Claims
- 1. A system, comprising: a surface based array comprised of at least one biological molecule arrayed on a surface; a solution phase biological molecule in communication with said surface, wherein said biological molecule arrayed on a surface and said solution based biological molecule are configured for performing at least three operations.
- 2. The system of claim 1, wherein said at least three operations are selected from the group consisting of hybridization, oligonucleotide duplex denaturation, endonucleolytic digestion, exonucleolytic digestion, polynucleotide synthesis, ligation, and detection.
- 3. The system of claim 2, wherein said at least three operations are four or more operations.
- 4. The system of claim 1, wherein said biological molecule arrayed on a surface is a WORD string.
- 5. The system of claim 4, wherein said WORD string comprises two or more unique WORDs.
- 6. The system of claim 4, wherein said WORD string comprises three or more unique WORDs.
- 7. The system of claim 4, wherein said WORD string comprises an oligonucleotide strand, wherein said oligonucleotide strand has a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second oligonucleotide strand define a site for cleavage by an enzyme, a plurality of said WORD portions, a primer binding site, and a linker region attached to said surface, wherein said linker portion having sufficient length such that in the presence of said second strand said enzyme can cleave the site.
- 8. The system of claim 7, wherein said WORD portion comprising a variable portion and a label portion flanking the variable portion.
- 9. The system of claim 1, wherein said biological molecule arrayed on a surface is selected from the group consisting of a nucleic acid, a polypeptide, a peptide, and a carbohydrate.
- 10. The system of claim 1, wherein said solution phase biological molecule is selected from the group consisting of a nucleic acid, a protein nucleic acid, a locked nucleic acid, a polypeptide, and a peptide.
- 11. A method, comprising:
a) Providing:
i) At least one biological molecule arrayed on a solid surface; ii) a solution phase biological molecule in communication with said solid-phase biological molecule under conditions such that said solution phase biological molecule and said solid phase biological molecule can interact; and b) Performing at least three operations on said interacting solid phase biological molecule in communication with said solution phase biological molecule.
- 12. The method of claim 11, wherein said at least three operations are selected from the group consisting of hybridization, oligonucleotide duplex denaturation, endonucleolytic digestion, exonucleolytic digestion, polynucleotide synthesis, ligation, and detection.
- 13. The method of claim 12, wherein said at least three operations are four or more operations.
- 14. The method of claim 11, wherein said biological molecule arrayed on a surface is a WORD string.
- 15. The method of claim 14, wherein said WORD string comprises two or more unique WORDs.
- 16. The method of claim 14, wherein said WORD string comprises three or more unique WORDs.
- 17. The method of claim 14, wherein said WORD string comprises an oligonucleotide strand, wherein said oligonucleotide strand has a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second oligonucleotide strand define a site for cleavage by an enzyme, a plurality of said WORD portions, a primer binding site, and a linker region attached to said surface, wherein said linker portion having sufficient length such that in the presence of said second strand said enzyme can cleave the site.
- 18. The method of claim 17, wherein said WORD portion comprising a variable portion and a label portion flanking the variable portion.
- 19. The method of claim 11, wherein said biological molecule arrayed on a surface is selected from the group consisting of a nucleic acid, a polypeptide, a peptide, and a carbohydrate.
- 20. The method of claim 11, wherein said solution phase biological molecule is selected from the group consisting of a nucleic acid, a protein nucleic acid, a locked nucleic acid, a polypeptide, and a peptide.
- 21. A method, comprising:
a) providing
i) at least one biological molecule attached to a solid surface; ii) a solution phase biological molecule in communication with said solid-phase biomaterial under conditions under conditions such that said solution phase material and said solid phase material interact; and b) performing at least two computational operations on said solid phase and solution phase materials.
- 22. The method of claim 21, wherein said two computational operations are selected from the group consisting of MARK/UNMARK, DESTROY, AND, APPEND, and READOUT.
- 23. The method of claim 22, wherein said biological molecule arrayed on a surface is a WORD string.
- 24. The method of claim 23, wherein said WORD string comprises two or more unique WORDs.
- 25. The method of claim 23, wherein said WORD string comprises three or more unique WORDs.
- 26. The method of claim 23, wherein said WORD string comprises an oligonucleotide strand, wherein said oligonucleotide strand has a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second oligonucleotide strand define a site for cleavage by an enzyme, a plurality of said WORD portions, a primer binding site, and a linker region attached to said surface, wherein said linker portion having sufficient length such that in the presence of said second strand said enzyme can cleave the site.
- 27. The method of claim 26, wherein said WORD portion comprising a variable portion and a label portion flanking the variable portion.
- 28. The method of claim 24 wherein said AND operation is carried out on non-adjacent WORDs in said WORD string.
- 29. The method of claim 24, wherein said DESTROY operation is performed on said WORD string comprising two or more of said WORDS.
