. 28, 2014, pp. 802-810.
Shimizu et al., “Fabrication of Pulsatile Cardiac Tissue Grafts Using a Novel 3-Dimensional Cell Sheet Manipulation Technique and Temperature-Responsive Cell Culture Surfaces,” Circulation Research, vol. 90, Feb. 22, 2002, e40-e48, pp. 1-9.
Smith et al., “Expansion of Neutrophil Precursors and Progenitors in Suspension Cultures of CD34+ Cells Enriched from Human Bone Marrow,” Experimental Hematology, vol. 21, 1993, pp. 870-877.
Streltsova et al., “Recurrent Stimulation of Natural Killer Cell Clones with K562 Expressing Membrane-Bound Interleukin-21 Affects Their Phenotype, Interferon-γ Production, and Lifespan,” International Journal of Molecular Sciences, vol. 20, No. 443, 2019, pp. 1-18.
Takezawa et al., “Cell Culture on a Thermo-responsive Polymer Surface,” Nature, Bio/Technology, vol. 8, Sep. 1990, pp. 854-856.
Tiziani et al., “Metabolomic Profiling of Drug Response in Acute Myeloid Leukaemia Cell lines,” PLoS ONE, vol. 4, Issue 1, Jan. 22, 2009, e4251.
Ueda et al., “Interaction of Natural Killer Cells with Neutrophils Exerts a Significant Antitumor Immunity in Hematopoietic Stem Cell Transplantation Recipients,” Cancer Medicine, vol. 5, No. 1, 2016 pp. 49-60.
Urbich et al., “Fluid Shear Stress-induced Transcriptional Activation of the Vascular Endothelial Growth Factor Receptor-2 Gene Requires Sp1-Dependent DNA Binding,” FEBS Letters, 535, 2003, pp. 87-93.
Von Laer, “Loss of CD38 Antigen on CD34 CD38 Cells during Short-term Culture,” Leukemia, Correspondence, 1999 pp. 947-948.
Wagner et al., “Phase I/II Trial of StemRegenin-1 Expanded Umbilical Cord Blood Hematopoietic Stem Cells Supports Testing as a Stand-alone Graft,” Cell Stem Cell, Jan. 7, 2016, vol. 18, pp. 144-155.
Weaver et al., “An Analysis of Engraftment Kinetics as a Function of the CD34 Content of the Peripheral Blood Progenitor Cell Collections in 692 Patients after the Administration of Myeloblative Chemotherapy,” Blood, vol. 86, No. 10, Nov. 15, 1995, pp. 3691-3969.
Yang et al., “Suspension Culture of Mammalian Cells Using Thermosensitive Microcarrier that Allows Cell Detachment without Proteolytic Enzyme Treatment,” Cell Transplantation, vol. 19, Aug. 18, 2010, pp. 1123-1132.
Yi et al., “A Readily Modified Polyethersulfone with Amino-Substituted Groups: Its Amphiphilic Copolymer Synthesis and Membrane Application,” Polymer, vol. 53, Dec. 2, 2011, pp. 350-358.
Zheng et al., “Differential Effects of Cyclic and Static Stretch on Coronary Microvascular Endothelial Cell Receptors and Vasculogenic/Angiogenic Responses,” American Journal of Physiology—Heart and Circulatory Physiology, vol. 295, Aug. 2008, H794-H800.
Notice of Allowance for U.S. Appl. No. 15/616,876, dated Mar. 22, 2021, 9 pages.
U.S. Appl. No. 15/616,745, 2017/0349872 (U.S. Pat. No. 10,577,575).
U.S. Appl. No. 15/616,635, 2017/0349869.
U.S. Appl. No. 16/845,686.
Abumiya, et al. at National Cardiovascular Center Research Institute in Japan, suggest that subjecting human umbilical vein endothelial cells (HUVECs) to laminar shear stress for a period of 8 hours increased the relative expression of VEGFR-2 mRNA (Ateriosclerosis, Thrombosis, and Vascular Biology, 2002).
Afzali B, Edozie FC, Fazekasova H, Scotta C, Mitchell PJ, Canavan JB, Kordasti SY, Chana PS, Ellis R, Lord GM, John S, Hilton R, Lechler RI, Lombardi G. Comparison of regulatory T cells in hemodialysis patients and healthy controls: implications for cell therapy in transplantation. Clin J Am Soc Nephrol. 2013;8(8):1396-405.
Alberts B, Johnson A, Lewis J, et al. Molecular Biology ofthe Cell. 4th edition. New York: Garland Science; 2002. Fibroblasts and Their Transformations: The Connective-Tissue Cell Family. Available from: https://www.ncbi.nlm.nih.gov/books/NBK26889.
Almeida L, Lochner M, Berod L, Sparwasser T. Metabolic pathways in T cell activation and lineage differentiation. Semin Immunol. 2016;28(5):514-524.
Amy Putnam, Todd M. Brusko, Michael R. Lee, Weihong Liu, Gregory L. Szot, Taumoha Ghosh, Mark A. Atkinson, and Jeffrey A. Bluestone. Expansion of human regulatory T-Cells from patients with Type 1 Diabetes. Diabetes, 58: 652-662, 2009.
Anurathapan et al., “Engineered T cells for cancer treatment,” Cytotherapy, vol. 16, pp. 713-733, 2014.
Aronowski J, Samways E, Strong R, Rhoades HM, Grotta JC. An alternative method for the quantitation of neuronal damage after experimental middle cerebral artery occlusion in rats: Analysis of behavioral deficit. Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism. 1996;16:705-713.
Arrigoni, Chiara, et al. “Rotating versus perfusion bioreactor for the culture of engineered vascular constructs based on hyaluronic acid.” Biotechnology and bioengineering 100.5 (2008): 988-997.
Bai/Delaney (Nohla Therapeutics) showed that expanding Cord Blood-derived CD34+CD38-CD45RA- HSPCs in a biodegradable zwitterionic hydrogel with a rNotch ligand cocktail for 24 days mitigated HSPC differentiation and promoted self-renewal of lymphoid and myeloid cell phenotypes in an NSG mouse model (Nature Medicine, 2019).
Ballas CB, Zielske SP, Gerson SL (2002) Adult bone marrow stem cells for cell and gene therapies: implications for greater use. J Cell Biochem Suppl 38: 20-28.
Ballke C, Gran E, Baekkevold ES, Jahnsen FL. Characterization of Regulatory T-Cell Markers in CD4+ T Cells ofthe Upper Airway Mucosa. PLoS One. 2016;11(2):e0148826.
Baraniak PR, McDevitt TC (2010) Stem cell paracrine actions and tissue regeneration. Regen Med 5(1): 121-143.
Barckhausen C, Rice B, Baila S, et al. (2016) GMP-Compliant Expansion of Clinical-Grade Human Mesenchymal Stromal/Stem Cells Using a Closed Hollow Fiber Bioreactor. Methods Mol Biol 1416: 389-412.
Barker, Juliet N., et al. “CD34+ cell content of 126 341 cord blood units in the US inventory: implications for transplantation and banking.” Blood advances 3.8 (2019): 1267-1271.
