Claims
- 1. A microfluidic combinatorial chemical synthesis device comprising:
a plurality of microfluidic flow channels defined by an elastomeric layer and a solid support, wherein flow channels are adapted to allow flow of a solution therethrough, and wherein the solid support comprises a reactive functional group within an inner surface of the flow channels for attaching a reactive reagent thereto; a plurality of control channels; and a plurality of valves disposed in between said fluid flow channel and said control channel to regulate flow of the solution through said fluid flow channels, wherein each of said valves comprises one of said control channels and a segment of said elastomeric layer that is deflectable into or retractable from said fluid flow channel upon which said valve operates in response to an actuation force applied to said control channel, said elastomeric segment when positioned in said flow channel restricting solution flow therethrough.
- 2. The microfluidic combinatorial chemical synthesis device of claim 1, wherein the plurality of flow channels comprises a first set of flow channels and a second set of flow channels such that the first set of flow channels intersect the second set of flow channels, thereby forming a plurality of flow channel intersections.
- 3. The microfluidic combinatorial chemical synthesis device of claim 1, wherein the inner surface of said flow channel comprising said elastomeric layer is coated with a coating material that is substantially inert to the chemical reaction solvent.
- 4. The microfluidic combinatorial chemical synthesis device of claim 3, wherein said coating material is selected from the group consisting of a fluoropolymer, Vitrinite® protective coating, silicon dioxide, Cytop, and Teflon AF.
- 5. The microfluidic combinatorial chemical synthesis device of claim 1, wherein said elastomeric layer is disposed in between a solid support fluid flow channel layer and a control channel layer.
- 6. The microfluidic combinatorial chemical synthesis device of claim 5, wherein the solid support fluid flow channel layer is comprised of a material selected from the group consisting of glass, polystyrene, polystyrene-divinylbenzene copolymer, silicone rubber, quartz, latex, polyurethane, a derivatizable transition metal, silicon dioxide, silicon nitride, gallium arsenide, and a derivative thereof.
- 7. The microfluidic combinatorial chemical synthesis device of claim 6, wherein said derivatizable transition metal is gold.
- 8. The microfluidic combinatorial chemical synthesis device of claim 5, wherein said solid support is a rigid material.
- 9. The microfluidic combinatorial chemical synthesis device of claim 8, wherein said fluid flow channel is formed from a channel within the rigid material.
- 10. The microfluidic combinatorial chemical synthesis device of claim 9, wherein said control channel layer is made from a rigid material.
- 11. The microfluidic combinatorial chemical synthesis device of claim 10, wherein said elastomeric layer is removeably disposed in between two rigid materials, such that said elastomeric layer forms a part of said fluid flow channels and said control channels.
- 12. The microfluidic combinatorial chemical synthesis device of claim 1, wherein at least a portion of said plurality of control channels are aligned in between said fluid flow channels.
- 13. The microfluidic combinatorial chemical synthesis device of claim 12, wherein at least a portion of said control channels is aligned on top of said fluid flow channels.
- 14. The microfluidic combinatorial chemical synthesis device of claim 13, wherein said control channels aligned on top of said fluid flow channels comprise a varying cross-sections within each control channels, such that when said control channel is actuated only the valves comprising a wide cross-section control channel restricts solution flow.
- 15. A method for synthesizing a library of compound on a microfluidic device comprising (i) a plurality of fluid flow channels defined by an elastomeric layer and a solid support, where in the flow channels are adapted to allow the flow of a solution therethrough, and wherein the solid support comprises a reactive functional group with the inner surface of the flow channels for attaching a reactive reagent thereto; (ii) a means for rendering the elastomeric layer of the inner surface of the flow channels substantially inert to a chemical reaction solvent; (iii) a plurality of control channels; and (iv) a plurality of valves disposed in between the fluid flow channel and the control channel to regulate flow of the solution through the fluid flow channels, wherein each of the valves comprises one of the control channels and a segment of the elastomeric layer that is deflectable into or retractable from the fluid flow channel upon which the valve operates in response to an actuation force applied to the control channel, the elastomeric segment when positioned in the flow channel restricting solution flow therethrough, said method comprising:
(a) producing a solid-support bound compound by introducing a first reactive reagent into the fluid flow channels under conditions sufficient to covalently attach at least a portion of the first reactive reagent to the reactive functional group of the inner surface of the fluid flow channel; (b) modifying the solid support-bound compound by introducing another reactive reagent into the fluid flow channels under conditions sufficient to react the solid-support bound compound with the reactive reagent; and (c) optionally repeating said step (b).
- 16. The method of claim 15, wherein said step of introducing a reactive reagent in said step (a) or (b) or both comprises introducing different reactive reagents to different flow channels.
- 17. The method of claim 16, wherein a homogeneous reagent is added to each of the flow channels.
- 18. The method of claim 15 further comprising cleaving the library of solid-support bound compounds from the solid support.
- 19. The method of claim 15, wherein said means for rendering the elastomeric layer of the inner surface of the flow channels substantially inert to a chemical reaction solvent comprises a coating material that is substantially inert to the chemical reaction solvent.
- 20. The method of claim 19, wherein the coating material is selected from the group consisting of a fluoropolymer, Vitrinite® protective coating, silicon dioxide, Cytop and Teflon AF.
- 21. The method of claim 15, wherein said means for rendering the elastomeric layer of the inner surface of the flow channels substantially inert to a chemical reaction solvent comprises providing a laminar flow of a sheath fluid in between the chemical reaction mixture and the elastomeric layer portion of the inner surface, wherein the sheath fluid is compatible with the chemical reaction solvent and the elastomeric layer.
- 22. The method of claim 15, wherein the microfluidic device comprises an elastic layer and a solid support, and wherein the fluid flow channel is located on the interface of the elastic layer and the solid support.
- 23. The method of claim 22, wherein prior to said step (b) of introducing another reagent, said method further comprises:
(A) removing the elastic layer from the solid support; and (B) reattaching the elastic layer to the solid support at a different angle, such that the newly formed flow channels intersect the flow channels of the microfluidic device of said step (a).
- 24. The method of claim 15, wherein the plurality of flow channels comprises a first set of flow channels and a second set of flow channels such that the first set of flow channels intersect the second set of flow channels, thus resulting in a plurality of flow channel intersections.
- 25. The method of claim 24, wherein the reactive reagent in said step (a) is introduced into the first set of flow channels and the reactive reagent in said step (b) is introduced into the second set of flow channels.
- 26. The method of claim 15, wherein said step of introducing the reactive reagent comprises actuating the control channels to regulate flow of the solution through the fluid flow channels.
- 27. The method of claim 15, wherein the microfluidic device comprises a thin layer of an elastomeric layer disposed in between two solid support bases.
- 28. The method of claim 27, wherein the fluid flow channels and the control channels are separated by the elastomeric layer.
- 29. The method of claim 28, wherein the fluid flow channels and the control channels are located on the interface of the elastomeric layer and the solid support.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a Continuation-In-Part Application of U.S. patent application Ser. No. 09/679,432, filed Oct. 3, 2000, which is incorporated herein by reference in its entirety.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH
[0002] The U.S. Government has a paid-up license in this invention and the right in limited circumstances to require the patent owner to license others on reasonable terms as provided for by the terms of Grant No. HG-01642-02, awarded by the National Institutes of Health.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09679432 |
Oct 2000 |
US |
Child |
10116761 |
Apr 2002 |
US |