Claims
- 1. A device for processing a fluid sample, having a plurality of noncontiguous reactive sites, each of said sites comprising:
(a) a substrate; (b) an immobilized biological moiety; (b) a monolayer chemisorbed or physisorbed on a portion of a surface of the substrate, said monolayer comprising molecules of the formulaX—R—Ywherein R is a spacer, X is a functional group that binds R to the surface, and Y is a functional group for binding said biological moiety onto the monolayer; and (c) an affinity tag, wherein said affinity tag enhances site-specific immobilization of said biological moiety onto the monolayer. wherein each of said sites may independently react with a component of the fluid sample and are separated from each other by a region of said substrate that is free of molecules of the formula X—R—Y.
- 2. A device of claim 1,
wherein said substrate is selected from the group consisting of silicon, silicon oxide, indium tin oxide, magnesium oxide, alumina, quartz, glass, and silica, wherein X, prior to incorporation into said monolayer, is selected from the group consisting of a monohalosilane, dihalosilane, trihalosilane, trichlorosilane, trialkoxysilane, dialkoxysilane, and monoalkoxysilane, wherein R is an alkyl from about 8 to 22 carbons long, and wherein Y comprises a functional group selected from the group consisting of a maleimide, N-hydroxysuccinimide, nitrilotriacetic acid, activated hydroxyl, haloacetyl, bromoacetyl, iodoacetyl, activated carboxyl hydrazide, epoxy, aziridine, trifluoromethyldiaziridine, pyridyldisulfide, N-acyl-imidazole, imidazolecarbamate, succinimidylcarbonate, arylazide, anhydride, diazoacetate, benzophenonee, isothiocyanate, isocyanate, imidoester, fluorobenzene, and biotin.
- 3. A device of claim 1, further comprising at least one coating between said substrate and said monolayer, wherein said coating is formed on the substrate or applied to the substrate.
- 4. A device of claim 3,
wherein said coating comprises a metal film, wherein X, prior to incorporation into said monolayer, is a functional group selected from the group consisting of an asymmetrical or symmetrical disulfide, sulfide, diselenide, selenide, thiol, isonitrile, selenol, trivalent phosphorus compounds, isothiocyanate, isocyanate, xanthanate, thiocarbamate, phosphines, amines, thio acid and dithio acid, wherein R is an alkyl chain from about 8 to about 22 carbons long, and wherein Y comprises a functional group selected from the group consisting of a maleimide, N-hydroxysuccinimide, nitrilotriacetic acid, activated hydroxyl, haloacetyl, bromoacetyl, iodoacetyl, activated carboxyl, hydrazide, epoxy, aziridine, trifluoromethyldiaziridine, pyridyldisulfide, N-acyl-imidazole, imidazolecarbamate, succinimidylcarbonate, arylazide, anhydride, diazoacetate, benzophenone, isothiocyanate, isocyanate, imidoester, fluorobenzene, and biotin.
- 5. A device of claim 1, wherein the monolayer of an individual reactive site comprises at least two different X—R—Y molecules.
- 6. A device of claim 1, wherein the monolayer of an individual reactive site further comprises a second molecule, wherein said second molecule is of the formula
- 7. A device of claim 1, wherein the device further comprises at least one unreactive site, wherein said unreactive site comprises a monolayer of molecules of the formula
- 8. A device of claim 1, further comprising crosslinking between molecules of the monolayer.
- 9. A device of claim 1, wherein said affinity tag comprises a natural or unnatural amino acid.
- 10. A device of claim 1, wherein said affinity tag comprises a poly(amino acid).
- 11. A device of claim 10, wherein said poly(amino acid) is selected from the group consisting of poly-cysteine, poly-lysine, poly-arginine, and poly-histidine.
- 12. A device of claim 1, wherein said affinity tag comprises a polypeptide or a protein.
- 13. A device of claim 1, wherein said affinity tag is a component of a layer of affinity tag molecules immobilized on said monolayer.
- 14. A device of claim 13, wherein said layer of affinity tag molecules comprises a hydrogel matrix.
- 15. A device of claim 1, wherein said affinity tag and said biological moiety together compose a fusion protein.
- 16. A device of claim 1, further comprising an adaptor molecule that links the affinity tag to the immobilized biological moiety.
- 17. A device of claim 16, wherein said adaptor molecule is a membrane anchor and wherein said affinity tag is a component of a layer of affinity tag molecules, said layer being selected from the group consisting of a phospholipid bilayer and a phospholipid monolayer.
