The present invention relates to a microfluidic cartridge comprising a built-in sampling device and a microfluidic network device for delivery of reagents to the sampling device. The invention also relates to a biological sample processing system comprising the microfluidic cartridge and a microfluidic cartridge operating system. The present invention is particularly useful for sequential delivery of reagents to the sampling device.
Cartridge-based reagent delivery systems and methods with different actuation schemes and configurations are known. However, many are not versatile as they are suitable only for very specific applications and present different drawbacks.
WO2007093939 discloses a microfluidic cartridge for molecular diagnostic applications with membrane-based actuation for fluid transport. The cartridge requires small volumes of reagents to analyze samples. The cartridge however is not configured for receiving a slide containing samples or to allow low dead volume operation.
US2011003330 discloses a microfluidic device adapted for facilitating cytometry analysis of particles flowing therethrough. The microfluidic device may comprise a chip comprising a plurality of chambers and be designed to sort a predetermined amount of cells into each chamber. The configuration of the device however does not prevent the occurrence of dead volumes.
US2005013732 discloses a microfluidic device for the manipulation, amplification and analysis of fluid samples including, for example, blood platelet bacteria assays and antiglobulin testing. The microfluidic device is operably connected to a cartridge manifold for controlling pumping of fluids and for providing vacuum and pressurized air for cartridge valve actuation. However, the configuration of the device does not prevent the occurrence of cross-contamination which may be critical in applications requiring high specificity and sensitivity.
US2012266986 discloses a microfluidic cartridge for placement onto a parallel pneumatic interface plate of a pneumatic instrument. The cartridge includes a three dimensional fluid channel, in which a fluid is to be transported, and a flexible membrane that is part of an outer surface of the cartridge. The flexible membrane is pneumatically deflectable from a ground state perpendicular to the plane of the flexible membrane in two directions when the cartridge is placed onto the parallel pneumatic interface plate. The configuration of the cartridge has also the disadvantage of being prone to cross-contamination and dead volumes.
It is an object of this invention to provide a microfluidic cartridge allowing sequential multiplex processing of a biological sample fixed on a support with a sequence of reagents that generates accurate and reliable results yet is economical to produce and to use.
It is a specific object of this invention to provide a microfluidic cartridge allowing sequential multiplex processing of a biological tissue sample immobilized on a support such as a microscope slide, with a sequence of reagents that generates accurate and reliable results yet is economical to produce and to use.
It is advantageous to provide a microfluidic cartridge that is compact.
It is advantageous to provide a microfluidic cartridge that reduces the risk of cross contamination and problems associated with dead volumes in microfluidic networks.
It is advantageous to provide a microfluidic cartridge that is versatile and can be used or adapted for different applications.
Another object of this invention is to provide a biological sample processing system comprising a microfluidic cartridge and a micro cartridge operating system for automated processing of a sample of interest fixed on a support.
It is advantageous to provide a biological sample processing system capable of analyzing automatically different type of samples fixed on a support across a wide range of applications.
Objects of the invention have been achieved by providing a microfluidic cartridge according to claim 1.
Objects of the invention have been achieved by providing a biological sample processing system according to claim 16.
Disclosed herein is a microfluidic cartridge comprising a sampling device having a sealing ring arranged to form a microfluidic chamber when a support containing a biological sample fixed thereon is brought into contact with the sealing ring, and a microfluidic network device configured to supply reagents to the microfluidic chamber. The sampling device comprises inlet and outlet distribution networks in fluid communication with the microfluidic chamber and a slide holder to guide and position said support containing a biological sample on the sampling device. The microfluidic network device comprises a plurality of reagent inlet channels fluidly connectable to reagent sources, at least one reagent outlet channel fluidly connected to the sampling device inlet distribution network, and a plurality of valves operable to selectively connect the inlet channels to the at least one outlet channel, wherein the sampling device and microfluidic network device are formed on a common microfluidic support as a single part. The support may for instance be in the form of a microscope slide for positioning under a microscope in the viewing field of a camera or other optical detection system for analysis of the sample reacted with the reagents.
In an embodiment, the microfluidic cartridge further comprises a reagent reservoir body (formed in the microfluidic support containing a plurality of wells configured to be filled with reagents, wherein each well is fluidly connected to a corresponding inlet channel.