Bazarian JJ, Cernak I, Noble-Haeusslein L, Potolicchio S, Temkin N. Long-term neurologic outcomes after traumatic brain injury. The Journal of head trauma rehabilitation. 2009;24:439-451.
Bending D, Pesenacker AM, Ursu S, Wu Q, Lom H, Thirugnanabalan B, Wedderburn LR. Hypomethylation at the regulatory T cell-specific demethylated region in CD25hi T cells is decoupled from FOXP3 expression at the inflamed site in childhood arthritis. J Immunol 2014;193(6):2699-708.
Berendse M, Grounds MD, Lloyd CM (2003) Myoblast structure affects subsequent skeletal myotube morphology and sarcomere assembly. Exp Cell Res 291(2): 435-450.
Bernard, A., Payton, Mar. 1995. “Fermentation and Growth of Escherichia coli for Optimal Protein Production”.
Berney SM, Schaan T, Wolf RE, van der Heyde H, Atkinson TP. CD2 (OKT11) augments CD3-mediated intracellular signaling events in human T lymphocytes. J Investig Med. 2000;48(2):102-9.
Bioheart Clinical Trial Clinica 1302 Apr. 18, 2008.
Biomolecular and Cellular Interactions with the Hollow Fiber Membrane Currently Used in the Quantum® Cell Expansion System. 12th NJ Symposium on Biomaterials Science, Oct. 6-7, 2014, New Brunswick, NJ.
Blache C, Chauvin JM, Marie-Cardine A, Contentin N, Pommier P, Dedreux I, Francois S, Jacquot S, Bastit D, Boyer 0. Reduced frequency of regulatory T cells in peripheral blood stem cell compared to bone marrow transplantations. Biol Blood Marrow Transplant. 2010;16(3):430-4.
Bluestone et al. Type 1 diabetes immunotherapy using polyclonal regulatory! cells. Science Translational Medicine 7(315):1-34, 2015.
Bluestone JA, Tang Q. Treg cells-the next frontier of cell therapy. Science. 2018;362(6411):154-155.
Bluestone, Jeffrey A., et al. “Type 1 diabetes immunotherapy using polyclonal regulatory T cells.” Science translational medicine 7.315 (2015): 315ra189-315ra189.
Blum S, Moore AN, Adams F, Dash PK. A mitogen-activated protein kinase cascade in the ca1/ca2 subfield of the dorsal hippocampus is essential for long-term spatial memory. The Journal of neuroscience : the official journal of the Society for Neuroscience. 1999;19:3535-3544.
Bojun Li et al. Heparin-induced conformation changes of fibronectin within the extracellular matrix promote hMSC osteogenic differentiation. Biomaterials Science 3: 73-84, 2015.
Boquest AC, Shahdadfar A, Brinchmann JE, Collas P. Isolation of Stromal Stem Cells from Human Adipose Tissue. Methods Mol Biol. 2006;325:35-46. doi: 10.1385/1-59745-005-7:35. PMID: 16761717.
Borden, M. and Longo, M., “Dissolution Behavior of Lipid Monolayer-Coated, Air-Filled Microbubbles: Effect of Lipid Hydrophobic Chain Length,” Langmuir, vol. 18, pp. 9225-9233, 2002.
Bourke, Sharon L., and Joachim Kohn. “Polymers derived from the amino acid L-tyrosine: polycarbonates, polyarylates and copolymers with poly (ethylene glycol).” Advanced drug delivery reviews 55.4 (2003): 447-466.
Brand, K. and Hermfisse, U., “Aerobic Glycolysis by Proliferating Cells: a Protective Strategy against Reactive Oxygen Species,” The FASEB Journal, vol. 11, pp. 388-395, Apr. 1997.
Brentjens et al., “CD19-Targeted T Cells Rapidly Induce Molecular Remission in Adults with Chemotherapy-Refractory Acute Lympohblastic Leukemia,” Science Iranslational Medicine, vol. 5, Issue 177, pp. 1-9, Mar. 20, 2013.
Brentjens et al., “Safety and Persistance of Adoptively Transferred Autologous CD19-Target T Cells in Patients with Relapsed or Chemotherapy Refractory B-Cell Leukemias,” Blood, vol. 118, No. 18, pp. 4817-4828, Nov. 3, 2011.
C. H. Weaver, et al. An Analysis of Engraftment Kinetics as a function ofthe CD34 Content of the Peripheral Blood Progenitor Cell Collections in 692 Patients After the Administration of Myeloblative Chemotherapy. Blood 86(10): 3691-3969, 1995.
Carswell, K. and Papoutsakis, E. “Culture of Human T Cells in Stirred Bioreactors for Cellular Immunotherapy Applications: Shear, Proliferation, and the IL-2 Receptor,” Biotechnology and Bioengineering, vol. 68, No. 3, pp. 329-338, May 5, 2000.
Celeste Nelson et al., Emergent patterns of growth controlled by multicellular form and mechanics, (in Christopher Chen's Lab demonstrated, in separate experiments, that curved surfaces with a radius of curvature (200 ?m) that is greater than the cell diameter and surfaces that have undulating special patterning (depressions) increase the patterned growth of ECs), [PNAS 102(33): 11594-11599, 2005].
Chapman NM, Chi H. mTOR signaling, Tregs and immune modulation. Immunotherapy. 2014;6(12):1295-311.
Chaudhry A, Samstein RM, Treuting P, Liang Y, Pils MC, Heinrich JM, Jack RS, Wunderlich FT, Bruning JC, Muller W, Rudensky AY. Interleukin-10 signaling in regulatory T cells is required for suppression of Th17 cell-mediated inflammation. Immunity. 2011;34(4):566-78.
Chen, C. and Broden, M., “The Role of Poly(theylene glycol) Brush Architecture in Complement Activation on Targeted Microbubble Surfaces,” Biomaterials, vol. 32, No. 27, pp. 6579-6587, Jun. 17, 2011.
Choi W, Kwon SJ, Jin HJ, et al. (2017) Optimization of culture conditions for rapid clinical-scale expansion of human umbilical cord blood-derived mesenchymal stem cells. Clin Transl Med 6(1): 38.
Chullikana A, Majumdar AS, Gottipamula S, et al. (2015) Randomized, double-blind, phase I/II study of intravenous allogeneic mesenchymal stromal cells in acute myocardial infarction. Cytotherapy 17(3): 250-261.
Claudio G. Brunstein, Jeffrey S. Miller, Qing Cao, Daivd H. McKenna, Keli L. Hippen, Julie Curtsinger, Todd Defor, Bruce L. Levine, Carl H. June, Pablo Rubinstein, Philip B. McGIave, Bruce R. Blazar, and John E. Wagner. Infusion of ex vivo expanded T regulatory cells in adults transplanted with umbilical cord blood: safety profile and detection kinetics. Blood, 117(3): 1061-1070, 2010.
Coeshott C, Vang B, Jones M, Nankervis B. Large-scale expansion and characterization of CD3(+) T-cells in the Quantum((R)) Cell Expansion System. J Transl Med. 2019;17(1):258.
