IP Library Granted Patent US 11,612,890
Granted Patent B2
US 11,612,890 · App. 17/452,725 · Granted Mar 28, 2023

Methods for encapsulating and assaying cells

Inventors: Volker L. S. Kurz (Oakland, CA); Jason M. McEwen (El Cerrito, CA); Kellen C. Mobilia (Dublin, CA); Alexander J. Mastroianni (Alameda, CA); Joshua J. Cardiel Rivera (Beaverton, OR)
Assignee: Berkeley Lights, Inc.
B01L3/502715B01L2200/0673B01L2200/16B01L2300/0636B01L2300/087B01L2300/0877
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,612,890
App. No.
17/452,725
Granted
Mar 28, 2023
Kind
B2
Abstract

In biosciences and related fields, it can be useful to study cells in isolation so that cells having unique and desirable properties can be identified within a heterogenous mixture of cells. Processes and methods disclosed herein provide for encapsulating cells within a microfluidic device and assaying the encapsulated cells. Encapsulation can, among other benefits, facilitate analyses of cells that generate secretions of interest which would otherwise rapidly diffuse away or mix with the secretions of other cells.

Claims (49)

1. A process for encapsulating cells in a microfluidic device having an enclosure comprising a channel and a plurality of chambers, each chamber of the plurality of chambers having an opening fluidically connecting the chamber to the channel, wherein at least a portion of surfaces forming the channel proximal to the opening to each chamber of the plurality of chambers and/or at least a portion of surfaces forming each chamber of the plurality of chambers proximal to the channel comprises a hydrophobic coating, said process comprising:

filling the channel and the plurality of chambers in the enclosure of the microfluidic device with a first aqueous medium;

disposing a first cell in a first chamber of the plurality of chambers;

disposing a second cell in a second chamber of the plurality of chambers; and

flowing a water immiscible fluidic medium into the channel, displacing substantially all of the first aqueous medium in the channel without substantially displacing the first aqueous medium in the chambers of the plurality of chambers, thereby reversibly encapsulating the first and second cells in their respective chambers.

2. The process of claim 1 , wherein all surfaces of the channel proximal to and surrounding the opening to each chamber of the plurality of chambers comprises the hydrophobic coating.

3. The process of claim 2 , wherein all surfaces of the channel within 10 microns of the opening to each chamber of the plurality of chambers comprises the hydrophobic coating.

4. The process of claim 3 , wherein the hydrophobic coating has a contact angle from about 45 degrees to about 100 degrees.

5. The process of claim 1 , further comprising aspirating the water immiscible fluidic medium out of the channel.

6. The process of claim 5 , wherein aspirating the water immiscible fluidic medium further comprises subsequently aspirating a second aqueous medium into the channel.

7. The process of claim 5 , wherein all surfaces of each chamber proximal to and surrounding the opening of each chamber of the plurality of chambers comprise the hydrophobic coating, the process further comprising:

generating an encapsulation layer of water immiscible fluidic media in each chamber of the plurality of chambers, wherein the encapsulation layer of each chamber of the plurality of chambers is located immediately adjacent to the channel and shares an interface with the first aqueous medium in the chamber so as to separate the first aqueous medium in the chamber from a medium present in the channel.

8. The process of claim 7 , further comprising:

selecting one of the first and second chambers having the respective first or second cell disposed therein; and

removing the encapsulation layer formed by the water immiscible fluidic medium at the opening to the channel of the selected one of the first and second chambers, thereby generating a de-encapsulated chamber.

9. The process of claim 8 , wherein selectively removing the encapsulation layer comprises generating a bubble within the chamber.

10. The process of claim 8 , further comprising flowing a third aqueous medium into the channel, and wherein the third aqueous medium comprises a reagent, wherein the reagent is an assay reagent, a lytic reagent, or an export buffer.

11. The process of claim 1 , further comprising disposing a capture bead into one or both of the first and second chambers.

12. The process of claim 1 , wherein each chamber of the plurality of chambers comprises a plurality of surfaces forming the chamber, wherein at least one chamber surface of the plurality comprises a hydrophilic coating.

13. The process of claim 1 , wherein the water immiscible fluidic medium includes an alkane, a fluoroalkane, an oil, a hydrophobic polymer, or any combination thereof.

14. A process of assaying encapsulated cells in a microfluidic device having an enclosure comprising a channel and a plurality of chambers, each chamber of the plurality of chambers having an opening fluidically connecting the chamber to the channel, wherein at least a portion of surfaces forming the channel proximal to each chambers of the plurality of chambers and/or at least a portion of surfaces forming each chamber of the plurality of chambers proximal to the channel comprises a hydrophobic coating, wherein the process comprises:

filling the channel and the plurality of chambers in the enclosure of the microfluidic device with a first aqueous medium;

disposing a first cell in a first chamber of the plurality of chambers;

disposing a second cell in a second chamber of the plurality of chambers;

flowing a water immiscible fluidic medium into the channel, displacing substantially all of the first aqueous medium in the channel without substantially displacing the first aqueous medium in any of the plurality of chambers, thereby reversibly encapsulating the first and second cells in their respective chambers; and

monitoring an activity of the first and second cells encapsulated in the respective first and second chambers.