In an embodiment, the sampling device comprises a first arrangement of reagents distribution comprising inlet and outlet distribution networks arranged on two opposite sides of the microfluidic chamber and configured to direct flow of reagent(s) inside the microfluidic chamber along a first direction, and a second arrangement of reagents distribution comprising inlet and outlet distribution networks arranged on two other opposite sides of the microfluidic chamber and configured to direct flow of reagent(s) inside the microfluidic chamber in a second direction transverse to the first direction.
In an embodiment, the microfluidic support comprises an integrally formed plastic molded microfluidic board in which the inlet channels, outlet channel, and sampling device inlet and outlet distribution channels are formed.
In an embodiment, at least one reagent outlet channel is a common single outlet channel connected to a plurality of said reagent inlet channels, said outlet channel comprising valve portions and intermediate portions therebetween, wherein the valve portions are adjacent to outlet end portions of the inlet channels and the intermediate portions are fluidly connected to each other in series, and wherein each of said plurality of valves interconnect an outlet end portion of each inlet channel to a corresponding valve portion of the common reagent outlet channel, wherein each valve is switchable between a valve closed position in which fluid communication between a corresponding inlet channel and the reagent common outlet channel is closed, and a valve open position in which fluid communication between said inlet channel and the reagent common outlet channel is open.
In an embodiment, the common reagent outlet channel extends generally in a direction transverse to an outlet end portion of the inlet channels.
In an embodiment, the reagent common outlet channel comprises a first and a second main part which are spaced apart and extend in a direction transverse to an outlet end portion of the inlet channels.
In an embodiment, the microfluidic network device further comprises an external reagent inlet section comprising several reagent inlet couplings for fluidly coupling one or more external reagent inlet channels to external reagent sources.
In an embodiment, the external reagent inlet section is adjacent to a valve section comprising the plurality of valves.
In an embodiment, the valve section is positioned between the external reagent inlet section and the onboard reagent reservoir body.
In an embodiment, the sampling device is positioned adjacent a first end of the microfluidic support.
In an embodiment, the onboard reagent reservoir body is positioned adjacent a second end of the microfluidic support opposite the first end.
In an embodiment, the microfluidic network device further comprises a cartridge outlet, a chamber outlet channel connected to the outlet distribution network of the sampling device, and at least two valves configured to fluidly interconnect respectively the chamber outlet channel or the reagent common outlet channel to the cartridge outlet in order to discharge the reagent residues coming from the microfluidic chamber of the sampling device during sample processing steps or to discharge washing solutions circulating through the reagent common outlet channel during a washing step.
In an embodiment, the microfluidic network device may be at least partly embedded inside the microfluidic board on a first side thereof, while the sealing ring of the sampling device and the onboard reservoir body are mounted on a second side of said microfluidic board opposite the first side.
In an embodiment, a valve section comprises the plurality of valves, the valve section comprising a deflectable membrane layer disposed on the microfluidic board.
Also disclosed herein, is a microbiological sample processing system comprising a microfluidic cartridge as set forth in any of the above embodiments, and a microfluidic cartridge operating system comprising a cartridge receptacle receiving the microfluidic cartridge, a valve interfacing assembly and a reservoir body interfacing assembly, wherein the valve interfacing assembly is operable to selectively actuate each valve to create a fluid communication between a corresponding inlet channel and the reagent outlet channel.
In an embodiment, the reservoir body interfacing assembly is operable to induce flow of a reagent from one or more wells into the microfluidic chamber of the sampling device.
In an embodiment, the reservoir body interfacing assembly comprises a delivery manifold head displaceable relative to the cartridge receptacle from a non-operating configuration to an operating configuration, in which the bottom face of the manifold head lies against the top face of the reservoir body, wherein the manifold head comprises a plurality of actuation lines disposed to be aligned with the plurality of wells.
In an embodiment, the valve interfacing assembly and the body reservoir interfacing assembly are in fluid communication with an external pressure source.