Coombes JL, Robinson NJ, Maloy KJ, Uhlig HH, Powrie F. Regulatory T cells and intestinal homeostasis. Immunol Rev. 2005;204:184-94.
Coquillard C. mTOR Signaling in Regulatory T cell Differentiation and Expansion. SOJ Immunology. 2015;3(1):1-10.
Creed JA, DiLeonardi AM, Fox DP, Tessier AR, Raghupathi R. Concussive brain trauma in the mouse results in acute cognitive deficits and sustained impairment of axonal function. Journal of neurotrauma. 2011;28:547-563.
Dash PK, Hochner B, Kandel ER. Injection ofthe camp-responsive element into the nucleus of aplysia sensory neurons blocks long-term facilitation. Nature. 1990;345:718-721.
Dash PK, Johnson D, Clark J, Orsi SA, Zhang M, Zhao J, Grill RJ, Moore AN, Pati S. Involvement of the glycogen synthase kinase-3 signaling pathway in tbi pathology and neurocognitive outcome. PloS one. 2011;6:e24648.
Dash PK, Mach SA, Blum S, Moore AN. Intrahippocampal wortmannin infusion enhances long-term spatial and contextual memories. Learn Mem. 2002;9:167-177.
Dash PK, Orsi SA, Zhang M, Grill RJ, Pati S, Zhao J, Moore AN. Valproate administered after traumatic brain injury provides neuroprotection and improves cognitive function in rats. PloS one. 2010;5:e11383.
Dash PK, Zhao J, Orsi SA, Zhang M, Moore AN. Sulforaphane improves cognitive function administered following traumatic brain injury. Neuroscience letters. 2009;460:103-107.
Davila et al., “Efficacy and Toxicity Management of 19-28z CAR T Cell Therapy in B cell Acute Lymphoblastic Leukemia,” Science Translational Medicine, vol. 6, No. 224, pp. 1-10, Feb. 19, 2014.
Dejana E, Orsenigo F, Lampugnani MG. The role of adherens junctions and ve-cadherin in the control of vascular permeability. Journal of cell science. 2008;121:2115-2122.
Dejana E, Spagnuolo R, Bazzoni G. Interendothelial junctions and their role in the control of angiogenesis, vascular permeability and leukocyte transmigration. Thrombosis and haemostasis. 2001;86:308-315.
Dejana E, Tournier-Lasserve E, Weinstein BM. The control of vascular integrity by endothelial cell junctions: Molecular basis and pathological implications. Developmental cell. 2009;16:209-221.
Del Pino A, Ligero G, Lopez MB, et al. (2015) Morphology, cell viability, karyotype, expression of surface markers and plasticity of three primary cell line cultures before and after the cryostorage in LN2 and GN2. Cryobiology 70(1): 1-8.
Delaney, Colleen, et al. “Notch-mediated expansion of human cord blood progenitor cells capable of rapid myeloid reconstitution.” Nature medicine 16.2 (2010): 232-236.
Ding, Zhongli, Guohua Chen, and Allan S. Hoffman. “Synthesis and purification ofthermally sensitive oligomer? enzyme conjugates of poly (N-isopropylacrylamide)? trypsin.” Bioconjugate chemistry 7.1 (1996): 121-125.
Dixon CE, Clifton GL, Lighthall JW, Yaghmai AA, Hayes RL. A controlled cortical impact model of traumatic brain injury in the rat. Journal of neuroscience methods. 1991;39:253-262.
Dominici M, Le Blanc K, Mueller I, et al. (2006) Minimal criteria for defining multipotent mesenchymal stromal cells. The International Society for Cellular Therapy position statement. Cytotherapy 8(4): 315-317.
Durrani S, Konoplyannikov M, Ashraf M, Haider KH (2010) Skeletal myoblasts for cardiac repair. Regen Med 5(6): 919-932.
Esensten JH, Muller YD, Bluestone JA, Tang Q. Regulatory T-cell therapy for autoimmune and autoinflammatory diseases: The next frontier. J Allergy Clin Immunol. 2018;142(6):1710-1718.
Fakin R, Hamacher J, GuggerM, Gazdhar A, Moser H, Schmid RA. Prolonged amelioration of acute lung allograft rejection by sequential overexpression of human interleukin-10 and hepatocyte growth factor in rats. Exp Lung Res. 2011;37(9):555-62.
Fedorov et al., “PD-1- and CTLA-4-Based Inhibitory Chimeric Antigen Receptors (iCARs) Divert Off-Target Immunotherapy Responses,” Science Translational Medicine, vol. 5, No. 215, pp. 1-12, Dec. 11, 2013.
Ferreira LMR, Muller YD, Bluestone JA, Tang Q. Next-generation regulatory T cell therapy. Nat Rev Drug Discov. 2019;18(10):749-769.
Fischbach, Michael A., Jeffrey A. Bluestone, and Wendell A. Lim. “Cell-based therapeutics: the next pillar of medicine.” Science translational medicine 5.179 (2013): 179ps7-179ps7.
Fisk, Nicholas M., et al. “Can routine commercial cord blood banking be scientifically and ethically justified?.” PLoS medicine 2.2 (2005): e44.
Forbes Jun. 23, 2014 article “Will this man cure cancer?”.
Fowler DH. Rapamycin-resistant effector T-cell therapy. Immunol Rev. 2014;257(1):210-25.
Fraser H, Safinia N, Grageda N, Thirkell S, Lowe K, Fry LJ, Scotta C, Hope A, Fisher C, Hilton R, Game D, Harden P, Bushell A, Wood K, Lechler RI, Lombardi G. A Rapamycin-Based GMP-Compatible Process for the Isolation and Expansion of Regulatory T Cells for Clinical Trials. Mol Ther Methods Clin Dev. 2018;8:198-209.
Frauwirth KA, Riley JL, Harris MH, Parry RV, Rathmell JC, Plas DR, Elstrom RL, June CH, Thompson CB. The CD28 signaling pathway regulates glucose metabolism. Immunity. 2002;16(6):769-777.
Fuchs A, Gliwinski M, Grageda N, Spiering R, Abbas AK, Appel S, Bacchetta R, Battaglia M, Berglund D, Blazar B, Bluestone JA, Bornhauser M, Ten Brinke A, Brusko TM, Cools N, Cuturi MC, Geissler E, Giannoukakis N, Golab K, Hafler DA, van Ham SM, Hester J et al. Minimum Information about T Regulatory Cells: A Step toward Reproducibility and Standardization. Front Immunol. 2017;8:1844.
G0211: Study for Gamma Irradiation of Bioreactor Membranes, undated, author unknown, 3 pages.
Galgani M, De Rosa V, La Cava A, Matarese G. Role of Metabolism in the Immunobiology of Regulatory T Cells. J Immunol. 2016;197(7):2567-75.