- 30. A composition comprising a WORD capable of being specifically MARKed.
- 31. The composition of claim 30, wherein said WORD further comprises a variable portion flanked by a fixed portion.
- 32. The composition of claim 31, wherein said WORD is an oligonucleotide, said oligonucleotide comprising at least one WORD portion, each WORD portion comprising a variable portion and a label portion flanking the variable portion.
- 33. The composition of claim 32, wherein said oligonucleotide strand further comprises a plurality of nucleotide bases that, with complementary bases on a second strand, define a site for cleavage by an enzyme.
- 34. The composition of claim 32, wherein said at least one WORD portions are non-overlapping with one another.
- 35. The composition of claim 32, wherein said WORD portions are adjacent to one another.
- 36. The composition of claim 32, wherein oligonucleotide further comprises a primer binding site, wherein said primer binding site is at the 3′ end of said oligonucleotide.
- 37. The composition of claim 33, wherein said site for cleavage by an enzyme is 6 or fewer bases long.
- 38. A composition, comprising a substrate-bound oligonucleotide strand comprising a substrate; an oligonucleotide strand having a 5′ end and a 3′ end, said oligonucleotide strand comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each WORD portion comprising a variable portion and a label portion flanking the variable portion, and a primer binding site; and a linker portion having sufficient length such that in the presence of the second strand the enzyme can cleave the site.
- 39. The composition of claim 38, said plurality of WORD portions are non-overlapping with one another.
- 40. The composition of claim 38, said plurality of WORD portions are adjacent to one another.
- 41. The composition of claim 38, wherein said primer binding site is located at the 3′ end of said oligonucleotide.
- 42. The composition of claim 38, wherein said plurality of nucleotide bases that can define a site for cleavage is 6 or fewer bases long.
- 43. A composition comprising an array of substrate-bound oligonucleotide strands, said array comprising a substrate; a plurality of oligonucleotide strands, each oligonucleotide strand having a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each WORD portion comprising a variable portion and a label portion flanking the variable portion, and a primer binding site; and a linker portion between each oligonucleotide strand and the substrate, the linker portion having sufficient length such that in the presence of the second strand the enzyme can cleave the site.
- 44. The composition of claim 43, wherein said plurality of WORD portions are non-overlapping with one another.
- 45. The composition of claim 43, wherein said plurality of WORD portions are adjacent to one another.
- 46. The composition of claim 43, wherein said primer binding site is located at said 3′ end of said oligonucleotide strand.
- 47. The composition of claim 43, wherein said plurality of nucleotide bases that defines a site for cleavage is 6 or fewer bases long.
- 48. A kit comprising:
a) an array of substrate-bound oligonucleotide strands, the array comprising a substrate, a plurality of oligonucleotide strands, and a linker portion between each oligonucleotide strand and the substrate, each oligonucleotide strand having a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, and a primer binding site, the linker portion having sufficient length such that in the presence of the second strand the enzyme can cleave the site; and b) a primer capable of forming a duplex with said primer binding site.
- 49. The kit of claim 48, wherein said primer further comprises a fluorescent label.
- 50. The kit of claim 49, wherein said fluorescent label is fluorescein.
- 51. The kit of claim 48, wherein each of said plurality of WORD portions comprises a variable portion and a label portion flanking said variable portion.
- 52. A kit comprising:
a) an array of substrate-bound oligonucleotide strands, said array comprising a substrate, a plurality of oligonucleotide strands, and a linker portion between each of said oligonucleotide strands and said substrate, each oligonucleotide strand having a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each WORD portion comprising a variable portion and a label portion flanking the variable portion, and a primer binding site, the linker portion having sufficient length such that in the presence of the second strand the enzyme can cleave the site; b) a tagged primer that forms a duplex with the primer binding site; and; c) a cleavage enzyme.
- 53. The kit of claim 52, wherein said primer further comprises a fluorescent label.
- 54. The kit of claim 53, wherein said fluorescent label is fluorescein.
- 55. A kit comprising:
a) an array of substrate-bound oligonucleotide strands, said array comprising a substrate, a plurality of oligonucleotide strands, and a linker portion between each of said plurality of oligonucleotide strands and the substrate, each of said plurality of oligonucleotide strands having a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each of said WORD portion comprising a variable portion and a label portion flanking the variable portion, and a primer binding site, said linker portion having sufficient length such that in the presence of the second strand the enzyme can cleave the site; and b) a plurality of oligomers that selectively form a stable duplex with at least a part of at least one of said WORD portion but which are not primers for DNA strand extension.
- 56. The kit of claim 55, wherein said oligonucleotides are peptide nucleic acids.
