IP Library Granted Patent US 9,205,423
Granted Patent B2
US 9,205,423 · App. 13/776,646 · Granted Dec 8, 2015

High throughput screening of crystallization of materials

Inventors: Carl L. Hansen (Pasadena, CA); Stephen R. Quake (Stanford, CA); James M. Berger (Kensington, CA)
Assignees: California Institute of Technology; The Regents of the University of California
B01L3/06B01L3/50273B01L3/502707B01L3/502738B01L3/502761B01L9/527C12Q1/6874F04B43/043F16K99/0001F16K99/0015F16K99/0026F16K99/0059B01J2219/00274B01L7/54B01L2200/025B01L2200/027B01L2200/0605B01L2200/0642B01L2200/10B01L2300/0681B01L2300/0816B01L2300/0861B01L2300/0887B01L2300/123B01L2300/14B01L2300/18B01L2300/1827B01L2400/0481B01L2400/0655B01L2400/0688F16K99/0034F16K2099/008F16K2099/0074F16K2099/0078F16K2099/0084F16K2099/0094Y10T117/1004Y10T117/1008Y10T137/0318Y10T137/0396
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Quick Facts
Patent No.
US 9,205,423
App. No.
13/776,646
Granted
Dec 8, 2015
Kind
B2
Abstract

High throughput screening of crystallization of a target material is accomplished by simultaneously introducing a solution of the target material into a plurality of chambers of a microfabricated fluidic device. The microfabricated fluidic device is then manipulated to vary the solution condition in the chambers, thereby simultaneously providing a large number of crystallization environments. Control over changed solution conditions may result from a variety of techniques, including but not limited to metering volumes of crystallizing agent into the chamber by volume exclusion, by entrapment of volumes of crystallizing agent determined by the dimensions of the microfabricated structure, or by cross-channel injection of sample and crystallizing agent into an array of junctions defined by intersecting orthogonal flow channels.

Claims (9)

1. A method of priming a microfluidic device with a liquid material, the method comprising:

loading a plurality of wells on an upper surface of a microfluidic device with a liquid material;

biasing a holder piece against the upper surface such that a continuous raised rim of the holder piece presses against the upper surface surrounding the wells, such that a chamber is created over the wells; and

applying a positive pressure to the chamber to drive the material from the wells into an active area of the microfluidic device.

2. The method of claim 1 , wherein applying the positive pressure to the chamber comprises applying the positive pressure at between 5 and 7 pounds per square inch.

3. The method of claim 1 , wherein the raised rim deforms to engage the upper surface.

4. The method of claim 1 , wherein the upper surface deforms to engage the raised rim.

5. The method of claim 1 , wherein the active area of the microfluidic device comprises a dead-ended chamber or channel.

6. The method of claim 1 , wherein the liquid material is a crystallizing agent, wherein the active area contains a target material, and wherein applying the positive pressure to the chamber to drive the material into the active area of the microfluidic device includes driving a calibrated volume of the crystallizing agent into the active area to promote crystallization of the target material.

Assignments (1)
CONFIRMATORY LICENSE Recorded Oct 26, 2020
From: CALIFORNIA INSTITUTE OF TECHNOLOGY
To: NATIONAL INSTITUTES OF HEALTH
Reel/Frame 054170/0045 →
Continuity (8)
Continuation 11668263 · Jan 29, 2007
Division 10117978 · Apr 5, 2002
Continuation In Part 09887997 · Jun 22, 2001
Continuation In Part 09826583 · Apr 6, 2001
Continuation In Part 09724784 · Nov 28, 2000
Continuation In Part 09605520 · Jun 27, 2000
Provisional Application 60323524 · Sep 17, 2001
Related Publication 20140041727A1 · Feb 13, 2014