Gedaly R, De Stefano F, Turcios L, Hill M, Hidalgo G, Mitov Ml, Alstott MC, Butterfield DA, Mitchell HC, Hart J, Ai-Attar A, Jennings CD, Marti F. mTOR Inhibitor Everolimus in Regulatory T Cell Expansion for Clinical Application in Transplantation. Transplantation. 2019;103(4):705-715.
Gimble, Jeffrey M., Adam J. Katz, and Bruce A. Bunnell. “Adipose-derived stem cells for regenerative medicine.” Circulation research 100.9 (2007): 1249-1260.
Gingras AC, Raught B, Sonenberg N. Regulation of translation initiation by FRAP/mTOR. Genes Dev. 2001;15(7):807-26.
Godin, Michel, et al. “Measuring the mass, density, and size of particles and cells using a suspended microchannel resonator.” Applied physics letters 91.12 (2007): 123121.
Goh, Celeste, Sowmya Narayanan, and Young S. Hahn. “Myeloid-derived suppressor cells: the dark knight or the joker in viral infections?.” Immunological reviews 255A (2013): 210-221.
Golab K, Leveson-Gower D, Wang XJ, Grzanka J, Marek-Trzonkowska N, Krzystyniak A, Millis JM, Trzonkowski P, Witkowski P. Challenges in cryopreservation of regulatory T cells (Tregs) for clinical therapeutic applications. Int Immunopharmacol. 2013;16(3):371-5.
Goldring CE, Duffy PA, Benvenisty N, Andrews PW, Ben-David U, Eakins R, French N, Hanley NA, Kelly L, Kitteringham NR, Kurth J, Ladenheim D, Laverty H, McBlane J, Narayanan G, Patel S, Reinhardt J, Rossi A, Sharpe M, Park BK. Assessing the safety of stem cell therapeutics. Cell stem cell. 2011;8:618-628.
Griesche, Nadine, et al. “A simple modification ofthe separation method reduces heterogeneity of adipose-derived stem cells.” cells tissues organs 192.2 (2010): 106-115.
Gutcher I, Donkor MK, Ma Q, Rudensky AY, Flavell RA, Li MO. Autocrine transforming growth factor-betal promotes in vivo Th17 cell differentiation. Immunity. 2011;34(3):396-408.
Haack-Sorensen M, Follin B, Juhl M, et al. (2016) Culture expansion of adipose derived stromal cells. A closed automated Quantum Cell Expansion System compared with manual flask-based culture. J Transl Med 14(1): 319.
Hall ED, Sullivan PG, Gibson TR, Pavel KM, Thompson BM, Scheff SW. Spatial and temporal characteristics of neurodegeneration after controlled cortical impact in mice: More than a focal brain injury. Journal of neurotrauma. 2005;22:252-265.
Hami et al., “GMP Production and Testing of Xcellerated T Cells for the Treatment of Patients with CLL,” Cytotherapy, pp. 554-562, 2004.
Hamm RJ, Dixon CE, Gbadebo DM, Singha AK, Jenkins LW, Lyeth BG, Hayes RL. Cognitive deficits following traumatic brain injury produced by controlled cortical impact. Journal of neurotrauma. 1992;9:11-20.
Hanley PJ, Mei Z, Durett AG, et al. (2014) Efficient manufacturing of therapeutic mesenchymal stromal cells with the use ofthe Quantum Cell Expansion System. Cytotherapy 16(8): 1048-1058.
He N, Fan W, Henriquez B, Yu RT, Atkins AR, Liddle C, Zheng Y, Downes M, Evans RM. Metabolic control of regulatory T cell (Treg) survival and function by Lkb1. Proc Natl Acad Sci USA. 2017;114(47):12542-12547.
He X, Landman S, Bauland SC, van den Dolder J, Koenen HJ, Joosten I. A TNFR2-Agonist Facilitates High Purity Expansion of Human Low Purity Treg Cells. PLoS One. 2016;11(5):e0156311.
Heskins, Michael, and James E. Guillet. “Solution properties of poly (N-isopropylacrylamide).” Journal of Macromolecular Science—Chemistry 2.8 (1968): 1441-1455.
Hill JA, Feuerer M, Tash K, Haxhinasto S, Perez J, Melamed R, Mathis D, Benoist C. Foxp3 Transcription-factor-dependent and -independent regulation ofthe regulatory T cell transcriptional signature. Immunity. 2007;27(5):786-800.
Högstedt, Benkt, Anita Karlsson, and Anders Holmén. “Frequency and size distribution of micronuclei in lymphocytes stimulated with phytohemagglutinin and pokeweed mitogen in workers exposed to piperazine.” Hereditas 109.(1988): 139-142.
Hollyman et al., “Manufacturing Validation of Biologicall Functional T Cells Targeted to CD19 Antigen for Autologous Adoptive Cell Therapy,” J Immunother, vol. 32, No. 2, pp. 169-180, Feb.-Mar. 2009.
http://www.ucdenver.edu/academics/colleges/medicalschool/centers/cancercenter/Research/sharedresources/Animallmaging/smallanimalimaging/Pages/MRI.aspx.
ISCT Webinar “Volume Reduction technology for Large Scale Harvest or Post-thaw Manipulation of Cellular Therapeutics”.
Iwashima, Shigejiro, et al. “Novel culture system of mesenchymal stromal cells from human subcutaneous adipose tissue.” Stem cells and development 18.4 (2009): 533-544.
Jarocha D, Stangel-Wojcikiewicz K, Basta A, Majka M (2014) Efficient myoblast expansion for regenerative medicine use. Int J Mol Med 34(1): 83-91.
Jin, H., and J. Bae. “Neuropeptide Y regulates the hematopoietic stem cell microenvironment and prevents nerve injury in the bone marrow.” 22nd Annual ISCT Meeting (2016): S29.
Jo CH, Lee YG, Shin WH, et al. (2014) Intra-articular injection of mesenchymal stem cells for the treatment of osteoarthritis ofthe knee: a proof-of-concept clinical trial. Stem Cells 32(5): 1254-1266.
John Carvell, et al. Monitoring Live Biomass in Disposable Bioreactors, BioProcess International 14(3)s, Mar. 2016.
John Nicolette, et al. (Abbott Laboratories). In Vitro Micronucleus Screening of Pharmaceutical Candidates by Flow Cyto9metry in Chinese Hamster V79 Cells, Environmental and Molecular Mutagenesis 00:000-000, 2010.
John P. Carvell and Jason E. Dowd. On-line measurements and control of viable cell density in cell culture manufacturing processes using radio frequency impedance. Cytotechnology 50: 35-48, 2006.
Johnson, Patrick A., et al. “Interplay of anionic charge, poly (ethylene glycol), and iodinated tyrosine incorporation within tyrosine?derived polycarbonates: Effects on vascular smooth muscle cell adhesion, proliferation, and motility.” Journal of Biomedical Materials Research Part A: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials 93.2 (2010): 505-514.
Johnston LC, Su X, Maguire-Zeiss K, Horovitz K, Ankoudinova I, Guschin D, Hadaczek P, Federoff HJ, Bankiewicz K, Forsayeth J. Human interleukin-10 gene transfer is protective in a rat model of Parkinson's disease. Mol Ther. 2008;16(8):1392-9.