- 57. A kit comprising:
a) an array of substrate-bound oligonucleotide strands, said array comprising a substrate, a plurality of oligonucleotide strands, and a linker portion between each oligonucleotide strand and the substrate, each oligonucleotide strand having a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each of said WORD portions comprising a variable portion and a label portion flanking the variable portion, and a primer binding site, said linker portion having sufficient length such that in the presence of the second strand the enzyme can cleave the site; b) a plurality of oligomers that selectively form a stable duplex with at least a part of at least one of said WORD portions but which are not primers for DNA strand extension; and c) a labeled primer that forms a duplex with the primer binding site.
- 58. The kit of claim 57, wherein said primer further comprises a fluorescent label.
- 59. The kit of claim 57, wherein said fluorescent label is fluorescein.
- 60. A kit comprising:
a) an array of substrate-bound oligonucleotide strands, said array comprising a substrate, a plurality of oligonucleotide strands, and a linker portion between of said oligonucleotide strands and said substrate, each oligonucleotide strand having a 5′ end and a 3′ end and comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each of said WORD portions comprising a variable portion and a label portion flanking the variable portion, and a primer binding site, wherein said linker portion has sufficient length such that in the presence of the second strand said enzyme can cleave said site for cleavage; b) a plurality of oligomers that selectively form a stable duplex with at least a part of at least one WORD portion but which are not primers for DNA strand extension; c) a tagged primer that forms a duplex with the primer binding site; and d) a cleavage enzyme.
- 61. The kit of claim 60, wherein said primer comprises a fluorescent label.
- 62. The kit of claim 61, wherein said fluorescent label is fluorescein.
- 63. A method for selectively preventing cleavage of a nucleic acid by an enzyme, the method comprising the steps of:
a) providing at least one substrate-bound oligonucleotide strand having a 5′ end and a 3′ end, the oligonucleotide strand comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each of said WORD portions comprising a variable portion and a label portion flanking the variable portion, and a primer binding site; b) exposing said at least one oligonucleotide strand to an oligomer to selectively form a stable duplex with at least a part of at least one of said WORD portions; c) binding a tagged primer to the primer binding site to form a primer annealed strand; and d) extending the primer annealed strand until the stable duplex blocks further polymerase extension, thereby preventing formation of the site for cleavage by the enzyme.
- 64. The method of claim 63, wherein said extending step comprises exposing said primer annealed strand to a DNA polymerase.
- 65. A method for solving a logical problem involving at least two variables where each variable can assume a first value and a second value, the method comprising the steps of:
a) providing an array of substrate-bound oligonucleotide strand members having a 5′ end and a 3′ end, the oligonucleotide strands comprising in 5′ to 3′ order a plurality of nucleotide bases that with complementary bases on a second strand define a site for cleavage by an enzyme, a plurality of WORD portions, each of said WORD portions comprising a variable portion and a label portion flanking said variable portion, said label portion specifying a variable, said variable portion specifying a value of said variable, and a primer binding site, wherein said set of strands comprises strands having all combinations of all WORD portions; b) selectively marking said array of oligonucleotide strands with oligomers that form a stable duplex with at least a part of at least one of said WORD portion but which are not primers for DNA strand extension, each of said oligomers representing a selected value of a variable; c) binding a tagged primer to said primer binding site to form a primer annealed strand; d) extending said primer annealed strand; e) destroying said array members having enzyme cleavage sites formed in said extending step; f) repeating as needed the marking, binding, extending, and destroying steps to solve any remaining problem steps; and g) determining the members of said array remaining after all steps have been solved, whereby the values of the variables specified on any remaining member represents a valid solution to said problem.
- 66. The method of claim 65, wherein said selectively marking prevents the extension of said primer strand beyond where said oligomer is bound, thereby preventing the generation of said enzyme cleavage site.
- 67. The method of claim 65, wherein said oligomers are protein nucleic acids.
- 68. The method of claim 65, wherein at least two of said variables are non-contiguous WORDs.
- 69. A method, comprising
a) providing an array of substrate-bound oligonucleotide strand members having a 5′ end and a 3′ end, the oligonucleotide strands comprising in 3′ to 5′ a plurality of WORD portions, each of said WORD portions comprising a variable portion and a primer binding portion, wherein said set of strands comprises strands having all combinations of all WORD portions; b) selectively marking said array of oligonucleotide strands with oligomers that form a stable duplex with at least a part of at least one of said WORD portion, wherein said oligomers are primers for DNA strand extension, each of said oligomers representing a selected value of a variable; c) extending said primer annealed strand to form duplex strands; and d) digesting said duplex strands with exonuclease under conditions such that only unmarked portions of said oligonucleotide strands are digested.
- 70. The method of claim 69, wherein prior to said step of digesting said duplex strands, differentially melting said duplex under conditions such that only oligonucleotides that not fully duplex are melted.
Parent Case Info
[0001] This application claims priority to U.S. provisional patent application Ser. No. 60/306608, filed on Jul. 19, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60306608 |
Jul 2001 |
US |