IP Library Granted Patent US 8,999,129
Granted Patent B2
US 8,999,129 · App. 13/413,161 · Granted Apr 7, 2015

Liquid and gel electrodes for transverse free flow electrophoresis

Inventors: Byoungsok Jung (San Jose, CA); Klint A. Rose (Alviso, CA); Maxim Shusteff (Oakland, CA); Alexandre Persat (Palo Alto, CA); Juan Santiago (Stanford, CA)
Assignees: Lawrence Livermore National Security, LLC; The Board of Trustees of the Leland Stanford Junior University
B01D43/00B01D57/02G01N27/44769
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Quick Facts
Patent No.
US 8,999,129
App. No.
13/413,161
Granted
Apr 7, 2015
Kind
B2
Abstract

The present invention provides a mechanism for separating or isolating charged particles under the influence of an electric field without metal electrodes being in direct contact with the sample solution. The metal electrodes normally in contact with the sample are replaced with high conductivity fluid electrodes situated parallel and adjacent to the sample. When the fluid electrodes transmit the electric field across the sample, particles within the sample migrate according to their electrophoretic mobility.

Claims (32)

1. An electrophoresis apparatus for separating particles in a flowing liquid sample, comprising:

a microchip;

a chamber in said microchip, said chamber having a first chamber wall and a second chamber wall wherein said flowing liquid sample is between said first chamber wall and said second chamber wall;

a first reservoir containing a first conductive liquid;

a first metal electrode in said first reservoir in contact with said first conductive Liquid;

a first pump connected to said first reservoir for pumping said first conductive Liquid;

a first flowing conductive liquid electrode within said chamber connected to said first conductive liquid and said first pump wherein said first flowing conductive liquid electrode is positioned along said first chamber wall and positioned wherein the flowing liquid sample is in direct contact with said first flowing conductive liquid electrode;

a second reservoir containing a second conductive liquid;

a second metal electrode in said second reservoir in contact with said second conductive liquid;

a second pump connected to said second reservoir for pumping said second conductive liquid;

a second flowing conductive liquid electrode within said chamber connected to said second conductive liquid and said second pump wherein aid second flowing conductive liquid electrode is positioned along said second chamber wall opposite first chamber wall and positioned wherein the flowing liquid sample is in direct contact with said second flowing conductive liquid electrode; and

an electric field generated from associated circuitry applied to said first flowing conductive liquid electrode and said second flowing conductive liquid electrode.

2. The electrophoresis apparatus of claim 1 wherein said microchip is a borosilicate glass microchip.

3. The electrophoresis apparatus of claim 1 wherein said first conductive liquid and said second conductive liquid are liquid sodium chloride solutions.

4. The electrophoresis apparatus of claim 1 wherein said first conductive liquid and said second conductive liquid are sodium chloride solutions with conductivity equal to 80 mS/cm.

5. The electrophoresis apparatus of claim 1 wherein said first metal electrode and said second metal electrode are platinum metal electrodes.

6. The electrophoresis apparatus of claim 1 wherein said first flowing liquid electrode and said second flowing liquid electrode are flowing conductive sodium chloride solutions electrodes.

7. The electrophoresis apparatus of claim 1 wherein said first pump and said second pump are position to provide a source of pressure that produces said first flowing liquid electrode and said second flowing liquid electrode.

8. The electrophoresis apparatus of claim 1 wherein said first pump and said second pump are position to provide a source of pressure that pumps said first conductive liquid and said second conductive liquid and produces said first flowing conductive liquid electrode and said second flowing conductive liquid electrode.

9. The electrophoresis apparatus of claim 1 wherein said first flowing conductive liquid electrode is positioned immediately adjacent to said first chamber wall and said second flowing conductive liquid electrode is positioned immediately adjacent to second chamber wall and wherein the flowing liquid sample is sheathed between said first flowing conductive liquid electrode and said second flowing conductive liquid electrode and wherein the flowing liquid sample is in direct contact with said first flowing conductive liquid electrode and said second flown conductive liquid electrode.

10. An electrophoresis apparatus for separating particles in a flowing liquid sample, comprising:

a microchip;

a chamber in said microchip, said chamber having a first chamber wall and a second chamber wall wherein said flowing liquid sample is between said first chamber wall and said second chamber wall;

a first reservoir containing a first liquid sodium chloride solution:

a first metal electrode in said first reservoir in contact with said first liquid sodium chloride solution;

a first pump connected to said first reservoir for pumping said first liquid sodium chloride solution;

a first flowing liquid sodium chloride solution electrode within said chamber connected to said first sodium chloride solution and said first pump wherein said first flowing liquid sodium chloride solution electrode is positioned along said first chamber wall for producing a cathode electrode and is positioned wherein the flowing liquid sample is in direct contact with said first flowing liquid sodium chloride solution electrode;

a second reservoir containing a second liquid sodium chloride solution;

a second metal electrode in said second reservoir in contact with said second liquid sodium chloride solution;

a second pump connected to said second reservoir for pumping said second liquid sodium chloride solution;

a second flowing liquid sodium chloride solution electrode within said chamber connected to said second sodium chloride solution and said second pump wherein said second flowing liquid sodium chloride solution electrode is positioned along said second chamber wall opposite said first chamber wall for producing an anode electrode and is positioned wherein the flowing liquid sample is in direct contact with said second flowing liquid sodium chloride solution electrode; and

an electric field applied to said first flowing liquid sodium chloride solution electrode means and said second flowing liquid sodium chloride solution electrode.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 13, 2013
From: SANTIAGO, JUAN G.; PERSAT, ALEXANDRE
To: THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY
Reel/Frame 030998/0730 →
CONFIRMATORY LICENSE Recorded Feb 19, 2013
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 029828/0322 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 15, 2012
From: JUNG, BYOUNGSOK; ROSE, KLINT A.; SHUSTEFF, MAXIM
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 027872/0251 →
Continuity (2)
Provisional Application 61449819 · Mar 7, 2011
Related Publication 20120228141A1 · Sep 13, 2012