Jones2016ISCT 2016 Poster 69.
Joy, Abraham, et al. “Control of surface chemistry, substrate stiffness, and cell function in a novel terpolymer methacrylate library.” Langmuir 27.5 (2011): 1891-1899.
Kalamasz et al., “Optimization of Human T-Cell Expansion Ex Vivo Using Magnetic Beads Conjugated with Anti-CD3 and Anti-CD28 Antibodies,” J Immunother, vol. 27, No. 5, pp. 405-418, Sep.-Oct. 2004.
Kim, Do-Hyung, et al. “mTOR interacts with raptor to form a nutrient-sensitive complex that signals to the cell growth machinery.” Cell 110.2 (2002): 163-175.
Kishore M, Cheung KCP, Fu H, Bonacina F, Wang G, Coe D, Ward EJ, Colamatteo A, Jangani M, Baragetti A, Matarese G, Smith DM, Haas R, Mauro C, Wraith DC, Okkenhaug K, Catapano AL, De Rosa V, Norata GD, Marelli-Berg FM. Regulatory T Cell Migration Is Dependent on Glucokinase-Mediated Glycolysis. Immunity. 2017;47(5):875-889 e10.
Klapper et al., “Single-Pass, Closed-System Rapid Expansion of Lymphocyte Cultures for Adoptive Cell Therapy,” Journal of Immunological Methods, 345, pp. 90-99, Apr. 21, 2009.
Klysz D, Tai X, Robert PA, Craveiro M, Cretenet G, Oburoglu L, Mongellaz C, Floess S, Fritz V, Matias Ml, Yong C, Surh N, Marie JC, Huehn J, Zimmermann V, Kinet S, Dardalhon V, Taylor N. Glutamine-dependent alpha-ketoglutarate production regulates the balance between T helper 1 cell and regulatory T cell generation. Sci Signal. 2015;8(396):ra97.
Korpanty et al., “Tageting Vascular Enothelium with Avidin Microbubbles,” Ultrasound in Medicine and Biology, vol. 31, No. 9, pp. 1279-1283, May 24, 2005.
Krauss et al., “Signaling Takes a Breath—New Quantitative Perspectives on Bioenergetics and Signal Transduction,” Immunity, vol. 15, pp. 497-502, Oct. 2001.
Kulikov, A. V., et al. “Application of multipotent mesenchymal stromal cells from human adipose tissue for compensation of neurological deficiency induced by 3-nitropropionic acid in rats.” Bulletin of experimental biology and medicine 145.4 (2008): 514-519.
Kumar P, Marinelarena A, Raghunathan D, Ragothaman VK, Saini S, Bhattacharya P, Fan J, Epstein AL, Maker AV, Prabhakar BS. Critical role of OX40 signaling in the TCR-independent phase of human and murine thymic Treg generation. Cell Mol Immunol. 2019;16(2):138-153.
Kwan, J. and Borden, M., “Lipid Monolayer Collapse and Microbubble Stability,” Advances in Colloid and Interface Science, vols. 183-184, pp. 82-99, Aug. 21, 2012.
Lampugnani MG, Caveda L, Breviario F, Del Maschio A, Dejana E. Endothelial cell-to-cell junctions. Structural characteristics and functional role in the regulation of vascular permeability and leukocyte extravasation. Bailliere's clinical haematology. 1993;6:539-558.
Lee et al., “Continued Antigen Stimulation Is Not Required During CD4+ T Cell Clonal Expansion,” The Journal of Immunology, 168, pp. 1682-1689, 2002.
Lee, Jae W., et al. “Allogeneic human mesenchymal stem cells for treatment of E. coli endotoxin-induced acute lung injury in the ex vivo perfused human lung.” Proceedings of the national academy of Sciences 106.38 (2009): 16357-16362.
Levine, B., “T Lymphocyte Engineering ex vivo for Cancer and Infectious Disease,” Expert Opinion on Biological Therapy, vol. 4, No. 4, pp. 475-489, 2008.
Lindstein, Tullia, et al. “Regulation of lymphokine messenger RNA stability by a surface-mediated T cell activation pathway.” Science 244.4902 (1989): 339-343.
Liotta, Francesco, et al. “Frequency of regulatory T cells in peripheral blood and in tumour-infiltrating lymphocytes correlates with poor prognosis in renal cell carcinoma.” BJU international 107.9 (2011): 1500-1506.
Liu W, Putnam AL, Xu-Yu Z, Szot GL, Lee MR, Zhu S, Gottlieb PA, Kapranov P, Gingeras TR, Fazekas de St Groth B, Clayberger C, Soper DM, Ziegler SF, Bluestone Ja. CD127 expression inversely correlates with FoxP3 and suppressive function of human CD4+ T reg cells. J Exp Med. 2006;203(7):1701-1711.
Lum et al., “Ultrasound Radiation Force Enables Targeted Deposition of Model Drug Carriers Loaded on Microbubbles,” Journal of Controlled Release, 111, pp. 128-134, 2006.
M. R. Koller, et al. Clinical-scale human umbilical cord blood cell expansion in a novel automated perfusion culture system. Bone Marrow Transplantion 21:653-663, 1998.
Malone et al., “Characterization of Human Tumor-Infiltrating Lymphocytes Expanded in Hollow-Fiber Bioreactors for Immunotherapy of Cancer,” Cancer Biotherapy & Radiopharmaceuticals, vol. 16, No. 5, pp. 381-390, 2001.
Mao AS, Mooney DJ (2015) Regenerative medicine: current therapies and future directions. Proc Natl Acad Sci USA 112(47): 14452-14459.
Maria Streltsova, Dean Lee (Nationwide Children's Hospital, OSU, Columbus, OH) et al. (Int'l Journal of Molecular Sciences, 2019).
Markgraf CG, Clifton GL, Aguirre M, Chaney SF, Knox-Du Bois C, Kennon K, Verma N. Injury severity and sensitivity to treatment after controlled cortical impact in rats. Journal of Neurotrauma. 2001;18:175-186.
Mathew, James M., et al. “A phase I clinical trial with ex vivo expanded recipient regulatory T cells in living donor kidney transplants.” Scientific reports 8.1 (2018): 1-12.
Matthay, Michael A., et al. “Therapeutic potential of mesenchymal stem cells for severe acute lung injury.” Chest 138.4 (2010): 965-972.
Maynard CL, Harrington LE, Janowski KM, Oliver JR, Zindl CL, Rudensky AY, Weaver CT. Regulatory T cells expressing interleukin 10 develop from Foxp3+ and Foxp3- precursor cells in the absence of interleukin 10. Nat Immunol. 2007;8(9):931-41.
McKenna DH, Jr., Sumstad D, Kadidlo DM, et al. Optimization of cGMP purification and expansion of umbilical cord blood-derived T-regulatory cells in support of first-in-human clinical trials. Cytotherapy 2017;19:250-62.
McLimans W, Kinetics of Gas Diffusion in Mammalian Cell Culture Systems. Biotechnology and Bioengineering 1968; 10:725-740.