In an embodiment, the valve interfacing assembly may comprise a pressure delivery manifold head displaceable relative to the cartridge receptacle from a non-operating configuration to an operating configuration in which the bottom face of the manifold head lies against the valve section or multiple valve sections of the microfluidic network device, wherein the manifold head comprises a plurality of actuation chambers and corresponding actuation lines in fluid communication with each actuation chamber, the plurality of actuation chambers being disposed such that each chamber encloses the valve inlet and outlet orifices of the corresponding valve, wherein the pressure delivery manifold head is operable to selectively create a negative pressure inside one or more actuation chambers.
In an embodiment, a sealing gasket may be arranged against the bottom face of said pressure delivery manifold head, configured to surround each outlet of the actuation lines to ensure that the manifold head of the second fluidic interfacing assembly is sealingly fitted against the top face of reservoir body when the processing system is in an operating configuration.
In an embodiment, the microfluidic network device may further comprise an external reagent inlet section comprising several reagent inlet couplings for coupling one or more inlet channels to external reagent sources, and wherein the microfluidic cartridge operating system further comprises an external reagent interfacing assembly comprises a reagent delivery manifold head operably connected to external sources of reagents, said reagent delivery manifold head comprising a plurality of reagent delivery lines disposed to be sealingly fitted with the corresponding reagent inlet couplings.
Further objects and advantageous features of the invention will be apparent from the claims, from the detailed description, and annexed drawings, in which:
The use of the term “reagent” in the present application is intended to cover a variety of liquids or gases that are used in the microfluidic cartridge for various applications. Reagents may for instance comprise antibodies, imaging probes, washing buffers, chemical reagents, water, saline solutions and other liquids used in the application concerned. Sample liquids are intended to mean liquids that contain samples on which testing is applied, such samples for instance containing biological tissues or other microbiological matter, pollutants, or other substances on which a test on the properties thereof is intended to be carried out by a sampling device downstream of the microfluidic network device.
Sample types fixed (immobilized) on a sample support for use with the microfluidic cartridge include those fixed by cross-linking agents such as whole tissue samples and surgical or needle biopsies of different tissue types including for example breast tissue, lung tissue, tonsils, lymph node tissue, prostate tissue, gut tissue, liver tissue or kidney tissue. The microfluidic cartridge may also be used with tumor samples such as biopsies from breast cancer, lung cancer, prostate cancer, ovarian cancer, colorectal cancer and melanoma or with sample of fluidic nature such as blood or cell smears samples or with samples of microbial nature such as bacteria. The microfluidic cartridge may further be used with samples that are fixed by cross-linking reagents cut into thin sections and subsequently applied to a support/slide.
Referring now to the figures, in particular
The volume of each well of the reservoir body ranges preferably from 50 μl to 5 ml, for instance around 200 μl. Fluidic actuation of reagents may be achieved by pressurizing either each well separately or a plurality of wells simultaneously via one or more pressurized sources.
In an embodiment, the reagents supply may be provided on board the cartridge by the plurality of wells 29a of the reservoir body 29.
In another embodiment, the reagents supply may be provided by external reagent sources connected via tubing to reagent inlet couplings of the microfluidic network device.
In another embodiment the reagents supply may comprise a combination of reagents on board the cartridge in wells 29a of the reservoir body 29 and of external reagent sources connected via tubing to reagent inlet couplings of the microfluidic network device.
In an advantageous embodiment illustrated in
The microfluidic network device 13 comprises a valve section 14 comprising a plurality of valves 25 (
In an embodiment, the valve section 14 comprises a deflectable membrane layer 14a disposed on the microfluidic board 12. The microfluidic board 12 and deflectable membrane layer 14a may have essentially the same shape, for instance a substantially rectangular shape, or any other shape that optimizes the layout of the microfluidic network device, sampling device and reagent well/reagent connection sections for the intended biological sampling application.
The microfluidic network device 13 comprises a plurality of inlet channels 18 fluidly connected to respective wells 29a of the reservoir body 29 of the cartridge 10. Each inlet channel 18 comprises an inlet end 19 and an outlet end 20 interconnected fluidly by an intermediate channel section 21.
In a preferred embodiment, the microfluidic network device 13, as best illustrated in
Referring to
In an embodiment, the deflectable member 25a may comprise an elastic membrane, for instance in the form or a sheet of elastically deformable material.
