IP Library › Granted Patent US 10,041,112
Granted Patent B2
US 10,041,112 · App. 15/097,904 · Granted Aug 7, 2018

Multiplexed, continuous-flow, droplet-based platform for high-throughput genetic detection

Inventors: Tza-Huei J. Wang (Baltimore, MD); Kuangwen Hsieh (Germantown, MD); Helena C. Zec (Baltimore, MD); Lingshu Liu (Baltimore, MD); Aniruddha M. Kaushik (Baltimore, MD); Yue Yun (Johnston, IA)
Assignees: The Johns Hopkins University; Pioneer Hi-Bred International, Inc.
C12Q1/686B01L3/502784B01L7/525C12Q1/6869B01L3/0241B01L2200/0673B01L2300/0654B01L2300/0816B01L2300/0867B01L2300/0877B01L2300/0883B01L2300/1822
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Quick Facts
Patent No.
US 10,041,112
App. No.
15/097,904
Granted
Aug 7, 2018
Kind
B2
Abstract

The present application relates to a continuous droplet flow microfluidic system, including a microfluidic chip including an optical detection section; a stage assembly including a microfluidic chip holder configured to receive the microfluidic chip and a plurality of heating elements arranged to heat a plurality of separate sections of the microfluidic chip to a corresponding plurality of different temperatures; and an optical detection system arranged to detect fluorescent light emitted from said optical detection section of the microfluidic chip.

Claims (36)

1. A continuous droplet flow microfluidic system, comprising:

a microfluidic chip comprising an optical detection section;

a stage assembly comprising a microfluidic chip holder configured to receive said microfluidic chip and a plurality of heating elements arranged to heat a plurality of separate sections of said microfluidic chip to a corresponding plurality of different temperatures; and

an optical detection system arranged to detect fluorescent light emitted from said optical detection section of said microfluidic chip,

wherein said microfluidic chip comprises:

a substrate;

a channel control layer attached to said substrate; and

a fluid flow layer attached to said channel control layer on an opposite side of said control layer from said substrate such that said fluid flow layer and said channel control layer define fluid channels within said fluid flow layer, said channel control layer and said fluid flow layer being formed from materials that do not require surface treatment for fluid flow through said fluid channels,

wherein said channel control layer and said fluid flow layer define a main channel extending from a droplet generating section, extending through a reagent injection section, passing through a plurality of incubation sections, each incubation section having a separately selectable temperature, and passing through said optical detection section,

wherein said main channel increases in width and height between said reagent injection section and said plurality of incubation sections, and

wherein said optical detection section of said main channel has at least one of a decreased width or decreased height relative to said plurality of incubation sections to stretch droplets for detection.

2. The continuous droplet flow microfluidic system according to claim 1 , wherein said droplet generating section is configured to receive a capillary comprising a plurality of sample plugs separated by an immiscible carrier fluid and to generate a plurality of droplets from each of said plurality of sample plugs.

3. The continuous droplet flow microfluidic system according to claim 2 , wherein said plurality of droplets are between 0.1 nL and 200 nL.

4. The continuous droplet flow microfluidic system according to claim 2 , wherein said plurality of droplets are between 0.5 nL and 100 nL.

5. The continuous droplet flow microfluidic system according to claim 1 , wherein said droplet generating section is configured to receive a droplet generator.

6. The continuous droplet flow microfluidic system according to claim 5 , further comprising an input system in fluid communication with said droplet generator,

wherein said input system is configured to provide a sequential stream of sample plugs, and

wherein said droplet generator is configured to receive the sequential stream of sample plugs.

7. The continuous droplet flow microfluidic system according to claim 5 , further comprising a droplet treatment system arranged in fluid connection with said droplet generator.

8. The continuous droplet flow microfluidic system according to claim 5 , wherein said droplet generator is configured to provide a stream of treated droplets in a sequential order.

9. The continuous droplet flow microfluidic system according to claim 5 , wherein said droplet generator further comprises a valve assembly.

10. The continuous droplet flow microfluidic system according to claim 1 , wherein said reagent injection section is configured to allow selected injection of at least one of a plurality of reagents into selected droplets as the droplets pass through said reagent injection section.

11. The continuous droplet flow microfluidic system according to claim 1 , wherein said main channel has a serpentine path in each incubation section of said plurality of incubation sections.

12. The continuous droplet flow microfluidic system according to claim 1 , wherein said optical detection system is a multi-color confocal fluorescence spectroscopic system.

13. A microfluidic chip, comprising;

a substrate;

a channel control layer attached to said substrate; and

a fluid flow layer attached to said channel control layer on an opposite side of said control layer from said substrate such that said fluid flow layer and said channel control layer define fluid channels within said fluid flow layer, said channel control layer and said fluid flow layer being formed from materials that do not require surface treatment for fluid flow through said fluid channels,

wherein said channel control layer and said fluid flow layer define a main channel extending from a droplet generating section, extending through a reagent injection section, passing through a plurality of incubation sections, each incubation section having a separately selectable temperature, and passing through an optical detection section,

wherein said main channel increases in width and height between said reagent injection section and said plurality of incubation sections, and

wherein said optical detection section of said main channel has at least one of a decreased width or decreased height relative to said plurality of incubation sections to stretch droplets for detection.

14. The microfluidic chip according to claim 13 , wherein said droplet generating section is configured to receive a capillary comprising a plurality of sample plugs separated by an immiscible carrier fluid and to generate a plurality of droplets from each of said plurality of sample plugs.

15. The microfluidic chip according to claim 14 , wherein said plurality of droplets are between 0.1 nL and 200 nL.

16. The microfluidic chip according to claim 14 , wherein said plurality of droplets are between 0.5 nL and 100 nL.

17. The microfluidic chip according to claim 14 , wherein said reagent injection section is configured to allow selected injection of at least one of a plurality of reagents into selected droplets as the droplets pass through said reagent injection section.

18. The microfluidic chip according to claim 14 , wherein said main channel has a serpentine path in each incubation section of said plurality of incubation sections.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2016
From: WANG, TZA-HUEI J.; HSIEH, KUANGWEN; ZEC, HELENA C.; LIU, LINGSHU; KAUSHIK, ANIRUDDHA M.; YUN, YUE
To: THE JOHNS HOPKINS UNIVERSITY; PIONEER HI-BRED INTERNATIONAL, INC.
Reel/Frame 039802/0880 →
Continuity (2)
Provisional Application 62146774 · Apr 13, 2015
Related Publication 20160298173A1 · Oct 13, 2016