- 18. A device of claim 16, wherein said adaptor molecule is a polypeptide or a protein.
- 19. A device of claim 18, wherein said adaptor molecule is selected from the group consisting of green fluorescent protein, glutathione S-transferase, maltose-binding protein, chitin-binding protein, and thioredoxin.
- 20. A device of claim 16, wherein the affinity tag, adaptor molecule, and biological moiety together compose a fusion protein.
- 21. A device of claim 1, wherein the biological moiety of one reactive site differs from the biological moiety of a second reactive site on the same device.
- 22. A device of claim 21, wherein the biological moieties are believed to be functionally related.
- 23. A device of claim 21, wherein the biological moieties are believed to be structurally related.
- 24. A device of claim 21, wherein the biological moieties are members of the same protein family.
- 25. A device of claim 24, wherein the biological moieties are selected from the group consisting of growth factor receptors, catecholamine receptors, amino acid derivative receptors, cytokine receptors, extracellular matrix receptors, immunoglobulins, lectins, cytokines, serpins, proteases, kinases, phosphatases, ras-like GTPases, hydrolases, steroid hormone receptors, heat-shock transcription factors, zinc-finger proteins, leucine-zipper proteins, homeodomain proteins, hepatitus C virus (HCV) proteases, and HIV proteases.
- 26. A device of claim 1, wherein the biological moiety of one reactive site is identical to the biological moiety of a second reactive site on the same device.
- 27. A device of claim 1, wherein said immobilized biological moiety is selected from the group consisting of a nucleic acid, a polypeptide, an antibody or fragment thereof, an epitope, a membrane protein, a hormone, and a small organic molecule which either has or is suspected of having a physiological function.
- 28. A device of claim 1, wherein said device comprises a micromachined device.
- 29. A device of claim 1, wherein each of said reactive sites is in a microchannel oriented parallel to microchannels of other reactive sites on the device, wherein said microchannels are microfabricated into or onto said substrate.
- 30. A device of claim 29, wherein said device comprises at least 10 microchannels.
- 31. A device of claim 30, wherein said device comprises from about 100 to about 500 microchannels.
- 32. A device of claim 29, wherein said device comprises from about 2 to about 500 parallel microchannels per cm2.
- 33. A device of claim 29, further comprising a cover over the microchannels.
- 34. A device of claim 33, wherein the volume of said microchannel is between about 5 nanoliters and about 300 nanoliters.
- 35. A device of claim 34, wherein the volume of said microchannel is between about 10 nanoliters and about 50 nanoliters.
- 36. A device of claim 29, wherein the width and depth of said microchannel each are between about 10 μm and about 500 μm.
- 37. A method for screening a plurality of biological moieties in parallel for their ability to interact with a component of a fluid sample, comprising:
(a) delivering the fluid sample to the reactive sites of a device of claim 1, wherein each reactive site of the device comprises a different biological moiety; and (b) detecting, either directly or indirectly, the interaction of said component with the immobilized biological moiety at each reactive site.
- 38. A method for screening a plurality of biological moieties in parallel for their ability to react with a component of a fluid sample, comprising:
(a) delivering the fluid sample to the reactive sites of a device of claim 1, wherein each reactive site of the device comprises a different biological moiety; and (b) detecting, either directly or indirectly, formation of product of the reaction of said component with the immobilized biological moiety at each reactive site.
- 39. A method for screening the ability of a drug candidate to inhibit the reaction of a plurality of members of a protein family with their substrate, comprising:
(a) combining the drug candidate and the substrate in a fluid sample; (b) delivering the fluid sample to the reactive sites of a device of claim 1, wherein each reactive site of the device comprises a different member of the protein family; and (c) detecting, either directly or indirectly, for the inhibition of product formation at each reactive site.
- 40. A method for screening a plurality of biological moieties in parallel for their ability to bind a component of a fluid sample, comprising:
(a) delivering said fluid sample to the reactive sites of a device of claim 1, wherein each reactive site of the device comprises a different biological moiety; (b) washing said reactive site with fluid which does not contain said component in order to elute unbound component; and (c) detecting, either directly or indirectly, the presence of said component retained at each reactive site.
- 41. A method for screening a plurality of biological moieties in parallel for their ability to bind a component of a fluid sample, comprising:
(a) adding a known ligand of said biological moieties to the fluid sample; (b) delivering the fluid sample to the reactive sites of a device of claim 1, wherein each reactive site of the device comprises a different biological moiety; (c) washing said reactive sites with fluid that does not contain either the known ligand or the component in order to elute unbound molecules of the known ligand and the component; (d) detecting the presence of the known ligand retained at each reactive site; and (e) comparing retention of the known ligand detected in step (d) with retention of the known ligand in the absence of said component.
