IP Library › Granted Patent US 10,427,160
Granted Patent B2
US 10,427,160 · App. 15/908,453 · Granted Oct 1, 2019

Rapid and continuous analyte processing in droplet microfluidic devices

Inventors: Helmut Strey (Stony Brook, NY); Robert Kimmerling (Shirley, NY); Tomasz Bakowski (Levittown, NY)
Assignee: The Research Foundation for The State University of New York
B01L3/502784B01L3/50273B01L3/502715B01L3/502761B01L3/502776C12N15/1096C12Q1/686G01N33/54313G01N33/54326G01N33/54366B01L7/52B01L2200/0647B01L2200/0673B01L2300/0864B01L2400/043B01L2400/0487
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Quick Facts
Patent No.
US 10,427,160
App. No.
15/908,453
Filed
Feb 28, 2018
Granted
Oct 1, 2019
Kind
B2
Art Unit
1637
USPC
435/6.12
Abstract

The compositions and methods described herein are designed to introduce functionalized microparticles into droplets that can be manipulated in microfluidic devices by fields, including electric (dielectrophoretic) or magnetic fields, and extracted by splitting a droplet to separate the portion of the droplet that contains the majority of the microparticles from the part that is largely devoid of the microparticles. Within the device, channels are variously configured at Y- or T junctions that facilitate continuous, serial isolation and dilution of analytes in solution. The devices can be limited in the sense that they can be designed to output purified analytes that are then further analyzed in separate machines or they can include additional channels through which purified analytes can be further processed and analyzed.

Claims (26)

1. A method of amplifying a target polynucleotide in a biological sample comprising:

a) placing a single cell in an aqueous droplet;

b) lysing the single cell, thereby generating a cell lysate;

c) reacting the cell lysate with a tag attached to a bead, thereby binding the target polynucleotide to the tag;

d) moving the bead into a reaction zone or a container by using an electrical or magnetic field; and

e) amplifying the target polynucleotide.

2. The method of claim 1 , wherein the target polynucleotide comprises an mRNA molecule and the tag comprises a polynucleotide sequence complementary to the target polynucleotide.

3. The method of claim 2 , wherein the tag comprises oligo(dT).

4. The method of claim 2 , wherein the step of amplifying comprises RT-PCR.

5. The method of claim 1 , wherein the target polynucleotide comprises a DNA molecule and the tag comprises a polynucleotide sequence complementary to the target polynucleotide.

6. The method of claim 1 , wherein the step of lysing comprises reacting the single cell with lysis buffer.

7. The method of claim 1 , wherein the method is performed in a microfluidic device.

8. The method of claim 7 , wherein the microfluidic device comprises contiguous channels.

9. The method of claim 1 , wherein the bead comprises a magnetic particle.

10. A method of amplifying a target polynucleotide in a biological sample comprising:

a) placing a single cell in an aqueous droplet;

b) lysing the single cell, thereby generating a cell lysate;

c) reacting the cell lysate with a tag attached to a bead, thereby binding the target polynucleotide to the tag, wherein the tag comprises oligo(dT);

d) moving the bead into a reaction zone or a container; and

e) amplifying the target polynucleotide.

11. A method of amplifying a target polynucleotide in a biological sample comprising:

a) placing a single cell in an aqueous droplet;

b) lysing the single cell, thereby generating a cell lysate;

c) reacting the cell lysate with a tag attached to a bead, thereby binding the target polynucleotide to the tag;

d) moving the bead into a reaction zone or a container; and

e) amplifying the target polynucleotide by RT-PCR.

Continuity (4)
Continuation 15457459 · Mar 13, 2017
Division 12875914 · Sep 3, 2010
Provisional Application 61240188 · Sep 4, 2009
Related Publication 20180250678A1 · Sep 6, 2018