15. The process of claim 14 , wherein all surfaces of the channel proximal to and surrounding the opening to each chamber of the plurality of chambers comprises the hydrophobic coating.

16. The process of claim 15 , wherein all surfaces of the channel within 10 microns of the opening to each chamber of the plurality of chambers comprises the hydrophobic coating.

17. The process of claim 14 , wherein the hydrophobic coating has a contact angle from about 45 degrees to about 100 degrees.

18. The process of claim 14 , further comprising aspirating the water immiscible fluidic medium out of the channel.

19. The process of claim 18 , wherein aspirating the water immiscible fluidic medium further comprises subsequently aspirating a second aqueous medium into the channel.

20. The process of claim 14 , wherein all surfaces of each chamber proximal to and surrounding the opening of each chamber of the plurality of chambers comprise the hydrophobic coating, the process further comprising:

generating an encapsulation layer of water immiscible fluidic media in each chamber of the plurality of chambers, wherein the encapsulation layer of each chamber of the plurality of chambers is located immediately adjacent to the channel and shares an interface with the first aqueous medium in the chamber so as to separate the first aqueous medium in the chamber from a medium present in the channel.

21. The process of claim 20 , further comprising:

selecting one or more of the plurality of chambers having a cell disposed therein; and

removing the encapsulation layer formed by the water immiscible fluidic media at the opening to the channel of the selected one or more of the plurality of chambers, thereby generating a de-encapsulated chamber.

22. The process of claim 21 , wherein selectively removing the encapsulation layer comprises generating a bubble within the chamber.

23. The process of claim 21 , further comprising flowing a third aqueous medium into the channel, and wherein the third aqueous medium comprises a reagent, wherein the reagent is an assay reagent, a lytic reagent, or an export buffer.

24. The process of claim 14 , further comprising disposing a capture bead into one or both of the first and second chambers.

25. The process of claim 14 , wherein each chamber of the plurality of chambers comprises a plurality of surfaces forming the chamber, wherein at least one chamber surface of the plurality comprises a hydrophilic coating.

26. The process of claim 14 , wherein the water immiscible fluidic medium includes an alkane, a fluoroalkane, an oil, a hydrophobic polymer, or any combination thereof.

27. The process of claim 14 , further comprising incubating the first and second cells encapsulated in the first and second chambers for a first period of time before monitoring the activity of the first and second cells.

28. The process of claim 14 , wherein the first and second cells express variable amounts of a molecule of interest or a reporter molecule.

29. The process of claim 28 , wherein monitoring the activity of the first and second cells encapsulated in the first and second chambers, respectively, comprises detecting the molecule of interest or the reporter molecule present in each of the first and second chambers.

30. The process of claim 14 , further comprising disposing a micro-object into each of the first and second chambers of the plurality of chambers, wherein the micro-object comprises a molecule configured to affect or test a biological activity of the first and second cells disposed therein.

31. The process of claim 30 , further comprising:

triggering release of the molecule from the micro-object; and/or

introducing a release reagent into each of the first and second chambers subsequent to introducing the micro-object therein, wherein the release reagent is configured to trigger release of the molecule from the micro-object.

32. The process of claim 30 , further comprising assessing whether the molecule comprised by the micro-object changes an expression of the molecule of interest or a reporter molecule by the first or second cells.

Assignments (3)
MERGER AND CHANGE OF NAME Recorded Nov 30, 2023
From: PHENOMEX INC.; BIRD MERGERSUB CORPORATION
To: BRUKER CELLULAR ANALYSIS, INC.
Reel/Frame 065726/0624 →
CHANGE OF NAME Recorded Sep 20, 2023
From: BERKELEY LIGHTS, INC.
To: PHENOMEX INC.
Reel/Frame 064961/0794 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2022
From: KURZ, VOLKER L.S.; MCEWEN, JASON M.; MOBILIA, KELLEN C.; MASTROIANNI, ALEXANDER J.; CARDIEL RIVERA, JOSHUA J.
To: BERKELEY LIGHTS, INC.
Reel/Frame 059065/0174 →
Continuity (4)
Continuation PCTUS2020030846 · Apr 30, 2020
Provisional Application 62850557 · May 21, 2019
Provisional Application 62841229 · Apr 30, 2019
Related Publication 20220161255A1 · May 26, 2022
Cited By (8)
US 12,246,322 US 12,303,892 US 12,440,837 US 12,569,847 US 12,576,399 US 12,576,400 US 12,661,647 US 12,714,996