Microfluidic flow cell assemblies for imaging and method of use

US9080941B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9080941-B2
Application numberUS-201414277503-A
CountryUS
Kind codeB2
Filing dateMay 14, 2014
Priority dateApr 27, 2012
Publication dateJul 14, 2015
Grant dateJul 14, 2015

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A microfluidic flow cell subassembly, which may be assembled into a flow cell having fluidic connections outside of the main substrate, is described for encapsulating a sample to allow for subsequent controlled delivery of reagents to the sample, such as multiplexed in situ biomarker staining and analysis. As configured, the subassembly comprises a substrate layer forms a flexible optically transparent lid which is capable of bending in either direction to alter the internal dimensions of the subassembly. Methods of use are also disclosed.

First claim

Opening claim text (preview).

What is claimed is: 1. A microfluidic subassembly comprising: a stacked planar assembly comprising; an adherent layer; a transparent substrate layer; a gasket layer; and wherein each layer is adhered to one another and the adherent layer and the gasket layer extend beyond the extents of the substrate layer; and at least one fluidic port wherein said port is positioned outside the boundaries of the substrate layer; and where the substrate layer forms a flexible transparent lid capable of bending in either direction to alter the internal dimensions of the subassembly. 2. The subassembly of claim 1 where the transparent substrate layer comprises glass or plastic or a combination thereof. 3. The subassembly of claim 2 where the flexible transparent lid is configured to deflect in a range of plus or minus approximately 200 μm from its center point. 4. The subassembly of claim 3 wherein the flexible transparent lid is configured to deflect in a range of approximately −50 to +100 μm. 5. The subassembly of claim 3 wherein the flexible transparent lid is configured to deflect in a range of approximately −20 to +50 μm. 6. The subassembly of claim 1 where the internal dimensions has a volume capacity in the range of 1 μL to 1000 μL. 7. The subassembly of claim 6 wherein the volume capacity is in the range of 25 μL to 250 μL. 8. The subassembly of claim 1 wherein the fluidic port is a thin film fluidic connector where said connector comprises at least one microfluidic channel in fluid connection with the stacked planar assembly and positioned outside the boundaries of the substrate layer. 9. The subassembly of claim 8 wherein the thin film fluidic connector is connected to the gasket layer. 10. A microfluidic flow cell comprising: a microfluidic subassembly comprising: a stacked planar assembly comprising; an adherent layer; a transparent substrate layer; and a gasket layer; where each layer is adhered to one another and configured such that the adherent layer and the gasket layer extend beyond the extents of the substrate layer; at least one fluidic port wherein said port is positioned outside the boundaries of the substrate layer; and a solid support adhered to the microfluidic flow cell subassembly; where the substrate layer forms a flexible transparent lid configured to bend towards or away from the solid support by applying negative or positive pressure respectively. 11. The flow cell of claim 10 where the transparent substrate layer comprises glass or plastic or a combination thereof. 12. The flow cell of claim 11 where the flexible transparent lid is configured to deflect in a range of plus or minus approximately 200 μm from its center point. 13. The flow cell of claim 12 wherein the flexible transparent lid is configured to deflect in a range of approximately −50 to +100 μm. 14. The flow cell of claim 12 wherein the flexible transparent lid is configured to deflect in a range of approximately −20 to +50 μm. 15. The flow cell of claim 11 where the internal dimensions has a volume capacity in the range of 1 μL to 1000 μL. 16. The flow cell of claim 15 wherein the volume capacity is in the range of 25 μL to 250 μL. 17. The flow cell of claim 11 wherein the fluidic port is a thin film fluidic connector where said connector comprises at least one microfluidic channel in fluid connection with the stacked planar assembly and is positioned outside the boundaries of the substrate layer. 18. The flow cell of claim 17 wherein the thin film fluidic connector is connected to the gasket layer. 19. The flow cell of claim 17 were the fluidic port further comprises a valve to control fluid flow and pressure in the microfluidic flow cell and is capable of connecting to a fluid delivery system. 20. The flow cell of claim 11 further comprising at least one attachment point configured to match attachment points of an imaging device. 21. The flow cell of claim 20 wherein the at least one attachment point is configured to align the flow cell with an objective lens of the imaging device. 22. A method of modulating the quality of an image captured of a sample supported on the solid support of the flow cell of claim 21 comprising the steps of: aligning the flow cell with an objective lens of an imaging device; and controlling the amount of liquid in the flow cell to deflect the flexible lid in a range of plus or minus approximately 200 μm from its center point. 23. The method of claim 22 where the flexible transparent lid is configured to deflect in a range of approximately −50 to +100 μm. 24. The method of claim 23 where the flexible transparent lid is configured to deflect in a range of approximately −20 to +50 μm. 25. The method of claim 22 where the sample is a biological sample. 26. The method of claim 22 further comprising the steps of capturing an image of the sample using an image capture device.

Assignees

Inventors

Classifications

  • B01L3/5027Primary

    by integrated microfluidic structures, i.e. dimensions of channels and chambers are such that surface tension forces are important, e.g. lab-on-a-chip · CPC title

  • for microfluidic devices, e.g. used for lab-on-a-chip · CPC title

  • for microfluidic devices · CPC title

  • Multiple inlets and one sample wells, e.g. mixing, dilution · CPC title

  • G01N21/05Primary

    Flow-through cuvettes (G01N21/09 takes precedence; handling fluid samples G01N1/10) · CPC title

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What does patent US9080941B2 cover?
A microfluidic flow cell subassembly, which may be assembled into a flow cell having fluidic connections outside of the main substrate, is described for encapsulating a sample to allow for subsequent controlled delivery of reagents to the sample, such as multiplexed in situ biomarker staining and analysis. As configured, the subassembly comprises a substrate layer forms a flexible optically tra…
Who is the assignee on this patent?
Gen Electric
What technology area does this patent fall under?
Primary CPC classification B01L3/5027. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Jul 14 2015 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).