Claims
- 1. A device for amplifying a preselected polynucleotide in a sample by conducting a polynucleotide polymerization reaction, the device comprising:
a solid substrate microfabricated to define:
a sample inlet port; and a mesoscale flow system comprising:
a sample flow channel extending from said inlet port; and a polynucleotide polymerization reaction chamber, in fluid communication with said flow channel, containing reagents for the polymerization reaction; and means for thermally regulating the contents of said chamber whereby the temperature is controlled to amplify said preselected polynucleotide.
- 2. The device of claim 1, wherein said polymerization reaction is a polymerase chain reaction (PCR), and wherein said PCR chamber comprises: said preselected polynucleotide, a polymerase, nucleoside triphosphates, a first primer hybridizable with said sample polynucleotide, and a second primer hybridizable with a sequence complementary to said polynucleotide, wherein said first and second primers define the termini of the polynucleotide product of the polymerization reaction; and
wherein said means for thermally regulating comprises means for thermally-cycling the contents of said chamber between a temperature controlled to separate double stranded polynucleotide thereby to produce single stranded polynucleotide, to anneal said primers to complementary regions of single stranded polynucleotide, and to synthesize polynucleotide between said primers, thereby to amplify said preselected polynucleotide.
- 3. The device of claim 2 wherein said PCR chamber comprises:
a first section at a temperature which separates double stranded polynucleotide; a second section at a temperature which anneals said primers to complementary regions of single stranded polynucleotide; a flow path disposed between said first and second sections; and wherein said device includes means for repeatedly transporting the contents of said chamber between at least said first and said second sections to implement plural cycles of amplification of said polynucleotide.
- 4. The device of claim 3 wherein said first section is controlled at a temperature to separate double stranded polynucleotide; and
wherein said second section and said flow path are spaced apart from said first section such that upon transport of the contents of said chamber from said first section to said second section, the sample cools passively to a temperature sufficient to anneal primers to single stranded polynucleotide.
- 5. The device of claim 3 further comprising means for separately thermally controlling said first and said second sections.
- 6. The device of claim 4 further comprising means for thermally controlling said first section.
- 7. The device of claim 5 or 6 wherein said means for thermally controlling comprises electrical resistance means.
- 8. The device of claim 5 or 6 wherein said means for thermally controlling comprises means for providing electromagnetic energy into said PCR chamber.
- 9. The device of claim 2 wherein said substrate further comprises a second port in fluid communication with said PCR chamber.
- 10. The device of claim 1 further comprising means for detecting said amplified polynucleotide.
- 11. The device of claim 10 wherein said means for detecting comprises means for detecting resistance to flow of liquid in said flow passage caused by polynucleotide aggregation.
- 12. The device of claim 10, wherein said means for detecting said amplified polynucleotide comprises a mesoscale detection region disposed within said substrate in fluid communication with said reaction chamber; and
wherein the device further includes means for inducing flow through said reaction chamber to transport said amplified polynucleotide to said detection region.
- 13. The device of claim 12 wherein said detection region includes a polynucleotide probe capable of detectably binding to said amplified polynucleotide.
- 14. The device of claim 13, wherein said polynucleotide probe is immobilized on a magnetic bead.
- 15. The device of claim 14 wherein said detection region comprises a fractal flow region, in fluid communication with said flow channel, comprising bifurcations leading to plural secondary flow channels.
- 16. The device of claim 1, wherein the sample is a cell sample, the device further comprising:
cell lysing means, in fluid communication with said reaction chamber in said mesoscale flow system, for lysing a cell sample; and means for inducing flow of said sample to said cell lysing means then to said reaction chamber.
- 17. The device of claim 16 further comprising:
a cell separation region, upstream from said cell lysing means, for selectively capturing a preselected cell population, comprising binding moieties capable of binding said cell population; and means for inducing flow within said separation region:
at a first flow rate sufficiently slow to permit capture of said cell population in the sample by said binding sites to separate said cell population from said sample; and at a second higher flow rate sufficient to release said separated cell population from said separation region to said lysis region.
- 18. The device of claim 1 wherein said solid substrate comprises microfabricated silicon.
- 19. The device of claim 1 further comprising an appliance for use in combination with said substrate, said appliance comprising:
means for holding said substrate; and fluid input means interfitting with an inlet port on said substrate.
