Claims
- 1. A method of immobilizing biomolecules or cells to a metal substrate comprising:
(a) depositing an ω-modified alkanethiol monolayer on a metal substrate; (b) contacting the ω-modified monolayer of step (a) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol monolayer and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the ω-modified alkanethiol monolayer via the first moiety; (c) deprotecting the second moiety of the heterobifunctional compound to yield an unprotected thiol moiety; and then (d) attaching a biomolecule or cell to the unprotected thiol moiety of step (c).
- 2. The method of claim 1, wherein in step (a), an amino-C8-C24-alkanethiol is deposited on the metal substrate.
- 3. The method of claim 1, wherein in step (a), MUAM is deposited on the metal substrate.
- 4. The method of claim 1, wherein in step (b), the ω-modified monolayer is contacted with a heterobifunctional compound wherein the first moiety comprises a succinimidyl group.
- 5. The method of claim 1, wherein in step (b), the ω-modified monolayer is contacted with N-succinimidyl-5-acetylthiopropionate.
- 6. The method of claim 1, wherein in step (d), a DNA molecule is attached to the unprotected thiol moiety.
- 7. The method of claim 1, wherein in step (d), an RNA molecule is attached to the unprotected thiol moiety.
- 8. The method of claim 1, wherein in step (d), a polypeptide molecule is attached to the unprotected thiol moiety.
- 9. The method of claim 1, wherein in step (d), a protein molecule is attached to the unprotected thiol moiety.
- 10. The method of claim 1, wherein in step (d), a glutathione-containing molecule is attached to the unprotected thiol moiety.
- 11. The method of claim 10, further comprising, after step (d), step (e): contacting a GST-containing molecule to the glutathione-containing molecule, whereby the GST-containing molecule is reversibly adhered to the glutathione-containing molecule.
- 12. The method of claim 11, wherein in step (e), a GST fusion protein is contacted to the glutathione-containing molecule.
- 13. The method of claim 1, wherein in step (d), the biomolecule or cell is attached to the unprotected thiol moiety via a linker molecule.
- 14. The method of claim 13, wherein in step (d), the biomolecule or cell is attached to the unprotected thiol moiety via a maleimide-containing linker molecule.
- 15. The method of claim 14, wherein in step (d), the maleimide-containing linker is SSMCC.
- 16. The method of claim 1, wherein in step (a) the n)-modified alkanethiol monolayer is deposited on a metal substrate selected from the group consisting of gold, silver, copper, nickel, platinum, palladium, rhodium, and titanium.
- 17. A method of making a biomolecule or cellular array on a metal substrate comprising:
(a) depositing an alkanethiol monolayer on a metal substrate; (b) removing the alkanethiol monolayer from the substrate at discrete areas to create an array of exposed metal substrate areas; (c) depositing ω-modified alkanethiol in the areas of exposed metal substrate, thereby yielding an array of discrete, unprotected ω-modified alkanethiol spots; (d) contacting the discrete, unprotected ω-modified alkanethiol spots of step (c) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol spots and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the ω-modified alkanethiol spots via the first moiety; (e) deprotecting the second moiety of the heterobifunctional compound to yield an array of unprotected thiol moieties; and then (f) attaching biomolecules or cells to the array of unprotected thiol moieties of step (e), thereby yielding a biomolecule or cellular array on the metal substrate.
- 18. The method of claim 17, wherein in step (a), a C6-C24 alkanethiol is deposited on the metal substrate.
- 19. The method of claim 17, wherein in step (b), the monolayer is removed by selective exposure to UV radiation.
- 20. The method of claim 17, wherein in step (c), an amino-C8-C24-alkanethiol is deposited in the areas of exposed metal substrate.
- 21. The method of claim 17, wherein in step (c), MUAM is deposited in the areas of exposed metal substrate.
- 22. The method of claim 17, wherein in step (d), the discrete, unprotected ω-modified alkanethiol spots are contacted with a heterobifunctional compound wherein the first moiety comprises a succinimidyl group.
- 23. The method of claim 17, wherein in step (d), the discrete, unprotected ω-modified alkanethiol spots are contacted with N-succinimidyl-5-acetylthiopropionate.
- 24. The method of claim 17, wherein in step (f), DNA molecules are attached to the array of unprotected thiol moieties.
- 25. The method of claim 17, wherein in step (f), RNA molecules are attached to the array of unprotected thiol moieties.
