Embodiments of the present disclosure relate generally to microfluidic devices and methods of using microfluidic devices and, more particularly, to microfluidic devices and methods of using microfluidic devices for capturing particles, such as cells, for observation.
The ability to view and/or analyze the interaction of two or more particles, such as cells, is an important process for developing many treatments. For example, analyzing the interaction of CAR-T cells with cancer cells is an important step in developing immunotherapy regimes. The ability to capture and combine these cells into a defined space, however, presents difficulties.
Prior methods for capturing and combining cells, for example, include manual selection and combination of cells, though these methods can be tedious. Other methods for capturing and combining cells using microfluidic technologies involved many components, such as valves to direct fluid flow. None of the prior device-assisted methods were able to pair different number of two or more cell types in a passive manner, i.e., enabled by the flow of fluid through the device alone. These and other drawbacks exist.
Briefly described, embodiments of the present disclosure relate generally to microfluidic devices and methods of using microfluidic devices. More particularly, the present disclosure provides microfluidic devices and methods of using microfluidic devices for capturing particles, such as cells, for observation.
A first embodiment of the present disclosure provides a device. The device can include a main fluid channel. The device can include a first interaction chamber in fluid communication with the main fluid channel. The device can include a first particle trap extending from a first wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber. The device can include a second particle trap extending from a second wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber. The first particle trap and the second particle trap can be in fluid communication both via the first interaction chamber and via the main fluid channel.
In any of the embodiments described herein, the main fluid channel can have a serpentine shape.
In any of the embodiments described herein, the device can include a first restriction channel positioned between the first particle trap and the first interaction chamber. The first restriction channel can have a first channel cross-section smaller than a second channel cross-section of the first particle trap.
In any of the embodiments described herein, the device can include a second restriction channel positioned between the second particle trap and the first interaction chamber. The second restriction channel can have a third channel cross-section smaller than a fourth channel cross-section of the second particle trap.
In any of the embodiments described herein, at least a portion of the main fluid channel, the first interaction chamber, the first particle trap, the second particle trap, the first restriction channel, and the second restriction channel can be coplanar.
In any of the embodiments described herein, the device can include a third particle trap extending from the first wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber.
In any of the embodiments described herein, the first particle trap and the third particle trap can be parallel and coplanar.
In any of the embodiments described herein, the device can include a first restriction channel positioned between the first particle trap and the first interaction chamber. The first restriction channel can have a first channel cross-section smaller than a second channel cross-section of the first particle trap. The device can include a second restriction channel positioned between the third particle trap and the first interaction chamber. The second restriction channel can have a third channel cross-section smaller than a fourth channel cross-section of the third particle trap.
In any of the embodiments described herein, the first particle trap can be one of a plurality of particle traps extending from the first wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber.
In any of the embodiments described herein, the first particle trap can be one of a plurality of particle traps extending from the second wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber.
In any of the embodiments described herein, at least a portion of the main fluid channel, the first interaction chamber, the first particle trap, and the second particle trap can be coplanar.
In any of the embodiments described herein, the device can include a second interaction chamber in fluid communication with the main fluid channel. The device can include a third particle trap extending from the first wall of the main fluid channel and positioned between the main fluid channel and the second interaction chamber. The third particle trap can be positioned linearly from the first particle trap along the first wall. The device can include a fourth particle trap extending from the second wall of the main fluid channel and positioned between the main fluid channel and the second interaction chamber. The fourth particle trap can be positioned linearly from the second particle trap along the second wall.
In any of the embodiments described herein, at least a portion of the main fluid channel, the first interaction chamber, the first particle trap, the second particle trap, the third particle trap, and the fourth particle trap can be coplanar.
In any of the embodiments described herein, the first interaction chamber can be one of a plurality of interaction chambers, wherein the plurality of interaction chambers comprise at least some interaction chambers having different quantities of particle traps.
