IP Library Granted Patent US 9,588,025
Granted Patent B2
US 9,588,025 · App. 14/737,865 · Granted Mar 7, 2017

Manipulation of fluids, fluid components and reactions in microfluidic systems

Inventors: Seth Fraden (Newton, MA); Hakim Boukellal (Paris, FR); Yanwei Jia (Medford, MA); Seila Selimovic (Bronx, NY); Amy Rowat (Cambridge, MA); Jeremy Agresti (Cambridge, MA); David A. Weitz (Cambridge, MA)
Assignees: Brandeis University; President and Fellows of Harvard College
G01N1/28B01L3/502746B01L3/502784F17D1/12B01L2200/0673B01L2300/0861B01L2300/0877B01L2400/0487B01L2400/0688B01L2400/0694G01N15/0272G01N15/1484G01N2015/0092Y10T137/0324Y10T137/0391Y10T137/0396Y10T137/2082Y10T137/218Y10T436/2575
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Quick Facts
Patent No.
US 9,588,025
App. No.
14/737,865
Granted
Mar 7, 2017
Kind
B2
Abstract

Microfluidic structures and methods for manipulating fluids, fluid components, and reactions are provided. In one aspect, such structures and methods can allow production of droplets of a precise volume, which can be stored/maintained at precise regions of the device. In another aspect, microfluidic structures and methods described herein are designed for containing and positioning components in an arrangement such that the components can be manipulated and then tracked even after manipulation. For example, cells may be constrained in an arrangement in microfluidic structures described herein to facilitate tracking during their growth and/or after they multiply.

Claims (45)

1. A method of positioning a plurality of cells, comprising

providing a microfluidic network comprising a microfluidic inlet, a first region, and a second region, wherein the first region and the second region are in fluid communication;

flowing a first fluid through the microfluidic inlet, the first region, and the second region, wherein the first fluid comprises a plurality of cells; and

positioning a first cell in the first region, wherein said positioning prevents entry of another cell into the first region, wherein the first cell is encapsulated in a droplet or a gel.

2. The method of claim 1 , wherein the first region has a lower hydrodynamic resistance than the second region prior to positioning the first cell.

3. The method of claim 1 , further comprising positioning a second cell in a third region downstream of the second region in the microfluidic network.

4. The method of claim 1 , wherein the microfluidic network comprises a fluid restriction region between the first region and the second region.

5. The method of claim 4 , wherein the first cell is prevented from passing through the fluid restriction region.

6. The method of claim 4 , wherein the fluid restriction region is immediately adjacent to the first region.

7. The method of claim 1 , wherein at least a portion of the first region comprises a structure element to impart resistance for fluid flow into the first region.

8. The method of claim 7 , wherein the structure element is selected from the group consisting of a valve, a semi-permeable plug, and a membrane.

9. The method of claim 1 , further comprising lysing the first cell in the droplet or the gel.

10. The method of claim 9 , further comprising labeling sequences released from the first lysed cell with a DNA probe.

11. The method of claim 1 , further comprising multiplying the first cell in the droplet or the gel.

12. The method of claim 1 , further comprising labeling the first cell with an identifier.

13. The method of claim 12 , wherein the identifier is a dye, a probe, an antibody, or a fluorescent protein.

14. The method of claim 1 , wherein the first cell is a yeast cell, a bacterium, a mammalian cell.

15. The method of claim 1 , wherein the droplet or gel further comprises one or more reactants, nutrients, or drugs.

16. The method of claim 1 , further comprising conducting a reaction in the droplet or gel.

17. The method of claim 16 , wherein the reaction is an amplification reaction.

18. The method of claim 17 , wherein the reaction is a polymerase chain reaction (PCR).

19. The method of claim 1 , further comprising analyzing a secreted component and/or growth rate of the first cell.

20. The method of claim 1 , further comprising growing colonies from the first cell.

21. The method of claim 1 , further comprising flowing a second fluid through the microfluidic network, the first region, and the second region, wherein the second fluid comprises a second reactive species.

22. The method of claim 21 , wherein the second reactive species interacts with the first cell.

23. A method of positioning a plurality of cells, comprising

providing a microfluidic network comprising a microfluidic inlet, a first region, and a second region, wherein the first region and the second region are in fluid communication, and wherein at least a portion of the first region comprises a valve, a semi-permeable plug, or a membrane to impart resistance for fluid flow into the first region;

flowing a first fluid through the microfluidic inlet, the first region, and the second region, wherein the first fluid comprises a plurality of cells; and

positioning a first cell in the first region, wherein said positioning prevents entry of another cell into the first region.

24. The method of claim 23 , further comprising lysing the first cell in the first region.

25. The method of claim 23 , further comprising immobilizing the first cell to a substrate.

26. The method of claim 23 , further comprising multiplying the first cell in the first region.

27. The method of claim 23 , further comprising labeling the first cell in the first region with an identifier.

28. The method of claim 27 , wherein the identifier is a dye, a probe, an antibody, or a fluorescent protein.

29. The method of claim 23 , wherein the first cell is a yeast cell, a bacterium, a mammalian cell.

30. A method of positioning a plurality of cells, comprising

providing a microfluidic network comprising a microfluidic inlet, a microfluidic outlet, a chamber unit comprising a chamber inlet, a chamber, a chamber outlet, a chamber bypass channel between the chamber inlet and chamber outlet, and a fluid restriction region fluidly connected between the chamber inlet and chamber outlet, wherein the chamber inlet is fluidly connected to the microfluidic inlet and the chamber outlet is fluidly connected to the microfluidic outlet;

flowing a first fluid through the microfluidic inlet and the first chamber unit, wherein the first fluid comprises a plurality of cells; and

positioning a first cell in the chamber of the first chamber unit, wherein said positioning causes another cell to flow through the chamber bypass channel.

31. The method of claim 30 , further comprising lysing the first cell in the first region.

32. The method of claim 30 , further comprising immobilizing the first cell to a substrate.

33. The method of claim 30 , further comprising multiplying the first cell in the first region.

34. The method of claim 30 , further comprising labeling the first cell in the first region with an identifier.

35. The method of claim 34 , wherein the identifier is a dye, a probe, an antibody, or a fluorescent protein.

36. The method of claim 30 , wherein the first cell is a yeast cell, a bacterium, a mammalian cell.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2018
From: FRADEN, SETH; BOUKELLAL, HAKIM; JIA, YANWEI; SELIMOVIC, SEILA
To: BRANDEIS UNIVERSITY
Reel/Frame 047367/0598 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2018
From: ROWAT, AMY; AGRESTI, JEREMY; WEITZ, DAVID A
To: PRESIDENT AND FELLOWS OF HARVARD COLLEGE
Reel/Frame 047367/0687 →
Continuity (4)
Continuation 14070953 · Nov 4, 2013
Continuation 12595107
Provisional Application 60925357 · Apr 19, 2007
Related Publication 20150276562A1 · Oct 1, 2015