McMurtrey, Richard J. “Analytic models of oxygen and nutrient diffusion, metabolism dynamics, and architecture optimization in three-dimensional tissue constructs with applications and insights in cerebral organoids.” Tissue Engineering Part C: Methods 22.3 (2016): 221-249.
Menge, Tyler, et al. “Mesenchymal stem cells regulate blood-brain barrier integrity through TIMP3 release after traumatic brain injury.” Science translational medicine 4.161 (2012): 161ra150-161ra150.
Miska J, Lee-Chang C, Rashidi A, Muroski ME, Chang AL, Lopez-Rosas A, Zhang P, Panek WK, Cordero A, Han Y, Ahmed AU, Chandel NS, Lesniak MS. HIF-1alpha Is a Metabolic Switch between Glycolytic-Driven Migration and Oxidative Phosphorylation-Driven Immunosuppression of Tregs in Glioblastoma. Cell Rep. 2019;27(1):226-237 e4.
Miyara M, Yoshioka Y, Kitoh A, Shima T, Wing K, Niwa A, Parizot C, Taflin C, Heike T, Valeyre D, Mathian A, Nakahata T, Yamaguchi T, Nomura T, Ono M, Amoura Z, Gorochov G, Sakaguchi S. Functional delineation and differentiation dynamics of human CD4+ T cells expressing the FoxP3 transcription factor. Immunity. 2009;30(6):899-911.
Nankervis B, Jones M, Vang B et al. (2018) Optimizing T Cell Expansion in a Hollow-Fiber Bioreactor. Curr Stem Cell Rep. Advanced online publication, https://doi.org/10.1007/s40778-018-0116-x.
Nankervis, Brian, et al. “Optimizing T cell expansion in a hollow-fiber bioreactor.” Current Stem Cell Reports 4.1 (2018): 46-51.
Nedoszytko B, Lange M, Sokolowska-Wojdylo M, Renke J, Trzonkowski P, Sobjanek M, Szczerkowska-Dobosz A, Niedoszytko M, Gorska A, Romantowski J, Czarny J, Skokowski J, Kalinowski L, Nowicki R. The role of regulatory T cells and genes involved in their differentiation in pathogenesis of selected inflammatory and neoplastic skin diseases. Part II: The Treg role in skin diseases pathogenesis. Postepy Dermatol Alergol. 2017;34(5):405-417.
Nehlin JO, Just M, Rustan AC (2011) Human myotubes from myoblast cultures undergoing senescence exhibit defects in glucose and lipid metabolism. Biogerontology 12: 349-365.
New victories for adult Stem Cell Research New York Feb. 6, 2007.
Newton R, Priyadharshini B, Turka LA. Immunometabolism of regulatory T cells. Nat Immunol. 2016;17(6):618-25.
Ng TH, Britton GJ, Hill EV, Verhagen J, Burton BR, Wraith DC. Regulation of adaptive immunity; the role of interleukin-10. Front Immunol. 2013;4:129.
Nikolaychik, V. V., M. M. Samet, and P. L Lelkes. “A New, Cryoprecipitate Based Coating For Improved Endothelial Cell Attachment And Growth On Medical Grade Artificial Surfaces.” ASAIO Journal (American Society for Artificial Internal Organs: 1992) 40.3 (1994): M846-52.
Nish SA, Schenten D, Wunderlich FT, Pope SD, Gao Y, Hoshi N, Yu S, Yan X, Lee HK, Pasman L, Brodsky I, Yordy B, Zhao H, Bruning J, Medzhitov R. T cell-intrinsic role of IL-6 Signaling in primary and memory responses. Elife. 2014;3:e01949.
Niwayama, Jun, et al. “Analysis of hemodynamics during blood purification therapy using a newly developed noninvasive continuous monitoring method.” Therapeutic Apheresis and Dialysis 10.4 (2006): 380-386.
Okano et al. (Tokyo Women's Medical College, Japan) demonstrated the recovery of endothelial cells and hepatocytes from plasma-treated polystyrene dishes grafted with PNIAAm (Journal of Biomedical Materials Research, 1993).
Onishi Y, Fehervari Z, Yamaguchi T, Sakaguchi S. Foxp3+ natural regulatory T cells preferentially form aggregates on dendritic cells in vitro and actively inhibit their maturation. Proc Natl Acad Sci U S A. 2008;105(29):10113-8.
Onyszchuk G, LeVine SM, Brooks WM, Berman NE. Post-acute pathological changes in the thalamus and internal capsule in aged mice following controlled cortical impact injury: A magnetic resonance imaging, iron histochemical, and glial immunohistochemical study. Neuroscience letters. 2009;452:204-208.
Pacella I, Procaccini C, Focaccetti C, Miacci S, Timperi E, Faicchia D, Severa M, Rizzo F, Coccia EM, Bonacina F, Mitro N, Norata GD, Rossetti G, Ranzani V, Pagani M, Giorda E, Wei Y, Matarese G, Barnaba V, Piconese S. Fatty acid metabolism complements glycolysis in the selective regulatory T cell expansion during tumor growth. Proc Natl Acad Sci U S A. 2018;115(28):E6546-E6555.
Parhi, Purnendu, Avantika Golas, and Erwin A. Vogler. “Role Of Proteins And Water In The Initial Attachment Of Mammalian Cells To Biomedical Surfaces: A Review.” Journal of Adhesion Science and Technology 24.5 (2010): 853-888.
Pati S, Gerber MH, Menge TD, Wataha KA, Zhao Y, Baumgartner JA, Zhao J, Letourneau PA, Huby MP, Baer LA, Salsbury JR, Kozar RA, Wade CE, Walker PA, Dash PK, Cox CS, Jr., Doursout MF, Holcomb JB. Bone marrow derived mesenchymal stem cells inhibit inflammation and preserve vascular endothelial integrity in the lungs after hemorrhagic shock. PloS one. 2011;6:e25171.
Pati S, Khakoo AY, Zhao J, Jimenez F, Gerber MH, Harting M, Redell JB, Grill R, Matsuo Y, Guha S, Cox CS, Reitz MS, Holcomb JB, Dash PK. Human mesenchymal stem cells inhibit vascular permeability by modulating vascular endothelial cadherin/beta-catenin signaling. Stem cells and development. 2011;20:89-101.
Pati, Shibani, and Todd E. Rasmussen. “Cellular therapies in trauma and critical care medicine: Looking towards the future.” PLoS Medicine 14.7 (2017): e1002343.
Pati, Shibani, et al. “Lyophilized plasma attenuates vascular permeability, inflammation and lung injury in hemorrhagic shock.” PloS one 13.2 (2018): e0192363.
Peters JH, Preijers FW, Woestenenk R, Hilbrands LB, Koenen HJ, Joosten I. Clinical grade Treg: GMP isolation, improvement of purity by CD127 Depletion, Treg expansion, and Treg cryopreservation. PLoS One. 2008;3(9):e3161.
