IP Library Granted Patent US 11,408,903
Granted Patent B2
US 11,408,903 · App. 17/008,561 · Granted Aug 9, 2022

Systems, methods, and devices for self-digitization of samples

Inventors: Daniel T. Chiu (Seattle, WA); Bryant S. Fujimoto (Seattle, WA); Jason E. Kreutz (Seattle, WA)
Assignee: University of Washington
G01N35/1016B01L3/5025B01L3/502746B01L7/52B01L9/523C12Q1/686G01N15/1463G01N21/6456G01N35/00069G01N35/025G01N35/04B01L2200/027B01L2200/0673B01L2300/0809B01L2300/0816B01L2300/0864B01L2300/18B01L2300/1894B01L2400/0409G01N2015/1006G01N2035/00158G01N2035/00356G01N2035/00366G01N2035/0449G01N2035/1034
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Quick Facts
Patent No.
US 11,408,903
App. No.
17/008,561
Granted
Aug 9, 2022
Kind
B2
Abstract

Systems, methods, and devices for discretizing and analyzing fluidic samples are provided. In one aspect, a microfluidic array for discretizing a fluidic sample comprises one or more flow channels and a plurality of fluidic compartments in fluidic communication with the one or more flow channels. In another aspect, a system for discretizing and analyzing fluidic samples comprises a rotor assembly shaped to receive a microfluidic device.

Claims (32)

1. A microfluidic array for discretizing a fluidic sample, the array comprising:

a proximal array portion comprising a fluid inlet port and a fluid outlet port;

a distal array portion away from the proximal portion;

one or more flow channels each comprising a length extending from the proximal array portion to the distal array portion, a proximal end in fluidic communication with the fluid inlet port, and a distal end in fluidic communication with the fluid outlet port; and

a plurality of fluidic compartments in fluidic communication with the one or more flow channels,

wherein at least one flow channel of the one or more flow channels comprises a change in cross-sectional dimension along the length of the at least one flow channel from the proximal end to the distal end,

wherein the cross-sectional dimension is along a portion of the at least one flow channel that spans an entirety of the plurality of fluidic compartments coupled to the at least one channel.

2. The microfluidic array of claim 1 , wherein the cross-sectional dimension of the at least one flow channel decreases according to a tapering profile.

3. The microfluidic array of claim 2 , wherein the tapering profile comprises a discontinuous tapering profile.

4. The microfluidic array of claim 3 , wherein the discontinuous tapering profile comprises a stepped tapering profile.

5. The microfluidic array of claim 1 , wherein the cross-sectional dimension comprises a cross-sectional width.

6. The microfluidic array of claim 1 , wherein the cross-sectional dimension comprises a cross-sectional area.

7. The microfluidic array of claim 1 , wherein the cross-sectional dimension of the at least one flow channel decreases according to a tapering profile configured to produce substantially uniform fluid flow rates along the length of the at least one flow channel.

8. The microfluidic array of claim 1 , wherein the cross-sectional dimension of the at least one flow channel decreases according to a tapering profile configured to produce increasing flow resistance along the length of the at least one flow channel.

9. The microfluidic array of claim 1 , further comprising a fluid reservoir located at the distal array portion, wherein the distal end of each flow channel is in fluidic communication with the fluid outlet port via the fluid reservoir.

10. The microfluidic array of claim 1 , wherein at least one flow channel of the one or more flow channels comprises a substantially constant cross-sectional dimension along the length from the proximal array portion to the distal array portion.

11. The microfluidic array of claim 1 , wherein at least one flow channel of the one or more flow channels comprises an increasing cross-sectional dimension along the length from the proximal array portion to the distal array portion.

12. The microfluidic array of claim 1 , wherein the change in cross-sectional dimension includes a decreasing cross-sectional dimension along the length of the at least one flow channel from the proximal end to the distal end.

13. A microfluidic device for discretizing a fluidic sample, the microfluidic device comprising:

a body comprising a proximal body portion and a distal body portion, and

a plurality of microfluidic arrays of claim 1 disposed in the body such that the one or more flow channels of the plurality of microfluidic arrays extend substantially parallel to each other from the proximal body portion to the distal body portion.

14. The microfluidic device of claim 13 , wherein the fluid inlet ports of the plurality of microfluidic arrays are arranged to receive a fluidic sample from a multi-channel pipette.

15. A system for discretizing and analyzing fluidic samples, the system comprising:

a rotor assembly comprising a central axis and a plurality of receptacles arranged radially around the central axis, a microfluidic device of claim 13 disposed in a receptacle of the plurality of receptacles such that the proximal body portion of the microfluidic device is positioned near the central axis and the distal body portion of the microfluidic device is positioned away from the central axis;

a rotary actuator coupled to the rotor assembly; and

one or more processors configured with instructions to cause the system to rotate the rotor assembly around the central axis using the rotary actuator.

16. The system of claim 15 , further comprising a heating device configured to generate heat, wherein the one or more processors are configured with instructions to cause the system to apply heat to the microfluidic devices received in the plurality of receptacles using the heating device.

17. The system of claim 15 , wherein the one or more processors are configured with instructions to cause the system to apply heat to the microfluidic devices according to a digital polymerase chain reaction (dPCR) thermal cycling procedure.

18. The system of claim 15 , further comprising an imaging device configured to obtain image data, wherein the one or more processors are configured with instructions to cause the system to obtain image data of the microfluidic devices received in the plurality of receptacles using the imaging device.

19. A method for discretizing and analyzing a fluidic sample, the method comprising:

applying a fluidic sample to the fluid inlet port of a microfluidic device of claim 13 , the fluidic sample comprising a plurality of discrete analytes; and

rotating the microfluidic device such that the plurality of discrete analytes is driven into a subset of the plurality of fluidic compartments of the microfluidic device.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2021
From: CHIU, DANIEL T.; FUJIMOTO, BRYANT S.; KREUTZ, JASON E.
To: UNIVERSITY OF WASHINGTON
Reel/Frame 055954/0013 →
Continuity (3)
Continuation 15741462
Provisional Application 62189663 · Jul 7, 2015
Related Publication 20200400703A1 · Dec 24, 2020