- 26. The method of claim 17, wherein in step (f), polypeptide molecules are attached to the array of unprotected thiol moieties.
- 27. The method of claim 17, wherein in step (f), protein molecules are attached to the array of unprotected thiol moieties.
- 28. The method of claim 17, wherein in step (f), glutathione-containing molecules are attached to the array of unprotected thiol moieties.
- 29. The method of claim 28, further comprising, after step (f), step (g): contacting GST-containing molecules to the glutathione-containing molecules, whereby the GST-containing molecules are reversibly adhered to the glutathione-containing molecules.
- 30. The method of claim 29, wherein in step (g), GST fusion proteins are contacted to the glutathione-containing molecules.
- 31. The method of claim 17, wherein in step (f), the biomolecules or cells are attached to the array of unprotected thiol moieties via a linker molecule.
- 32. The method of claim 31, wherein in step (f), the biomolecules or cells are attached to the array of unprotected thiol moieties via a maleimide-containing linker molecule.
- 33. The method of claim 32, wherein in step (f), the maleimide-containing linker is SSMCC.
- 34. The method of claim 17, wherein in step (a) the ω-modified alkanethiol monolayer is deposited on a metal substrate selected from the group consisting of gold, silver, copper, nickel, platinum, palladium, rhodium, and titanium.
- 35. A method of immobilizing biomolecules or cells to a metal substrate comprising:
(a) depositing an ω-modified alkanethiol monolayer on a metal substrate; (b) contacting the ω-modified monolayer of step (a) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol monolayer and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the ω-modified alkanethiol monolayer via the first moiety; (c) deprotecting the second moiety of the heterobifunctional compound to yield an unprotected thiol moiety; (d) contacting the unprotected thiol moiety of step (c) with a disulfide-containing compound under conditions wherein the disulfide-containing compound undergoes a thiol-disulfide exchange reaction with the unprotected thiol moiety, whereby the unprotected thiol moiety is converted into a disulfide link; and then (e) reacting a thiol-containing biomolecule or cell with the disulfide link created in step (d), whereby the biomolecule or cell is immobilized on the metal substrate.
- 36. The method of claim 35, wherein in step (a), an amino-C8-C24-alkanethiol is deposited on the metal substrate.
- 37. The method of claim 35, wherein in step (a), MUAM is deposited on the metal substrate.
- 38. The method of claim 35, wherein in step (b), the ω-modified monolayer is contacted with a heterobifunctional compound wherein the first moiety comprises a succinimidyl group.
- 39. The method of claim 35, wherein in step (b), the ω-modified monolayer is contacted with N-succinimidyl-5-acetylthiopropionate.
- 40. The method of claim 35, wherein in step (d), the unprotected thiol moiety is contacted with 2,2-dipyridyl disulfide.
- 41. The method of claim 35, wherein in step (e), a thiol-modified DNA molecule is reacted with the disulfide link of step (d).
- 42. The method of claim 35, wherein in step (e), a thiol-modified RNA molecule is reacted with the disulfide link of step (d).
- 43. The method of claim 35, wherein in step (e), a thiol-containing polypeptide molecule is reacted with the disulfide link of step (d).
- 44. The method of claim 35, wherein in step (e), a thiol-containing protein molecule is reacted with the disulfide link of step (d).
- 45. The method of claim 35, wherein in step (e), a glutathione-containing molecule is reacted with the disulfide link of step (d).
- 46. The method of claim 45, further comprising, after step (e), step (f): contacting a GST-containing molecule to the glutathione-containing molecule, whereby the GST-containing molecule is reversibly adhered to the glutathione-containing molecule.
- 47. The method of claim 46, wherein in step (f), a GST fusion protein is contacted to the glutathione-containing molecule.
- 48. The method of claim 35, wherein in step (a) the ω-modified alkanethiol monolayer is deposited on a metal substrate selected from the group consisting of gold, silver, copper, nickel, platinum, palladium, rhodium, and titanium.