In any of the embodiments described herein, the first particle trap can be configured to receive a first particle from the main fluid channel and pass the first particle to the first interaction chamber when fluid is flowing through the main fluid channel in a first direction. The second particle trap can be configured to receive a second particle from the main fluid channel and pass the second particle to the first interaction chamber when fluid is flowing through the main fluid channel in a second direction.
In any of the embodiments described herein, the first particle trap can be configured to receive a first particle from the main fluid channel and pass the first particle to the first interaction chamber when fluid is flowing through the main fluid channel in a first direction. The second particle trap is blocked by the first particle when the fluid is flowing in the first direction.
In any of the embodiments described herein, the device can include a chamber ramp positioned within the first interaction chamber proximate the second particle trap and configured to retain a particle within the first interaction chamber.
Another embodiment of the present disclosure provides a method for loading cells into the devices described herein. The method can include delivering a first fluid comprising a first cell to the main fluid channel. The method can include routing the first fluid in a first direction through the main fluid channel such that the first cell is captured in the first particle trap and passes to the first interaction chamber. The method can include delivering a second fluid comprising a second cell to the main fluid channel. The method can include routing the second fluid in a second direction through the main fluid channel such that the second cell is captured in the second particle trap and passes to the first interaction chamber.
Another embodiment of the present disclosure provides a method for manufacturing the device(s) described herein. The method can include molding the main fluid channel, the first particle trap, the second particle trap, and the first interaction chamber into a planar surface of a substrate.
Another embodiment of the present disclosure provides a method for manufacturing the device(s) described herein. The method can include etching the main fluid channel, the first particle trap, the second particle trap, and the first interaction chamber into a planar surface of a substrate.
Another embodiment of the present disclosure provides a device. The device can include a main fluid channel having a serpentine shape. The main fluid channel can include a first opening and a second opening, wherein the first opening acts both as a first fluid inlet and a first fluid outlet. The second opening can act both as a second fluid inlet and a second fluid outlet. The device can include a first interaction chamber in fluid communication with the main fluid channel. The device can include a first particle trap extending from a first wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber. The device can include a first restriction channel positioned between the first particle trap and the first interaction chamber. The device can include a second particle trap extending from a second wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber. The device can include a second restriction channel positioned between the second particle trap and the first interaction chamber. The first particle trap and the second particle trap can be in fluid communication both via the first interaction chamber and via the main fluid channel.
In any of the embodiments described herein, at least a portion of the main fluid channel, the first interaction chamber, the first particle trap, the second particle trap, the first restriction channel, and the second restriction channel can be coplanar.
In any of the embodiments described herein, the first restriction channel can have a first channel cross-section smaller than a second channel cross-section of the first particle trap. The second restriction channel can have a third channel cross-section smaller than a fourth channel cross-section of the second particle trap.
In any of the embodiments described herein, the first particle trap can be configured to receive a first particle from the main fluid channel and pass the first particle to the first interaction chamber through the first restriction channel when fluid is flowing through the main fluid channel in a first direction. The second particle trap can be configured to receive a second particle from the main fluid channel and pass the second particle to the first interaction chamber through the second restriction channel when fluid is flowing through the main fluid channel in a second direction.
In any of the embodiments described herein, the device can include a second interaction chamber in fluid communication with the main fluid channel. The device can include a third particle trap extending from the first wall of the main fluid channel and positioned between the main fluid channel and the second interaction chamber. The third particle trap can be positioned linearly from the first particle trap along the first wall. The device can include a third restriction channel positioned between the third particle trap and the second interaction chamber.
In any of the embodiments described herein, the device can include a fourth particle trap extending from the second wall of the main fluid channel and positioned between the main fluid channel and the second interaction chamber. The fourth particle trap can be positioned linearly from the second particle trap along the second wall. The device can include a fourth restriction channel positioned between the fourth particle trap and the second interaction chamber.
In any of the embodiments described herein, the device can include a fifth particle trap extending from the first wall of the main fluid channel and positioned between the main fluid channel and the second interaction chamber, the fifth particle trap being positioned linearly from the first particle trap and the third particle trap along the first wall. The device can include a fifth restriction channel positioned between the fifth particle trap and the second interaction chamber.