In a variant, the deflectable member 25a may comprise a spring mounted valve plate, plunger or ball (not shown), for example comprising a compression spring that pushes the plate, plunger or ball against the edges of the outlet and inlet orifices 26, 27.
It may be noted that the notion of valve inlet orifice 26 and valve outlet orifice 27 may comprise a single continuous orifice as illustrated in
In an embodiment, an outermost inlet channel 18a (
The microfluidic network device 22 may therefore optionally comprise an outlet connected to the sampling device 30 as well as one or more purge or waste lines for expulsing liquid without going through the sampling device 30 or other device downstream of the device outlet, or for initial priming of the device during elimination of bubbles within the microfluidic network device.
In advantageous embodiments, the intermediate channel sections joining the inlet end 19 to the outlet end 20 of the inlet channels 18, may be provided with flow control portions 21. Flow control portions 21 may for instance comprise resistive channels that may be formed for instance by a serpentine channel configuration that slow the flow of fluid through the inlet channels.
The sampling device may further comprise suction holes 63 (see
In an embodiment, the microfluidic cartridge 10 as shown in
According to this embodiment, the various channels (e.g. inlet channels, reagent common outlet channel) of the microfluidic network device 13 and the channels of inlet and outlet distribution networks of the sampling device 30 of the microfluidic cartridge are grooved within the microfluidic board 12. The grooves may be produced in a surface of the microfluidic board 12 by additive (3D printing, material deposition techniques, molding, injection molding) or subtractive (machining) manufacturing techniques. For instance the microfluidic board may advantageously be an integrally formed plastic part in which the inlet channels, reagent common channel, and sampling device inlet and outlet distribution channels are formed by a molding die. The microfluidic cartridge may comprise a base layer plate or film covering the surface of the microfluidic board 12 over the grooved channels (e.g. inlet channels, reagent common outlet channel) of the microfluidic network device 13 in order to sealingly form the channels of the cartridge 10. The base layer may be welded, bonded or otherwise fixed against the board. The channels may also be formed integrally within a monolithic board by an additive manufacturing process.
In an embodiment (not shown), four distribution networks can be arranged according to a configuration using flow-directing valves on the cartridge, where the sampling device comprises three inlet distribution networks used to introduce reagents to the microfluidic chamber and one outlet distribution network used for collecting fluids from the microfluidic chamber 31.
Referring to
In an embodiment, the valve interfacing assembly comprises a pressure delivery manifold head 45 displaceable relative to the cartridge receptacle 60 from a non-operating configuration to an operating configuration in which the bottom face of the manifold head 45 lies against the valve section 14 of the microfluidic network device 13 (
In a variant, the microfluidic operating system may control the valves by other means, for instance by electromagnetic, piezoelectric, hydraulic means that act on the deflectable member, for instance to press on the deflectable member to close the valve, or to release or to lift up the deflectable member, to open the valve.
In an embodiment, the reservoir body interfacing assembly comprises a pressure delivery manifold head 50 (
In an embodiment, the microfluidic cartridge operating system of the biological sample processing system further comprises an external reagent interfacing assembly comprising a reagent delivery manifold head 55 operably connected to external sources of reagents. As shown in
The microfluidic cartridge operating system also comprises a clamping actuator 41 configured to apply a clamping force against the sample support (e.g. a standard microscope slide) to form an airtight microfluidic chamber for sample processing.
In an embodiment, the cartridge receptacle 60 receiving the microfluidic cartridge 10 may be actuated in a vertical direction, for example by a piston driven mechanism, against the clamping actuator 41, the pressure delivery manifold heads 45, 50, and the reagent delivery manifold head 55. Biased elements, for example compression springs 42, 43, 44, are operably coupled, at one end, to respective manifold heads 45, 50, 55, and, at the other end, to a support. These compression springs 42, 43, 44 may be preloaded according to a preset value by adjusting the position of the manifold heads. The force applied by each manifold head against the corresponding sections of the microfluidic cartridge 10 may therefore be fine-tuned by adjusting the force applied by the piston driven mechanism when the microfluidic cartridge 10 is in contact with the different manifold heads and the force applied by the compression springs of each manifold head.
Number | Date | Country | Kind |
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17193351.8 | Sep 2017 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/075299 | 9/19/2018 | WO | 00 |