- 49. A method of making a biomolecule or cellular array on a metal substrate comprising:
(a) depositing an alkanethiol monolayer on a metal substrate; (b) removing the alkanethiol monolayer from the substrate at discrete areas to create an array of exposed metal substrate areas; (c) depositing ω-modified alkanethiol in the areas of exposed metal substrate, thereby yielding an array of discrete, unprotected ω-modified alkanethiol spots; (d) contacting the discrete, unprotected ω-modified alkanethiol spots of step (c) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol spots and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the ω-modified alkanethiol spots via the first moiety; (e) deprotecting the second moiety of the heterobifunctional compound to yield an array of unprotected thiol moieties; and then (f) contacting the unprotected thiol moieties of step (e) with a disulfide-containing compound under conditions wherein the disulfide-containing compound undergoes a thiol-disulfide exchange reaction with the unprotected thiol moieties, whereby the unprotected thiol moieties are converted into disulfide links; and then (g) reacting thiol-containing biomolecules or cells with the disulfide links created in step (f), thereby yielding a biomolecule or cellular array on the metal substrate.
- 50. The method of claim 49, wherein in step (a), a C6-C24 alkanethiol is deposited on the metal substrate.
- 51. The method of claim 49, wherein in step (b), the monolayer is removed by selective exposure to UV radiation.
- 52. The method of claim 49, wherein in step (c), an amino-C8-C24-alkanethiol is deposited in the areas of exposed metal substrate.
- 53. The method of claim 49, wherein in step (c), MUAM is deposited in the areas of exposed metal substrate.
- 54. The method of claim 49, wherein in step (d), the discrete, unprotected ω-modified alkanethiol spots are contacted with a heterobifunctional compound wherein the first moiety comprises a succinimidyl group.
- 55. The method of claim 49, wherein in step (d), the discrete, unprotected ω-modified alkanethiol spots are contacted with N-succinimidyl-5-acetylthiopropionate.
- 56. The method of claim 49, wherein in step (f), the unprotected thiol moieties are contacted with 2,2-dipyridyl disulfide.
- 57. The method of claim 49, wherein in step (g), thiol-modified DNA molecules are reacted with the disulfide links of step (f).
- 58. The method of claim 49, wherein in step (g), thiol-modified RNA molecules are reacted with the disulfide links of step (f).
- 59. The method of claim 49, wherein in step (g), thiol-containing polypeptide molecules are reacted with the disulfide links of step (f).
- 60. The method of claim 49, wherein in step (g), thiol-containing protein molecules are reacted with the disulfide links of step (f).
- 61. The method of claim 49, wherein in step (g), glutathione-containing molecules are reacted with the disulfide links of step (f).
- 62. The method of claim 61, further comprising, after step (g), step (h): contacting GST-containing molecules to the glutathione-containing molecules, whereby the GST-containing molecules are reversibly adhered to the glutathione-containing molecules.
- 63. The method of claim 62, wherein in step (h), GST fusion proteins are contacted to the glutathione-containing molecules.
- 64. The method of claim 49, wherein in step (a) the ω-modified alkanethiol monolayer is deposited on a metal substrate selected from the group consisting of gold, silver, copper, nickel, platinum, palladium, rhodium, and titanium.
- 65. A method of immobilizing a biomolecule to a metal substrate comprising:
(a) depositing an ω-modified alkanethiol monolayer on a metal substrate; (b) contacting the ω-modified monolayer of step (a) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol monolayer and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the R-modified alkanethiol monolayer via the first moiety; (c) deprotecting the second moiety of the heterobifunctional compound to yield an unprotected thiol moiety; (d) attaching a glutathione-containing molecule to the unprotected thiol moiety of step (c); and then (e) contacting a GST-containing molecule to the glutathione-containing molecule, whereby the GST-containing molecule is reversibly adhered to the glutathione-containing molecule.
- 66. The method of claim 65, wherein in step (e), a GST fusion protein is contacted to the glutathione-containing molecule.
- 67. A method of making a biomolecule array on a metal substrate comprising:
(a) depositing an alkanethiol monolayer on a metal substrate; (b) removing the alkanethiol monolayer from the substrate at discrete areas to create an array of exposed metal substrate areas; (c) depositing ω-modified alkanethiol in the areas of exposed metal substrate, thereby yielding an array of discrete, unprotected ω-modified alkanethiol spots; (d) contacting the discrete, unprotected ω-modified alkanethiol spots of step (c) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol spots and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the ω-modified alkanethiol spots via the first moiety; (e) deprotecting the second moiety of the heterobifunctional compound to yield an array of unprotected thiol moieties; and then (f) attaching glutathione-containing molecules to the array of unprotected thiol moieties of step (e), thereby yielding an array of glutathione-containing molecules on the metal substrate; and then (g) contacting GST-containing molecules to the glutathione-containing molecules of step (f), whereby the GST-containing molecules are reversibly adhered to the glutathione-containing molecules.