In any of the embodiments described herein, the device can include a third particle trap extending from the first wall of the main fluid channel and positioned between the main fluid channel and the first interaction chamber. The device can include a third restriction channel positioned between the third particle trap and the first interaction chamber. A first channel cross-section of the first particle trap can be larger than a second channel cross-section of the third particle trap.
In any of the embodiments described herein, the first particle trap can be configured to trap larger cells within a fluid delivered to the first opening than the third particle trap.
Another embodiment of the present disclosure provides a method for loading cells into the device(s) described herein. The method can include delivering a first fluid comprising a first cell to the first opening. The method can include routing the first fluid in a first direction through the main fluid channel such that the first cell is captured in the first particle trap. The method can include increasing a first pressure of the first fluid, causing the first cell to pass through the first restriction channel and into the first interaction chamber. The method can include delivering a second fluid comprising a second cell to the second opening. The method can include routing the second fluid in a second direction through the main fluid channel such that the second cell is captured in the second particle trap. The method can include increasing a second pressure of the second fluid, causing the second cell to pass through the second restriction channel and into the first interaction chamber.
In any of the embodiments described herein, the method can include placing a slide onto a planar surface covering the main fluid channel, the first particle trap, the first restriction channel, the second particle trap, the second restriction channel, and the first interaction chamber. The method can include orienting the device such that the slide is placed below the device. The method can include performing an analysis of the first cell and second cell through a substrate of the device comprising the first interaction chamber.
Another embodiment of the present disclosure provides a method for manufacturing the device(s) described herein. The method can include molding the main fluid channel, the first particle trap, the first restriction channel, the second particle trap, the second restriction channel, and the first interaction chamber into a planar surface of a substrate.
Another embodiment of the present disclosure provides a method for manufacturing the device(s) described herein. The method can include etching the main fluid channel, the first particle trap, the first restriction channel, the second particle trap, the second restriction channel, and the first interaction chamber into a planar surface of a substrate.
Another embodiment of the present disclosure provides a device. The device can include a main fluid channel having a serpentine shape. The device can include a plurality of interaction chambers disposed along a length of the main fluid channel. At least a first interaction chamber of the plurality of interaction chambers can include a first trap in fluid communication with the main fluid channel at one end and the first interaction chamber at another end. At least the first interaction chamber of the plurality of interaction chambers can include a first plurality of particle outlet traps in fluid communication with the first interaction chamber at one end and the main fluid channel at another end. The main fluid channel can provide a fluid flow path along the serpentine shape such that the first plurality of particle outlet traps is positioned along the serpentine shape of the main fluid channel downstream from the first trap along the fluid flow path.
In any of the embodiments described herein, least a portion of the main fluid channel, the plurality of interaction chambers, the first trap, and the first plurality of particle outlet traps are coplanar.
In any of the embodiments described herein, the plurality of interaction chambers can include a second interaction chamber. The second interaction chamber can include a second trap in fluid communication with the main fluid channel at one end and the second interaction chamber at another end. The second interaction chamber can include a second plurality of particle outlet traps in fluid communication with the second interaction chamber at one end and the main fluid channel at another end.
In any of the embodiments described herein, the second plurality of particle outlet traps can have fewer traps than the first plurality of particle outlet traps.
In any of the embodiments described herein, the first plurality of particle outlet traps can be configured to be blocked by a plurality of cells within the first interaction chamber, thereby stopping flow through the first trap.
Another embodiment of the present disclosure provides a method for loading cells into the device(s) described herein. The method can include delivering a fluid comprising a plurality of cells into an inlet of the main fluid channel. The method can include advancing the fluid past the first trap such that at least a portion of the plurality of cells enters the first interaction chamber via the firs trap. At least a portion of the plurality of cells can block the first plurality of particle outlet traps and prohibits further flow into the first interaction chamber.