- 20. The device of claim 19 further comprising pump means for passing fluid through the flow system of said substrate when it is held in said holding means.
- 21. The device of claim 20 wherein said appliance further comprises a reagent reservoir and means for delivering a reagent to said flow system.
- 22. The device of claim 19 wherein said appliance includes means for heating said reaction chamber.
- 23. The device of claim 10, further comprising an appliance for use in combination with said substrate, said appliance comprising:
means for holding said substrate; and optical means for viewing the contents of said mesoscale flow system in said substrate.
- 24. The device of claim 23, wherein said optical means comprises magnifying optics and a video camera, and wherein said appliance further comprises:
a tilt mechanism for manually adjusting the angle and location of the device; and a video screen for viewing the contents of said flow system.
- 25. A device for amplifying a preselected polynucleotide in a sample by conducting a polymerase chain reaction (PCR), the device comprising:
a solid substrate microfabricated to define:
a sample inlet port; and a mesoscale flow system comprising:
a sample flow channel extending from said inlet port; and a PCR chamber, in fluid communication with said flow channel, for receiving said preselected polynucleotide and PCR reagents; and means for thermally cycling the contents of said chamber whereby, in each cycle, temperature is controlled to separate double stranded polynucleotide, and to synthesize polynucleotide, thereby to amplify said preselected polynucleotide.
- 26. The device of claim 25 wherein said flow system further comprises a detection chamber in fluid communication with said PCR chamber.
- 27. The device of claim 25 wherein said PCR chamber comprises:
a first section at a temperature which separates double stranded polynucleotide; a second section at a temperature which anneals single stranded polynucleotide, and which polymerizes and amplifies polynucleotide; a flow path disposed between said first and second sections; and means for repeatedly transporting the contents of said chamber between said first and said second sections to implement plural cycles of amplification of said polynucleotide.
- 28. The device of claim 25 further comprising an appliance for use in combination with said substrate, said appliance comprising:
a nesting site for holding said substrate, which comprises fluid input means interfitting with an inlet port on said substrate.
- 29. The device of claim 28 wherein said device includes electrical contacts fabricated in the substrate; and
wherein said nesting site further includes an electrical connection for interfitting with said electrical contact in said substrate.
- 30. The device of claim 28 wherein the appliance further comprises pump means for passing fluid through the flow system of said substrate when it is held in said holding means.
- 31. The device of claim 29 wherein said flow system further comprises a detection chamber in fluid communication with said PCR chamber.
- 32. The device of claim 28 wherein the appliance further comprises a power supply.
- 33. A method for amplifying a preselected polynucleotide in a sample by conducting a polynucleotide polymerization reaction, the method comprising:
(i) providing a device comprising:
a solid substrate microfabricated to define:
a sample inlet port; and a mesoscale flow system comprising:
a sample flow channel extending from said inlet port; and a polynucleotide polymerization reaction chamber in fluid communication with said flow channel; and means for thermally regulating the contents of said chamber at a temperature controlled to amplify said preselected polynucleotide; (ii) delivering, through said inlet port and said mesoscale flow system to said reaction chamber, said sample polynucleotide and reagents required for the polymerization reaction; and (iii) thermally controlling the contents of said chamber to polymerize said polynucleotide.
- 34. The method of claim 33, wherein said polymerization reaction is a polymerase chain reaction (PCR);
wherein, in step (i), said means for thermally controlling comprises means for thermally cycling the contents of said chamber; wherein step (ii) includes the step of adding to said PCR chamber: a polymerase, nucleoside triphosphates, a first primer hybridizable with said sample polynucleotide, and a second primer hybridizable with a sequence complementary to said polynucleotide, and wherein said first and second primers define the termini of the polynucleotide product of the polymerization reaction; and wherein step (iii) includes the step of thermally cycling the contents of said chamber whereby, in each cycle, the temperature is controlled to separate double stranded polynucleotide thereby to produce single stranded polynucleotide, to anneal complementary regions of single stranded polynucleotide, and to synthesize and polymerize polynucleotide between said primers.
