Claims
- 1. A microfluidic device for nucleic acid and/or protein analysis, wherein said device comprises a capillary on the inner surface of which is attached an array of at least two reagents.
- 2. The microfluidic device according to claim 1, wherein said capillary is rigid.
- 3. The microfluidic device according to claim 1, wherein said capillary is made of glass.
- 4. The microfluidic device according to claim 1, wherein said capillary has a diameter of between about 10 and about 500 μm, or between about 1 and about 200 μm.
- 5. The microfluidic device according to claim 1, wherein said at least two reagents are attached to a specific area of said inner surface of said capillary.
- 6. The microfluidic device according to claim 1, wherein said at least two reagents are permanently attached to said inner surface of said capillary.
- 7. The microfluidic device according to claim 1, wherein said at least two reagents are released from said inner surface of said capillary.
- 8. The microfluidic device according to claim 1, wherein said microfluidic device is a flow reactor for immobilizing or synthesizing in situ said array of at least two reagents.
- 9. The microfluidic device according to claim 1, wherein said microfluidic device is an analyzer of nucleic acids and/or proteins.
- 10. The microfluidic device according to claim 1, wherein said microfluidic device serially is a flow reactor for immobilizing or synthesizing in situ said array of at least two reagents and an analyzer of nucleic acids and/or proteins.
- 11. The microfluidic device according to claim 9, wherein said at least two reagents are probes in a multiplex hybridization analysis.
- 12. The microfluidic device according to claim 10, wherein said at least two reagents are probes in a multiplex hybridization analysis.
- 13. The microfluidic device according to claim 1, wherein there is a fluid flow in said capillary, which is pressure-induced, and/or electro-kinetically induced, and/or induced by capillary forces.
- 14. The microfluidic device according to claim 1, further comprising a temperature-regulating system to control temperature in said capillary.
- 15. A capillary comprising an inner surface to which is attached an array of at least two reagents.
- 16. The capillary according to claim 15, wherein said capillary has a diameter of between about 10 and about 500 μm, or between about 1 and about 200 μm.
- 17. The capillary according to claim 15, wherein said capillary is rigid.
- 18. The capillary according to claim 15, wherein said capillary is made of glass.
- 19. The capillary according to claim 15, wherein said at least two reagents are attached to a specific area of said inner surface.
- 20. The capillary according to claim 15, wherein said at least two reagents are permanently attached to said inner surface.
- 21. The capillary according to claim 15, wherein said at least two reagents are released from said inner surface.
- 22. The capillary according to claim 15, wherein said at least two reagents are probes in a multiplex hybridization analysis.
- 23. A method for attaching reagents on the inner surface of a capillary, said method comprising:
a) functionalizing said inner surface of said capillary using a linker modified with a removable protective group; b) generating free reactive moieties on said inner surface of said capillary by deprotecting said linker; c) sequentially immobilizing pre-synthesized reagents on said free reactive moieties; and d) repeating steps b) and c) until said reagents are attached.
- 24. The method according to claim 23, wherein said sequential immobilization in step c) is performed on a specific area of said inner surface of said capillary through covalent binding.
- 25. The method according to claim 23, wherein said removable protective group in step a) is a photo-chemically removable protective group.
- 26. The method according to claim 23, wherein said deprotection of said linker in step b) is mediated by light irradiation.
- 27. The method according to claim 26, wherein said light irradiation is a laser light irradiation.
- 28. The method according to claim 26, wherein said light irradiation is directed at a specific area of said inner surface of said capillary.
- 29. A method for attaching reagents on the inner surface of a capillary, said method comprising:
a) functionalizing said inner surface of said capillary using a linker modified with a removable protective group; b) generating free reactive moieties on said inner surface of said capillary by deprotecting said linker; c) introducing a chemical building block in said capillary; d) discarding said chemical building block which in excess; and e) repeating steps b), c) and d) until said reagents are built up.
- 30. The method according to claim 29, wherein said reagents are oligonucleotides.
- 31. The method according to claim 29, wherein said chemical building block in steps c) and d) is a hydroxyl-protected deoxyribonucleoside phosphoramidite.
- 32. The method according to claim 29, wherein said removable protective group in step a) is a photo-chemically removable protective group.
- 33. The method according to claim 29, wherein said deprotection of said linker in step b) is mediated by light irradiation.
- 34. The method according to claim 33, wherein said light irradiation is a laser light irradiation.
- 35. The method according to claim 33, wherein said light irradiation is directed at a specific area of said inner surface of said capillary.
- 36. A method for analyzing nucleic acids and/or proteins, said method enabling a multiplex analysis to be performed, wherein said method comprises:
a) introducing a sample into a microfluidic device according to claim 1;b) allowing said sample to react with reagents attached to the inner surface of the capillary contained in said microfluidic device; and c) detecting light emission using an excitation light source associated to a detector.
- 37. The method according to claim 36, wherein in step a), said sample has a volume of between about 1 and about 500 nl, or between about 0.1 and about 50 nl, or between about 1 and about 500 pl.
- 38. The method according to claim 36, wherein in step a), said sample is introduced by a continuous flow.
- 39. The method according to claim 36, wherein in step a), said sample is introduced using pressure, and/or electro-kinetic forces, and/or capillary forces.
- 40. The method according to claim 36, wherein in step b), said sample hybridizes to reagents being probes.
- 41. The method according to claim 36, wherein in step c), said microfluidic device is moved and said excitation light source is fixed, and wherein said detection in step c) is performed at a single point of said microfluidic device.
- 42. The method according to claim 36, wherein in step c), said excitation light source is moved and said microfluidic device is fixed, and wherein said detection in step c) is performed along the length of said microfluidic device.
- 43. The method according to claim 36, wherein in step c), said microfluidic device is entirely light-excited, and wherein the whole emitted light is detected in said detection step c) at once.
- 44. The method according to claim 36, wherein said detection in step c) is performed by direct fluorescence.
- 45. The method according to claim 36, wherein after said detection in step c), a barcode specific to said sample is obtained.
- 46. The method according to claim 36, wherein said nucleic acid analysis is selected from the group comprising: nucleotide polymorphism detection, mutation detection, genotyping, gene expression analysis, mRNA characterization, mRNA quantification, infectious agent detection, and individual identification.
- 47. The method according to claim 36, wherein said protein analysis is selected from the group comprising: protein quantification, protein-protein interaction detection, protein-nucleic acid interaction detection, protein function analysis, enzymatic activity analysis, enzymatic binding kinetics determination, and drug screening.
- 48. A barcode obtainable by a method according to claim 36, wherein said barcode is specific to a sample.
- 49. A method for analyzing nucleic acids and/or proteins, said method enabling a multiplex analysis to be performed, wherein said method comprises:
a) introducing a sample into a microfluidic device according to claim 1;b) allowing said sample to react with the reagents attached to the inner surface of the capillary contained in said microfluidic device; c) releasing sample-reagent interacting products formed in said step b) from said inner surface of said capillary; and d) detecting light emission outside said capillary using an excitation light source associated to a detector.
- 50. The method according to claim 49, wherein said sample-reagent interacting products released in said step c) are used as reporters, and/or in a feedback mode to detect changes in the flow rate during analysis.
Parent Case Info
[0001] The present invention claims priority from U.S. provisional application No. 60/288,526 filed on May 3, 2001, the text of which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60288526 |
May 2001 |
US |