- 42. A method for screening a plurality of drug candidates in parallel for their ability to inhibit a reaction of an enzyme with its substrate, comprising:
(a) adding the substrate to a plurality of fluid samples, each of the fluid samples containing at least one of the drug candidates; (b) delivering each of the fluid samples to a reactive site of the device of claim 1, wherein the reactive site comprises the immobilized enzyme; (c) detecting, either directly or indirectly, for inhibition of product formation at each reactive site.
- 43. A method for screening a plurality of binding candidates in parallel for their ability to bind a biological moiety, comprising:
(a) delivering different fluid samples, each containing at least one of the binding candidates, to the reactive sites of the device of claim 1, wherein the reactive sites each comprise the immobilized biological moiety; (b) washing the reactive sites with fluid which does not contain said binding candidate in order to elute unbound binding candidates; and (c) detecting, either directly or indirectly, the presence of said binding candidate retained at each reactive site.
- 44. A method for screening a plurality of binding candidates in parallel for their ability to bind a biological moiety, comprising:
(a) adding a known ligand of the biological moiety to a plurality of fluid samples, each of the fluid samples containing at least one of the binding candidates; (b) delivering a different fluid sample to each of the reactive sites of the device of claim 1, wherein the reactive sites of the device each comprise the immobilized biological moiety; (c) washing said reactive sites with fluid that does not contain either the known ligand or a binding candidate in order to elute unbound molecules of the known ligand and the binding candidate; (d) detecting the presence of the known ligand retained at each reactive site; and (e) comparing retention of the known ligand detected in step (d) with retention of the known ligand in the absence of said binding candidate.
- 45. A method for pairing a plurality of proteins with their substrates, comprising:
(a) delivering a fluid sample comprising a substrate of a known enzyme family to the reactive sites of a device of claim 1, wherein each reactive site of the device comprises a different protein; and (b) detecting, either directly or indirectly, for product formed by the reaction of the substrate with the protein of each reactive site.
- 46. A method for pairing a plurality of proteins with their ligands, comprising:
(a) delivering a fluid sample comprising a ligand of a known protein family to the reactive sites of a device of claim 1, wherein each reactive site of the device comprises a different protein; (b) washing the reactive sites with fluid that does not contain said ligand to remove unbound ligand; and (c) detecting, either directly or indirectly, the presence of the ligand retained at each reactive site.
- 47. A method for detecting in a fluid sample the presence of a plurality of analytes which react with said biological moieties, comprising:
(a) delivering the fluid sample to the reactive sites of a device of claim 1; and (b) detecting the interaction of the analyte with the immobilized biological moiety at each reactive site.
- 48. A method for detecting in a fluid sample the presence of a plurality of analytes which bind said biological moieties, comprising:
(a) delivering the fluid sample to the reactive sites of a device of claim 1;(c) washing said reactive sites with an analyte-free fluid to remove unbound analyte; and (b) detecting, either directly or indirectly, the presence of analyte retained at each reactive site.
- 49. A device for processing a fluid sample, comprising:
(a) a substrate; (b) a plurality of parallel microchannels microfabricated into or onto said substrate; and (c) a biological moiety immobilized within at least one of said parallel microchannels, wherein said biological moiety may interact with a component of the fluid sample.
- 50. A device of claim 49, wherein said device comprises at least 10 parallel microchannels.
- 51. A device of claim 50, wherein said device comprises from about 100 to about 500 parallel microchannels.
- 52. A device of claim 49, wherein said device comprises from about 2 to about 500 parallel microchannels per cm2.
- 53. A device of claim 49, further comprising a cover over the microchannels.
- 54. A device of claim 53, wherein the volume of each of said microchannels is between about 5 nanoliters and about 300 nanoliters.
- 55. A device of claim 54, wherein the volume of said microchannel is between about 10 nanoliters and about 50 nanoliters.
- 56. A device of claim 49, wherein the width and depth of said microchannels are each between about 10 μm and about 500 μm.
Parent Case Info
[0001] This application is a continuation of co-pending application Ser. No. 09/115,397, filed Jul. 14, 1998, which is incorporated herein by reference in its entirety for all purposes and the specific purposes disclosed throughout this application.
Continuations (1)
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Number |
Date |
Country |
Parent |
09115397 |
Jul 1998 |
US |
Child |
10112847 |
Mar 2002 |
US |