Peters, R.; Jones, M.; Brecheisen, M.; Startz, T.; Vang, B.; Nankervis, B.; Frank, N.; Nguyen, K. (2012) TerumoBCT. https://www.terumobct.com/location/north-america/products-and-services/Pages/Quantum-Materials.aspx.
Porter CM, Horvath-Arcidiacono JA, Singh AK, Horvath KA, Bloom ET, Mohiuddin MM. Characterization and expansion of baboon CD4+CD25+ Treg cells for potential use in a non-human primate xenotransplantation model. Xenotransplantation. 2007;14(4):298-308.
Povsictj, O'Connor CM, Henry T, et al. (2011) A double-blind, randomized, controlled, multicenter study to assess the safety and cardiovascular effects of skeletal myoblast implantation by catheter delivery in patients with chronic heart failure after myocardial infarction. Am Heart J 162(4): 654-662.
Prockop, Darwin J., Carl A. Gregory, and Jeffery L. Spees. “One strategy for cell and gene therapy: harnessing the power of adult stem cells to repair tissues.” Proceedings of the National Academy of Sciences 10Q.suppl_1 (2003): 11917-11923.
Q. L. Hao, et al. A functional comparison of CD34+ CD38= cells in cord blood and bone marrow. Blood 86:3745-3753, 1995.
Rey-Jurado, Emma, et al. “Assessing the importance of domestic vaccine manufacturing centers: an overview of immunization programs, vaccine manufacture, and distribution.” Frontiers in immunology 9 (2018): 26.
Roballo KC, Dhungana S, Z. J, Oakey J, Bushman J. Localized delivery of immunosuppressive regulatory 7 cells to peripheral nerve allografts promotes regeneration of branched segmental defects. Biomaterials. 2019;209:1-9.
Ronco C1, Levin N, Brendolan A, Nalesso F, Cruz D, Ocampo C, Kuang D, Bonello M, De Cal M, Corradi V, Ricci Z. Flow distribution analysis by helical scanning in polysulfone hemodialyzers: effects of fiber structure and design on flow patterns and solute clearances. Hemodial Int. Oct. 2006; 10(4):380-8.
Rosenblum MD, Way SS, Abbas AK. Regulatory 7 cell memory. Nat Rev Immunol. 2016;16(2):90-101.
Rubtsov YP, Rasmussen JP, Chi EY, Fontenot J, Castelli L, Ye X, Treuting P, Siewe L, Roers A, Henderson WR, Jr., Muller W, Rudensky AY. Regulatory 7 cell-derived interleukin-10 limits inflammation at environmental interfaces. Immunity. 2008;28(4):546-58.
Rudensky, Alexander Y. “Regulatory T cells and Foxp3.” Immunological reviews 241.1 (2011): 260-268.
S. Koestenbauer, et al. Protocols for Hematopoietic Stem Cell Expansion from Umbilical Cord Blood. Cell Transplantation 18: 1059-1068, 2009.
S. L. Smith, et al. Expansion of neutrophil precursors and progenitors in suspension cultures of CD34+ cells enriched from human bone marrow. Experimental Hematology 21:870-877, 1993.
Safinia N, Grageda N, Scotta C, Thirkell S, Fry LJ, Vaikunthanathan T, Lechler RI, Lombardi G. Cell Therapy in Organ Transplantation: Our Experience on the Clinical Translation of Regulatory T Cells. Front Immunol. 2018;9:354.
Sahay A, Scobie KN, Hill AS, O'Carroll CM, Kheirbek MA, Burghardt NS, Fenton AA, Dranovsky A, Hen R. Increasing adult hippocampal neurogenesis is sufficient to improve pattern separation. Nature. 2011;472:466-470.
Sakaguchi S, Sakaguchi N, Asano M, Itoh M, Toda M. Immunologic self-tolerance maintained by activated 7 cells expressing IL-2 receptor alpha-chains (CD25). Breakdown of a single mechanism of self-tolerance causes various autoimmune diseases. J Immunol. 1995;155(3):1151-64.
Sakaguchi S, Sakaguchi N, Shimizu J, Yamazaki S, Sakihama T, Itoh M, Kuniyasu Y, Nomura T, Toda M, Takahashi T. Immunologic tolerance maintained by CD25+ CD4+ regulatory T cells: their common role in controlling autoimmunity, tumor immunity, and transplantation tolerance. Immunol Rev. 2001;182:18-32.
Schild, Howard G. “Poly (N-isopropylacrylamide): experiment, theory and application.” Progress in polymer science 17.2 (1992): 163-249.
Schmitz R, Alessio A, Kina P. The Physics of PET/CT scanners. Imaging Research Laboratory, Department of Radiology, University of Washington http://depts.washington.edu/imreslab/education/Physics%20of%20PE7.pdf.
Schwartz RH. T cell anergy. Annu Rev Immunol. 2003;21:305-34.
Shevkoplyas et al., “The Force Acting on a Superparamagnetic Bead due to an Applied Magnetic Field,” Lab on a Chip , 7, pp. 1294-1302, 2007.
Shimazu Y, Shimazu Y, Hishizawa M, Hamaguchi M, Nagai Y, Sugino N, Fujii S, Kawahara M, Kadowaki N, Nishikawa H, Sakaguchi S, Takaori-Kondo A. Hypomethylation of the Treg-Specific Demethylated Region in FOXP3 Is a Hallmark ofthe Regulatory T-cell Subtype in Adult T-cell Leukemia. Cancer Immunol Res. 2016;4(2):136-45.
Shimizu et al. (TWMU & Heart Institute of Japan) described the detachment of avian card io myocytes from PIPAAm matrixes that were observed to pulse spontaneously with neovascularization in layered sheets three (3) weeks after transplantation (Circulation Research, 2002).
Sigma-Aldrich Cheimcals Mitomycin C (M4287) MSDS, v4.4, Jul. 7, 2011.
Sirsi, S. and Borden, M., “Microbubble Composition, Properties, and Biomedical Applications,” Bubble Science, Engineering STechnolology, vol. 1, No. 1-2, pp. 3-17, 2009.
Smith C, Okern G, Rehan S, et al. Ex vivo expansion of human T cells for adoptive immunotherapy using the novel Xeno-free CTS Immune Cell Serum Replacement. Clinical S Translational Immunology 2015;4:e31.
Somerville et al., “Clinical Scale Rapid Expansion of Lymphocytes for Adoptive Cell Transfer Therapy in the WAVE® Bioreactor,” Journal of Translational Medicine, vol. 10, No. 69, pp. 1-11, 2012.
Somerville, R. and Dudley, M., “Bioreactors Get Personal,” Oncolmmunology, vol. 1, No. 8, pp. 1435-1437, Nov. 2012.
Spectrum Labs KrosFlo Research IIi TFF System, undated, Spectrum Laboratories, Inc., 4 pages.
Stafano Tiziani, et al. Metabolomic Profiling of Drug Response in Acute Myeloid Leukaemia Cell lines. PLOSone 4(1): e4251 (Jan. 22, 2009).
StAR_Abstract, undated, author unknown, 1 page.
Startz et al. May 2016 TBCT T-cell White Paper.