Another embodiment of the present disclosure provides a method for loading cells into the device(s) described herein. The method can include delivering a first fluid comprising a first cell into a first opening of the device. The method can include advancing the first fluid along a main fluid channel in a first direction. The method can include capturing the first cell in a first particle trap along the main fluid channel. The method can include increasing a first pressure of the first fluid, causing the first cell to pass through a first restriction channel and into a first interaction chamber, wherein the first restriction channel can have a first channel cross-section smaller than a second channel cross-section of the first particle trap.
In any of the embodiments described herein, the method can include delivering a second fluid comprising a second cell into a second opening of the device. The method can include advancing the second fluid along a main fluid channel in a second direction. The method can include capturing the second cell in a second particle trap along the main fluid channel. The method can include increasing a second pressure of the second fluid, causing the second cell to pass through a second restriction channel and into the first interaction chamber, wherein the second restriction channel can have a third channel cross-section smaller than a fourth channel cross-section of the second particle trap.
In any of the embodiments described herein, the method can include placing a slide onto a planar surface covering the main fluid channel, the first particle trap, the first restriction channel, the second particle trap, the second restriction channel, and the first interaction chamber. The method can include orienting the device such that the slide is placed below the device. The method can include performing an analysis of the first cell and second cell through a substrate of the device comprising the first interaction chamber.
In any of the embodiments described herein, the method can include delivering a third fluid comprising a third cell into the first opening of the device. The method can include advancing the third fluid along the main fluid channel in the first direction. The method can include capturing the third cell in a third particle trap along the main fluid channel. The method can include increasing a third pressure of the third fluid, causing the third cell to pass through a third restriction channel and into the first interaction chamber. The third restriction channel can have a third channel cross-section smaller than a fourth channel cross-section of the third particle trap.
In any of the embodiments described herein, the fourth channel cross-section of the third particle trap is a different size than the second channel cross-section of the first particle trap.
In any of the embodiments described herein, the first fluid further can include a second cell. The method can further include capturing the second cell in a second particle trap along the main fluid channel. Increasing the first pressure can cause the second cell to pass through a second restriction channel and into the first interaction chamber. The second restriction channel can have a third channel cross-section smaller than a fourth channel cross-section of the second particle trap. The fourth channel cross-section of the second particle trap can be a different size than the second channel cross-section of the first particle trap.
In any of the embodiments described herein, at least a portion of the main fluid channel, the first interaction chamber, the first particle trap, and the first restriction channel can be coplanar.
Another embodiment of the present disclosure provides a method for loading cells into a device. The method can include delivering a first fluid comprising a plurality of cells into a first opening of the device. The method can include advancing the first fluid along a main fluid channel in a first direction. The method can include capturing at least a first portion of the plurality of cells into a first interaction chamber via a first particle trap, causing a first particle outlet trap in fluid communication with the first interaction chamber to be blocked by the at least a first portion of the plurality of cells and redirecting the first fluid past the first particle trap. The method can include capturing at least a second portion of the plurality of cells into a second interaction chamber via a second particle trap.
In any of the embodiments described herein, the first portion of the plurality of cells can further block a second particle outlet trap in fluid communication with the first interaction chamber.
In any of the embodiments described herein, the second interaction chamber can have a different quantity of particle outlet traps than the first interaction chamber, thereby requiring a different quantity of cells to block flow into the second interaction chamber.
These and other aspects of the present disclosure are described in the Detailed Description below and the accompanying figures. Other aspects and features of embodiments of the present disclosure will become apparent to those of ordinary skill in the art upon reviewing the following description of specific, example embodiments of the present disclosure in concert with the figures. While features of the present disclosure may be discussed relative to certain embodiments and figures, all embodiments of the present disclosure can include one or more of the features discussed herein. Further, while one or more embodiments may be discussed as having certain advantageous features, one or more of such features may also be used with the various embodiments of the disclosure discussed herein. In similar fashion, while example embodiments may be discussed below as device, system, or method embodiments, it is to be understood that such example embodiments can be implemented in various devices, systems, and methods of the present disclosure.