- 68. The method of claim 67, wherein in step (g), GST fusion proteins are contacted to the glutathione-containing molecules.
- 69. A method of immobilizing a biomolecule to a metal substrate comprising:
(a) depositing an ω-modified alkanethiol monolayer on a metal substrate; (b) contacting the ω-modified monolayer of step (a) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol monolayer and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the ω-modified alkanethiol monolayer via the first moiety; (c) deprotecting the second moiety of the heterobifunctional compound to yield an unprotected thiol moiety; (d) contacting the unprotected thiol moiety of step (c) with a disulfide-containing compound under conditions wherein the disulfide-containing compound undergoes a thiol-disulfide exchange reaction with the unprotected thiol moiety, whereby the unprotected thiol moiety is converted into a disulfide link; (e) reacting a glutathione-containing molecule with the disulfide link created in step (d), whereby the glutathione-containing molecule is immobilized on the metal substrate; and then (f) contacting a GST-containing molecule to the glutathione-containing molecule of step (e), whereby the GST-containing molecule is reversibly adhered to the glutathione-containing molecule.
- 70. The method of claim 69, wherein in step (f), a GST fusion protein is contacted to the glutathione-containing molecule.
- 71. A method of making a biomolecule array on a metal substrate comprising:
(a) depositing an alkanethiol monolayer on a metal substrate; (b) removing the alkanethiol monolayer from the substrate at discrete areas to create an array of exposed metal substrate areas; (c) depositing ω-modified alkanethiol in the areas of exposed metal substrate, thereby yielding an array of discrete, unprotected ω-modified alkanethiol spots; (d) contacting the discrete, unprotected ω-modified alkanethiol spots of step (c) with a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol spots and a second moiety comprising a protected thiol moiety, under conditions wherein the heterobifunctional compound binds to the ω-modified alkanethiol spots via the first moiety; (e) deprotecting the second moiety of the heterobifunctional compound to yield an array of unprotected thiol moieties; and then (f) contacting the unprotected thiol moieties of step (e) with a disulfide-containing compound under conditions wherein the disulfide-containing compound undergoes a thiol-disulfide exchange reaction with the unprotected thiol moieties, whereby the unprotected thiol moieties are converted into disulfide links; (g) reacting glutathione-containing molecules with the disulfide links created in step (f), whereby the glutathione-containing molecules are immobilized on the metal substrate; and then (h) contacting GST-containing molecules to the glutathione-containing molecules of step (g), whereby the GST-containing molecules are reversibly adhered to the glutathione-containing molecules.
- 72. The method of claim 71, wherein in step (h), GST fusion proteins are contacted to the glutathione-containing molecules.
- 73. A biomolecule or cellular array produced by the method of claim 17.
- 74. A biomolecule or cellular array produced by the method of claim 49.
- 75. A biomolecule array produced by the method of claim 67.
- 76. A biomolecule array produced by the method of claim 71.
- 77. A composition of matter comprising:
a metal substrate; an ω-modified alkanethiol monolayer adhered to the metal substrate; a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol monolayer and a second moiety comprising a thiol moiety, wherein the heterobifunctional compound is bonded to the ω-modified alkanethiol monolayer via the first moiety; a glutathione-containing molecule bonded to the thiol moiety of the heterobifunctional compound; a GST-containing biomolecule adhered to the glutathione-containing molecule, whereby the GST-containing biomolecule is reversibly adhered to the glutathione-containing molecule.
- 78. A composition of matter comprising:
a metal substrate; an ω-modified alkanethiol monolayer adhered to the metal substrate; a heterobifunctional compound comprising a first moiety reactive with the ω-modified alkanethiol monolayer and a second moiety comprising a sulfur atom capable of forming a disulfide bond, wherein the heterobifunctional compound is bonded to the ω-modified alkanethiol monolayer via the first moiety; a glutathione-containing molecule bonded to the sulfur atom of the heterobifunctional compound via a disulfide link; a GST-containing biomolecule adhered to the glutathione-containing molecule, whereby the GST-containing biomolecule is reversibly adhered to the glutathione-containing molecule.
Parent Case Info
[0001] Priority is hereby claimed to provisional application Serial No. 60/xxx,yyy, filed Mar. 6, 2002, and Ser. No. 60/304,246, filed Jul. 10, 2001, the contents of both of which are incorporated herein by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60362178 |
Mar 2002 |
US |
|
60304246 |
Jul 2001 |
US |