IP Library Granted Patent US 9,670,541
Granted Patent B2
US 9,670,541 · App. 14/823,571 · Granted Jun 6, 2017

Manipulation of microparticles in microfluidic systems

Inventors: Tammy Burd Mehta (San Jose, CA); Anne R. Kopf-Sill (Portola Valley, CA); J. Wallace Parce (Palo Alto, CA); Andrea W. Chow (Los Altos, CA); Luc J. Bousse (Los Altos, CA); Michael R. Knapp (Palo Alto, CA); Theo T. Nikiforov (San Jose, CA); Steve Gallagher (Palo Alto, CA)
Assignee: CALIPER LIFE SCIENCES, INC.
C12Q1/6874B01L3/5027B01L3/502761C07H21/02C07H21/04C12Q1/6869B01F13/0059B01J2219/00317B01J2219/00459B01J2219/00468B01L3/502715B01L2200/0668B01L2400/043B01L2400/0409B01L2400/0415B01L2400/0487C40B60/14G01N27/44756G01N35/0098G01N2035/00574Y10T436/143333
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Quick Facts
Patent No.
US 9,670,541
App. No.
14/823,571
Granted
Jun 6, 2017
Kind
B2
Abstract

An array of transportable particle sets is used in a microfluidic device for performing chemical reactions in the microfluidic device. The microfluidic device comprises a main channel and intersecting side channels, the main channel and side channels forming a plurality of intersections. The array of particle sets is disposed in the main channel, and the side channels are coupled to reagents. As the particle sets are transported through the intersections of the main channel and the side channels, reagents are flowed through the side channels into contact with each array member (or selected array members), thereby providing a plurality of chemical reactions in the microfluidic system.

Claims (23)

1. A method of modifying flow in a microchannel, the method comprising:

flowing an ordered array of particle sets into a microchannel;

performing a first assay in the microchannel;

moving the ordered array within the microchannel, thereby altering the hydrodynamic resistance in the microchannel; and,

performing a second assay in the microchannel.

2. The method of claim 1 , the method further comprising altering the surface charge on at least one of the particle sets, thereby modifying the zeta potential of the at least one of the particle sets.

3. The method of claim 1 , the method further comprising altering the surface charge on at least one of the particle sets, thereby modifying the zeta potential of the at least one of the particle sets, wherein the zeta potential is altered in response to the results of the first or second assay in the microchannel.

4. The method of claim 1 , the method further comprising altering the surface charge on at least one of the particle sets, thereby modifying the zeta potential of the at least one of the particle sets, wherein the zeta potential is altered in response to the results of the first or second assay in the microchannel, wherein the results of the first or second assay are detected using a system comprising a microprocessor and the hydrodynamic resistance or zeta potential are altered in response to a signal from the system.

5. The method of claim 1 , the method comprising flowing a second particle set into the microchannel.

6. The method of claim 1 , wherein either the first or second assay comprises contacting a reagent with a member of the ordered array or a second particle set, or with a third particle set member.

7. The method of claim 1 , wherein the moving changes the packing of the ordered array within the microchannel.

8. The method of claim 1 , wherein the ordered array includes a plurality of particles.

9. The method of claim 1 , the method comprising flowing a second particle set into the first microchannel, thereby further altering the hydrodynamic resistance in the microchannel.

10. A method of modifying flow in a microchannel, the method comprising:

flowing an ordered array of particle sets into a microchannel;

performing a first assay in the microchannel;

flowing a second particle set into the microchannel, thereby altering the hydrodynamic resistance in the microchannel; and,

performing a second assay in the microchannel.

11. The method of claim 10 , the method further comprising altering the surface charge on at least one of the particle sets, thereby modifying the zeta potential of the at least one of the particle sets.

12. The method of claim 10 , the method further comprising altering the surface charge on at least one of the particle sets, thereby modifying the zeta potential of the at least one of the particle sets, wherein the zeta potential is altered in response to the results of the first or second assay in the microchannel.

13. The method of claim 10 , the method further comprising altering the surface charge on at least one of the particle sets, thereby modifying the zeta potential of the at least one of the particle sets, wherein the zeta potential is altered in response to the results of the first or second assay in the microchannel, wherein the results of the first or second assay are detected using a system comprising a microprocessor and the hydrodynamic resistance or zeta potential are altered in response to a signal from the system.

14. The method of claim 10 , wherein either the first or second assay comprises contacting a reagent with a member of the ordered array or second particle set, or with a third particle set member.

15. The method of claim 1 , wherein the ordered array includes a plurality of particles.

Continuity (8)
Division 13015242 · Jan 27, 2011
Continuation 11928808 · Oct 30, 2007
Division 10606201 · Jun 25, 2003
Continuation 09510626 · Feb 22, 2000
Provisional Application 60128643 · Apr 9, 1999
Provisional Application 60127825 · Apr 5, 1999
Provisional Application 60121223 · Feb 23, 1999
Related Publication 20160040226A1 · Feb 11, 2016