Reference will now be made to the accompanying figures and diagrams, which are not necessarily drawn to scale, and wherein:
Although certain embodiments of the disclosure are explained in detail, it is to be understood that other embodiments are contemplated. Accordingly, it is not intended that the disclosure is limited in its scope to the details of construction and arrangement of components set forth in the following description or illustrated in the drawings. Other embodiments of the disclosure are capable of being practiced or carried out in various ways. Also, in describing the embodiments, specific terminology will be resorted to for the sake of clarity. It is intended that each term contemplates its broadest meaning as understood by those skilled in the art and includes all technical equivalents which operate in a similar manner to accomplish a similar purpose.
It should also be noted that, as used in the specification and the appended claims, the singular forms “a,” “an” and “the” include plural references unless the context clearly dictates otherwise. References to a composition containing “a” constituent is intended to include other constituents in addition to the one named.
Ranges may be expressed herein as from “about” or “approximately” or “substantially” one particular value and/or to “about” or “approximately” or “substantially” another particular value. When such a range is expressed, other exemplary embodiments include from the one particular value and/or to the other particular value.
Herein, the use of terms such as “having,” “has,” “including,” or “includes” are open-ended and are intended to have the same meaning as terms such as “comprising” or “comprises” and not preclude the presence of other structure, material, or acts. Similarly, though the use of terms such as “can” or “may” are intended to be open-ended and to reflect that structure, material, or acts are not necessary, the failure to use such terms is not intended to reflect that structure, material, or acts are essential. To the extent that structure, material, or acts are presently considered to be essential, they are identified as such.
It is also to be understood that the mention of one or more method steps does not preclude the presence of additional method steps or intervening method steps between those steps expressly identified. Moreover, although the term “step” may be used herein to connote different aspects of methods employed, the term should not be interpreted as implying any particular order among or between various steps herein disclosed unless and except when the order of individual steps is explicitly required.
The components described hereinafter as making up various elements of the disclosure are intended to be illustrative and not restrictive. Many suitable components that would perform the same or similar functions as the components described herein are intended to be embraced within the scope of the disclosure. Such other components not described herein can include, but are not limited to, for example, similar components that are developed after development of the presently disclosed subject matter. Additionally, the components described herein may apply to any other component within the disclosure. Merely discussing a feature or component in relation to one embodiment does not preclude the feature or component from being used or associated with another embodiment.
To facilitate an understanding of the principles and features of the disclosure, various illustrative embodiments are explained below. In particular, the presently disclosed subject matter is described in the context of being a microfluidic device for capturing cells. The present disclosure, however, is not so limited and can be applicable in other contexts. For example and not limitation, some embodiments of the present disclosure may improve other fluid delivery systems. Additionally, some embodiments of the present disclosure may improve culture techniques for larger organisms, such as cell aggregates, large multi-cellular organisms, organs, and the like. These embodiments are contemplated within the scope of the present disclosure. Accordingly, when the present disclosure is described in the context of a microfluidic device for capturing cells, it will be understood that other embodiments can take the place of those referred to.
In some embodiments, the present disclosure describes a microfluidic device for capturing cells in one or more interaction chambers. The cells can be captured in a number of ways. In one example, the cells can be added to or included in a fluid flowing in a first direction through a main channel that is in fluid communication with traps on one end of the interaction chamber. Other cells can be added to or included in a fluid flowing in a second direction through the main channel that is in fluid communication with traps at another end of the interaction chamber. As used herein, two elements are in fluid communication with each other, if during normal operation, fluid from one of the elements can pass to the other element. For example, a first interaction chamber can be in fluid communication with a main fluid channel if fluid can pass freely from the main fluid channel to the interaction chamber and vice versa. This is true even if the fluid must also flow through another component that is also in fluid communication with the other components, e.g., a restriction channel and/or a particle trap can fluidly connect the main fluid channel to the interaction chamber so that the main fluid channel and interaction chamber are in fluid communication.