- 35. The method of claim 34 wherein said PCR chamber is comprised of:
a first section at a temperature which separates double stranded polynucleotide; a second section at a temperature which anneals complementary regions of single stranded polynucleotide and polymerizes and amplifies polynucleotide; a flow path disposed between said first and second sections; and wherein the device further includes means for repeatedly transporting the contents of said chamber between said first and said second sections; and wherein step (iii) includes the step of repeatedly transporting the contents of said chamber between said first and said second sections to implement plural cycles of amplification of polynucleotide.
- 36. The method of claim 35 wherein said first section is controlled at a temperature to separate double stranded polynucleotide; and
wherein said second section and said flow path are spaced apart from said first section such that upon transport of the contents of said chamber from said first section to said second section, the sample cools substantially to a temperature to anneal and polymerize; and wherein step (iii) includes the step of repeatedly transporting the contents of said chamber between said first and second sections to polymerize said polynucleotide.
- 37. The method of claim 33, wherein the device further includes means for detecting said amplified polynucleotide, and wherein the method further comprises:
(iv) detecting said amplified polynucleotide.
- 38. The method of claim 37 wherein said detection means comprises means for detecting resistance to flow of liquid in said chamber caused by polynucleotide aggregation; and
wherein step (iv) includes the step of detecting resistance to flow with said detection means.
- 39. The method of claim 37, wherein said means for detecting said amplified polynucleotide comprises a mesoscale detection region disposed within said substrate in fluid communication with said reaction chamber; and
wherein said device further includes means for inducing flow through said reaction chamber to transport said amplified polynucleotide to said detection region; and wherein step (iv) includes the step of delivering said sample from said reaction chamber to said detection region with said transportation means and then detecting said amplified polynucleotide in said detection region.
- 40. The method of claim 39 wherein the detection region includes a polynucleotide probe capable of detectably binding to said sample polynucleotide; and
wherein, in step (iv), the binding of said sample polynucleotide to said probe is detected.
- 41. The method of claim 39 wherein the detection region comprises a fractal flow region in fluid communication with said flow channel comprising bifurcations leading to plural secondary flow channels; and
wherein, in step (iv), the flow of sample fluid through said fractal flow region is detected.
- 42. The method of claim 33 wherein the sample is a cell sample, and the device further comprises:
cell lysing means, in fluid communication with said reaction chamber, in said mesoscale flow system, for lysing a cell sample prior to delivery of the sample to the reaction chamber; and means for inducing flow of said sample through said cell lysing means to said reaction chamber; and wherein step (ii) includes the step of delivering said sample to said lysis means then to said reaction chamber.
- 43. The method of claim 42 wherein the device further comprises:
a cell separation region, prior to said cell lysis means, for selectively capturing a preselected cell population, comprising binding moieties capable of binding said cell population; and wherein step (ii) includes, prior to the delivery of the cell sample to said cell lysis means, the step of delivering said sample to said cell separation region
at a first flow rate sufficiently slow to permit capture of said cell population in the sample by said binding sites to separate said cell population from said sample; and at a second higher flow rate sufficient to release said separated cell population from said region to said cell lysis means.
REFERENCE TO RELATED APPLICATIONS
[0001] This application is being filed contemporaneously with the following related copending applications: U.S. Ser. No. (Attorney Docket No. UPA001 (8261/2)], Mesoscale Detection Structures; U.S. Ser. No. [Attorney Docket No. UPA002 (8261/3)], Analysis Based on Flow Restriction; U.S. Ser. No. (Attorney Docket No. UPA003 (8261/4)), Cell Handling in Mesoscale Analytical Devices; and U.S. Ser. No. (Attorney Docket No. UPA005 (8261/6)], Mesoscale Sperm Handling Devices, the disclosures of which are incorporated herein by reference.
Divisions (2)
|
Number |
Date |
Country |
Parent |
08614242 |
Mar 1996 |
US |
Child |
09212029 |
Dec 1998 |
US |
Parent |
08308199 |
Sep 1994 |
US |
Child |
08614242 |
Mar 1996 |
US |
Continuations (2)
|
Number |
Date |
Country |
Parent |
09212029 |
Dec 1998 |
US |
Child |
10426674 |
Apr 2003 |
US |
Parent |
07877662 |
May 1992 |
US |
Child |
08308199 |
Sep 1994 |
US |