IP Library Patent Application 18783636
Patent Application
App. No. 18/783,636

METHODS OF ASSAYING MICRO-OBJECTS IN A MICROFLUIDIC DEVICE

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Quick Facts
Patent No.
US None
App. No.
18/783,636
Abstract

This application describes systems and methods for assaying micro-objects in a microfluidic device. These methods include contacting a reagent with a micro-object by introducing a reagent in a first fluidic medium to a flow region of a microfluidic device, wherein the microfluidic device comprises the flow region and a chamber comprising a proximal opening fluidically connecting the chamber to the flow region, diffusing the reagent from the flow region into the chamber; introducing a micro-object into the flow region of the microfluidic device, and diffusing the reagent from the chamber to the flow region to contact the reagent with the micro-object within the flow region. Other embodiments are described.

Claims (45)

1 . A method of contacting a micro-object with a reagent within a microfluidic device,

wherein the microfluidic device comprises a microfluidic circuit material defining a flow region and a chamber comprising a proximal opening fluidically connecting the chamber to the flow region;

the method comprises:

introducing a micro-object into the flow region of the microfluidic device; and

allowing a reagent to diffuse from the chamber to the flow region and to contact the micro-object.

2 . The method of claim 1 , wherein the chamber comprises an unswept region, an isolation region, and a connection region fluidically connecting the isolation region to the flow region, wherein the isolation region is an unswept region of the microfluidic device.

3 . (canceled)

4 . The method of claim 1 , wherein the reagent is present in the chamber before introducing the micro-object into the flow region, wherein the reagent is present in the chamber by:

introducing a first fluidic medium comprising the reagent to the flow region of the microfluidic device; and

allowing the reagent to diffuse from the flow region into the chamber.

5 .- 6 . (canceled)

7 . The method of claim 4 , wherein allowing the reagent to diffuse from the flow region into the chamber comprises maintaining a continuous perfusion of the first fluidic medium comprising the reagent.

8 . The method of claim 4 , wherein the first fluidic medium comprises the reagent at an initial concentration, and further wherein the initial concentration is at least about 1, about 2, about 4, about 8, about 12, about 16, about 20, about 40, about 100, about 200, or about 2000 times higher than a working concentration of the reagent permitting an interaction between the reagent and the micro-object.

9 . The method of claim 4 , wherein allowing the reagent to diffuse from the flow region into the chamber comprises allowing the reagent to equilibrate between the flow region and the chamber.

10 . The method of claim 1 , wherein the reagent is a mixture of assay reagents.

11 . The method of claim 1 , wherein the micro-object substantially has no contact with the reagent until the reagent diffuses from the chamber to the flow region and to contact the micro-object.

12 . The method of claim 1 , wherein allowing the reagent to diffuse from the chamber to the flow region comprises contacting the micro-object with the reagent within the flow region.

13 . The method of claim 1 , further comprising introducing a prepolymer composition into the flow region, wherein the prepolymer composition is configured to form an in situ-generated structure within the microfluidic device.

14 . The method of claim 13 , further comprising activating solidification of the prepolymer composition, thereby forming the in situ-generated structure within the microfluidic device, wherein the in situ-generated structure is formed in an area proximal to the proximal opening of the chamber, and comprises a porosity that restricts passage of the reagent.

15 .- 16 . (canceled)

17 . The method of claim 13 , wherein the in situ-generated structure seals the proximal opening of the chamber.

18 . The method of 13 , wherein the prepolymer composition comprises:

a first polyethylene glycol polymer molecule and a second polyethylene glycol polymer molecule, each comprising a respective polyethylene glycol moiety and a covalently linked reactive moiety R x ;

a crosslinker molecule comprising a first reactive moiety R xP disposed at a first end of a linker moiety L and a second reactive moiety R xP disposed at a second end of the linker moiety L, wherein each of the first and the second crosslinker moiety R xP is configured to be activatable to react with a respective reactive moiety R x of the first and the second polyethylene polymer molecules.

19 .- 24 . (canceled)

25 . A method of sampling a micro-object population in a microfluidic device,

wherein the microfluidic device comprises a microfluidic circuit material defining a flow region and a chamber comprising a proximal opening fluidically connecting the chamber to the flow region;

the method comprises:

introducing a first fluidic medium comprising a first reagent to the flow region of the microfluidic device; and

allowing the first reagent to diffuse from the flow region into the chamber;

introducing a plurality of micro-objects into the flow region of the microfluidic device;

allowing the first reagent to diffuse from the chamber to the flow region to contact the plurality of micro-objects; and

observing an interaction between the first assay reagent and the plurality of micro-objects.

26 . The method of claim 25 , wherein the chamber comprises an unswept region.

27 . (canceled)

28 . The method of claim 25 , wherein allowing the first reagent to diffuse from the flow region into the chamber comprises maintaining a continuous perfusion of the first fluidic medium comprising the first reagent and allowing the first reagent to equilibrate between the flow region and the chamber.

29 . The method of claim 25 , wherein the first fluidic medium comprises the first reagent at an initial concentration, and further wherein the initial concentration is at least about 1, about 2, about 4, about 8, about 12, about 16, about 20, about 40, about 100, about 200, or about 2000 times higher than a working concentration of the first reagent, permitting an interaction between the first reagent and the micro-object.

30 . The method of claim 25 , wherein allowing the first reagent to diffuse from the flow region into the chamber comprises allowing the first reagent to equilibrate between the flow region and the chamber.

31 . (canceled)

32 . The method of claim 25 , wherein the plurality of micro-objects substantially has no contact with the first reagent until the first reagent diffuses from the chamber to the flow region and to contact the micro-object.

33 .- 38 . (canceled)

39 . A microfluidic device comprising:

a microfluidic circuit material defining a flow region;

a chamber comprising a proximal opening fluidically connecting the chamber to the flow region;

wherein a micro-object is introduced into the flow region of the microfluidic device allowing a reagent to diffuse from the chamber to the flow region and to contact the micro-object.

Assignments (4)
MERGER Recorded Apr 10, 2026
From: BRUKER CELLULAR ANALYSIS, INC.
To: BRUKER SPATIAL BIOLOGY, INC.
Reel/Frame 074336/0392 →
MERGER AND CHANGE OF NAME Recorded Oct 16, 2024
From: BIRD MERGERSUB CORPORATION; PHENOMEX INC.
To: BRUKER CELLULAR ANALYSIS, INC.
Reel/Frame 068915/0180 →
CHANGE OF NAME Recorded Aug 28, 2024
From: BERKELEY LIGHTS, INC.
To: PHENOMEX INC.
Reel/Frame 068794/0323 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 27, 2024
From: LIN, KE-CHIH; LE, LONG VAN; MCEWEN, JASON M.; NEVILL, J. TANNER; KURZ, VOLKER L.S.; SHIEH, PEYTON; MASTROIANNI, ALEXANDER J.; GADISH, OR; GOH, ETHAN JUN WEI
To: BERKELEY LIGHTS, INC.
Reel/Frame 068409/0464 →