The present disclosure provides devices and methods of use for capturing and pairing different numbers and types of microscale particles. The disclosure provides a microfluidic device that can capture particles in a first set of traps, then can transfer particles to an interaction chamber. This can then be done for a second type of particle using a second set of traps connected to the same interaction chamber. In one embodiment of this disclosure, the device(s) can be applied to studying interactions between different types of human cells. Using the devices and methods, two or more different types of cells can be loaded into the interaction chambers, with defined numbers of each cell type per chamber. This allows for observation of interaction between the cell types.
Various devices and methods are disclosed for capturing and analyzing cells within a microfluidic device, and exemplary embodiments of the devices and methods will now be described with reference to the accompanying figures.
The device 100 can include a main fluid channel 102 that has a first opening 104 at a first end of the channel and a second opening 106 at a second end of the channel. As will be described in greater detail below, the first opening 104 can act as a fluid inlet when fluid is flowing through the main fluid channel 102 in a first direction and a fluid outlet when the fluid is reversed to a second direction; the second opening 106 can act as a fluid outlet when fluid is flowing through the main fluid channel 102 in the first direction and act as a fluid inlet when the fluid flows in the second, reverse direction. The main fluid channel 102 can have a serpentine shape, as shown, such that fluid traps can be positioned on opposite sides of the walls of the main fluid channel, as will be described with reference to
Referring again to
In some examples, the device 100 can include restriction channels that have a smaller cross-section than the respective traps. For example, the device 100 can include first restriction channel 112 positioned between the first particle trap 110 and the interaction chamber 108; the first restriction channel 112 can have a first channel cross-section 130 that is smaller than a second channel cross-section 132 of the first particle trap 110. The first restriction channel 112 can enable the first trap 110 to hold a particle until pressure is increased to the fluid to pass the particle through the narrower first restriction channel 112. For example, once a microparticle enters an outer trap (e.g., a first particle trap 110 in this example shown in
It is contemplated that the first side of the interaction chamber 108 can have any number of first particle traps 110, e.g., one, two, three, four, five, or more particle traps. When the first side of the interaction chamber 108 has more than one trap, each of the particle traps on that side of the interaction chamber 108 can have the same channel cross-section dimensions, as shown. In some examples, the channel cross-section of the more than one particle traps of the first particle traps 110 on the first side of the interaction chamber 108 can vary in size, such that varying sized cells/particles can be loaded into the same side of the interaction chamber 108 via different traps. Further, it is contemplated that the other side of the interaction chamber 108 can have more than one particle trap 114, e.g., one, two, three, four, five, or more particle traps.
It is to be understood that the embodiments and claims disclosed herein are not limited in their application to the details of construction and arrangement of the components set forth in the description and illustrated in the drawings. Rather, the description and the drawings provide examples of the embodiments envisioned. The embodiments and claims disclosed herein are further capable of other embodiments and of being practiced and carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein are for the purposes of description and should not be regarded as limiting the claims.
Accordingly, those skilled in the art will appreciate that the conception upon which the application and claims are based may be readily utilized as a basis for the design of other structures, methods, and systems for carrying out the several purposes of the embodiments and claims presented in this application. It is important, therefore, that the claims be regarded as including such equivalent constructions.
Furthermore, the purpose of the foregoing Abstract is to enable the United States Patent and Trademark Office, other organizations, and the public generally, and especially including the practitioners in the art who are not familiar with patent and legal terms or phraseology, to determine quickly from a cursory inspection the nature and essence of the technical disclosure of the application. The Abstract is neither intended to define the claims of the application, nor is it intended to be limiting to the scope of the claims in any way. Instead, it is intended that the disclosed technology is defined by the claims appended hereto.
This application claims priority to U.S. Provisional Patent Application No. 63/084,245, filed 28 Sep. 2020, which is hereby incorporated by reference herein in its entirety as if fully set forth below.
This invention was made with government support under. Grant No. EEC-1648035 awarded by the National Science Foundation. The government has certain rights in the invention.
Filing Document | Filing Date | Country | Kind |
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PCT/US2021/052181 | 9/27/2021 | WO |
Number | Date | Country | |
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63084245 | Sep 2020 | US |