Startz, T., et al. “Maturation of dendritic cells from CD14+ monocytes in an automated functionally closed hollow fiber bioreactor system.” Cytotherapy 16.4 (2014): S29.
Steven M. Bryce, et al. (Litron Laboratories). In vitro micronucleus assay scored by flow cytometry provides a comprehensive evaluation of cytogenetic damage and cytotoxicity. Mutation Research 630(1-2): 78-91, 2007.
Steven M. Bryce, et al. (Novartis Pharma AG, Johnson & Johnson Pharmaceutical Research, GlaxoSmithKline). Interlaboratory evaluation of a flow cytometric, high content in vitro micronucleus assay. Genetic Toxicology and Environmental Mutagenesis 650:181-195, 2008.
Stuart, Martien A. Cohen, et al. “Emerging applications of stimuli-responsive polymer materials.” Nature materials 9.2 (2010): 101-113.
Su LF, Del Alcazar D, Stelekati E, Wherry EJ, Davis MM. Antigen exposure shapes the ratio between antigen-specific Tregs and conventional T cells in human peripheral blood. Proc Natl Acad Sci U S A. 2016;113(41):E6192-E6198.
The effect of rocking rate and angle on T cell cultures grown in Xuri™ Cell Expansion Systems, Aug. 2014, GE Healthcare UK Limited, 4 pages.
Trzonkowski et al., “Ex Vivo Expansion of CD4+ CD25+ T Regulatory Cells for Immunosuppressive Therapy,” Cytometry Part A, 75A, pp. 175-188, 2009.
Trzonkowski, Piotr, et al. “First-in-man clinical results of the treatment of patients with graft versus host disease with human ex vivo expanded CD4+ CD25+ CD127? T regulatory cells.” Clinical immunology 133.1 (2009): 22-26.
Tsvetkov, Ts, et al. “Isolation and cryopreservation of human peripheral blood monocytes.” Cryobiology 23.6 (1986): 531-536.
Underwood, P. Anne, et al. “Effects of base material, plasma proteins and FGF2 on endothelial cell adhesion and growth.” Journal of Biomaterials Science, Polymer Edition 13.8 (2002): 845-862.
Urbich, et al. from the Goethe-Universität, demonstrated that human endothelial cells increased VEGFR-2 mRNA expression when exposed to 5-15 dynes/cm2 of constant shear force for a Period of 6-24 hours (FEBS, 2002).
van der Net JB, Bushell A, Wood KJ, Harden PN. Regulatory T cells: first steps of clinical application in solid organ transplantation. Transpl Int. 2016;29(1):3-11.
van der Windt GJ, Pearce EL. Metabolic switching and fuel choice during T-cell differentiation and memory development. Immunol Rev. 2012;249(1):27-42.
Vera et al., “Accelerated Production of Antigen-Specific T-Cells for Pre-Clinical and Clinical Applications Using Gas-Permeable Rapid Expansion Cultureware (G-Rex),” J Immunother, vol. 33, No. 3, pp. 305-315, Apr. 2010.
Villa, Alma Y. Camacho, et al. “CD133+ CD34+ and CD133+ CD38+ blood progenitor cells as predictors of platelet engraftment in patients undergoing autologous peripheral blood stem cell transplantation.” Transfusion and Apheresis Science 46.3 (2012): 239-244.
Visser EP1, Disselhorst JA, Brom M, Laverman P, Gotthardt M, Oyen WJ, Boerman OC. Spatial resolution and sensitivity ofthe Inveon small-animal PET scanner. J Nucl Med. Jan. 2009;50(1):139-47.
Walker, Peter A., et al. “Direct intrathecal implantation of mesenchymal stromal cells leads to enhanced neuroprotection via an NF?B-mediated increase in interleukin-6 production.” Stem cells and development 19.6 (2010): 867-876.
Wang R, Dillon CP, Shi LZ, Milasta S, Carter R, Finkelstein D, McCormick LL, Fitzgerald P, Chi H, Munger J, Green DR. The transcription factor Myc controls metabolic reprogramming upon T lymphocyte activation. Immunity. 2011;35(6):871-82.
Wang, Jiamian, John A. Jansen, and Fang Yang. “Electrospraying: possibilities and challenges of engineering carriers for biomedical applications—a mini review.” Frontiers in Chemistry 7 (2019): 258.
Ward H, Vigues S, Poole S, Bristow AF. The rat interleukin 10 receptor: cloning and sequencing of cDNA coding for the alpha-chain protein sequence, and demonstration by western blotting of expression in the rat brain. Cytokine. 2001;15(5):237-2340.
Wawman, Rebecca Ellen, Helen Bartlett, and Ye Htun Oo. “Regulatory T cell metabolism in the hepatic microenvironment.” Frontiers in immunology 8 (2018): 1889.
Weber et al., “White Paper on Adoptive Cell Therapy for Cancer with Tumor-Infiltrating Lymphocytes: A Report ofthe CTEP Subcommittee on Adoptive Cell Therapy,” Clinical Cancer Research, vol. 17, No. 7, pp. 1664-1673, Apr. 1, 2011.
Weiss RA, Weiss MA, Beasley KL, Munavalli G (2007) Autologous cultured fibroblast injection for facial contour deformities: a prospective, placebo-controlled, Phase III clinical trial. Dermatol Surg 33(3): 263-268.
Widdel, F. 2010. “Theory and measurement of bacterial growth” http://www.mpi-bremen.de/Binaries/Binary13037/Wachstumsversuch.pdf.
Yamada, Noriko, et al. “Thermo?responsive polymeric surfaces; control of attachment and detachment of cultured cells.” Die Makromolekulare Chemie, Rapid Communications 11.11 (1990): 571-576.
Yoshinari, Masao, et al. “Effect of cold plasma-surface modification on surface wettability and initial cell attachment.” International Journal of Biomedical and Biological Engineering 3.10 (2009): 507-511.
Zappasodi et al., “The Effect Of Artificial Antigen-Presenting Cells with Preclustered Anit-CD28/-CD3/LFA-1 Monoclonal Antibodies on the Induction of ex vivo Expansion of Functional Human Antitumor T Cells,” Haematologica, vol. 93, No. 10, pp. 1523-1534, 2008.
Zemmour D, Zilionis R, Kiner E, Klein AM, Mathis D, Benoist C. Publisher Correction: Singlecell gene expression reveals a landscape of regulatory T cell phenotypes shaped by the TCR. Nat Immunol. 2018;19(6):645.
Zeng B, Kwak-Kim J, Liu Y, Liao AH. Treg cells are negatively correlated with increased memory B cells in pre-eclampsia while maintaining suppressive function on autologous B-cell.
Proliferation. Am J Reprod Immunol. 2013;70(6):454-63.
Related Publications (1)
Number Date Country
20200239822 A1 Jul 2020 US
Provisional Applications (2)
Number Date Country
62347012 Jun 2016 US
62347025 Jun 2016 US
Divisions (1)
Number Date Country
Parent 15616876 Jun 2017 US
Child 16845791 US