Claims
- 1. A method of fabricating a DNA molecule of user-defined sequence, comprising the steps of:
preselecting a multiplicity of DNA sequence segments that will comprise said DNA molecule of user-defined sequence, and combining said multiplicity of DNA sequence segments with at least one polymerase enzyme wherein said multiplicity of DNA sequence segments join to produce said DNA molecule of user-defined sequence.
- 2. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said multiplicity of DNA sequence segments comprise n-mers, wherein n is a number less than 20.
- 3. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said multiplicity of DNA sequence segments comprise 4-mers.
- 4. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said multiplicity of DNA sequence segments comprise 6-mers.
- 5. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said multiplicity of DNA sequence segments comprise 8-mers.
- 6. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said multiplicity of DNA sequence segments comprise 5-mers.
- 7. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said multiplicity of DNA sequence segments comprise n-mers, where n is a number between 4 and 20.
- 8. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said step of combining said multiplicity of DNA sequence segments with at least one polymerase enzyme comprises using a parallel method for combining said multiplicity of DNA sequence segments.
- 9. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said at least one polymerase enzyme comprises at least one of pfu, vent (exonuclease+ and exonuclease−), and deep vent (exonuclease+ and exonuclease−).
- 10. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said at least one polymerase enzyme comprises pfu.
- 11. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said at least one polymerase enzyme comprises vent (exonuclease+ and exonuclease−).
- 12. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said at least one polymerase enzyme comprises deep vent (exonuclease+ and exonuclease−).
- 13. The method of fabricating a DNA molecule of user-defined sequence of claim 1 wherein said step of preselecting a multiplicity of DNA sequence segments is accomplished using a computer.
- 14. A method of fabricating a DNA molecule, comprising the steps of:
preselecting a multiplicity of DNA sequence segments that will comprise said DNA molecule, and combining said multiplicity of DNA sequence segments with at least one polymerase enzyme wherein said multiplicity of DNA sequence segments join to produce said DNA molecule.
- 15. The method of fabricating a DNA molecule of claim 14 wherein said multiplicity of DNA sequence segments comprise n-mers, wherein n is a number less than 20.
- 16. The method of fabricating a DNA molecule of claim 14 wherein said multiplicity of DNA sequence segments comprise 4-mers.
- 17. The method of fabricating a DNA molecule of claim 14 wherein said multiplicity of DNA sequence segments comprise 6-mers.
- 18. The method of fabricating a DNA molecule of claim 14 wherein said multiplicity of DNA sequence segments comprise 8-mers.
- 19. The method of fabricating a DNA molecule of claim 14 wherein said multiplicity of DNA sequence segments comprise 5-mers.
- 20. The method of fabricating a DNA molecule of claim 14 wherein said multiplicity of DNA sequence segments comprise n-mers, where n is a number between 4 and 20.
- 21. The method of fabricating a DNA molecule of claim 14 wherein said step of combining said multiplicity of DNA sequence segments with at least one polymerase enzyme comprises using a parallel method for combining said multiplicity of DNA sequence segments.
- 22. The method of fabricating a DNA molecule of claim 14 wherein said at least one polymerase enzyme comprises at least one of pfu, vent (exonuclease+ and exonuclease−), and deep vent (exonuclease+ and exonuclease−).
- 23. The method of fabricating a DNA molecule of claim 14 wherein said at least one polymerase enzyme comprises pfu.
- 24. The method of fabricating a DNA molecule of claim 14 wherein said at least one polymerase enzyme comprises vent (exonuclease+ and exonuclease−).
- 25. The method of fabricating a DNA molecule of claim 14 wherein said at least one polymerase enzyme comprises deep vent (exonuclease+ and exonuclease−).
- 26. The method of fabricating a DNA molecule of claim 14 wherein said step of preselecting a multiplicity of DNA sequence segments is accomplished using a computer.
- 27. A method of fabricating a DNA molecule of user-defined sequence, comprising the steps of:
preselecting a multiplicity of DNA sequence segments that will comprise said DNA molecule of user-defined sequence by using computational techniques to break said user-defined sequence into fragments of defined size, arraying said fragments of defined size into groups, and assembling said groups into double-strand DNA molecules of predetermined base-pairs using DNA polymerase to produce said DNA molecule of user-defined sequence.
- 28. The method of fabricating a DNA molecule of user-defined sequence of claim 27 wherein said multiplicity of DNA sequence segments comprise n-mers, wherein n is a number less than 20.
- 29. The method of fabricating a DNA molecule of user-defined sequence of claim 27 wherein said multiplicity of DNA sequence segments comprise 4-mers, wherein said groups comprise approximately 20-40 4-base oligonucleotides, and said step of assembling said groups into double-strand DNA molecules of predetermined base-pairs using DNA polymerase comprises assembling said groups into double-strand DNA molecules of 20-100 base-pairs using DNA polymerase.
- 30. The method of fabricating a DNA molecule of user-defined sequence of claim 27 wherein said multiplicity of DNA sequence segments comprise 6-mers.
- 31. The method of fabricating a DNA molecule of user-defined sequence of claim 27 wherein said multiplicity of DNA sequence segments comprise 8-mers.
- 32. The method of fabricating a DNA molecule of user-defined sequence of claim 27 wherein said multiplicity of DNA sequence segments comprise 5-mers.
- 33. The method of fabricating a DNA molecule of user-defined sequence of claim 27 wherein said multiplicity of DNA sequence segments comprise n-mers, where n is a number between 4 and 20.
- 34. The method of fabricating a DNA molecule of user-defined sequence of claim 27 wherein said steps of arraying said fragments of defined size into groups, and assembling said groups into double-strand DNA molecules of predetermined base-pairs using DNA polymerase to produce said DNA molecule of user-defined sequence comprise using a parallel method for combining said multiplicity of DNA sequence segments.
- 35. A method of fabricating a DNA molecule of user-defined sequence, comprising the steps of:
preselecting a multiplicity of DNA sequence segments that will comprise said DNA molecule of user-defined sequence by using computational techniques to break said user-defined sequence into fragments of defined size, arraying said fragments of defined size into groups, and assembling said groups into double-strand DNA molecules of predetermined base-pairs to produce said DNA molecule of user-defined sequence.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/367,928 filed Mar. 25, 2002 titled “Method for Constructing User-Defined, Very Long DNA Sequences”; U.S. Provisional Patent Application No. 60/367,929 filed Mar. 25, 2002 titled “Voltage-Controlled Method for Constructing User-Defined, Very Long DNA Sequences”; U.S. Provisional Patent Application No. 60/367,988 filed Mar. 25, 2002 titled “DNA/RNA as a Write/Read Medium”; U.S. Provisional Patent Application No. 60/367,989 filed Mar. 25, 2002 titled “Synthesis of DNA via Array-Based Ligation”; and U.S. Provisional Patent Application No. 60/428,579 filed Nov. 22, 2002 titled “Constructing Very Long DNA Sequences from Synthetic DNA Molecules.” U.S. Provisional Patent Application No. 60/367,928 filed Mar. 25, 2002 titled “Method for Constructing User-Defined, Very Long DNA Sequences”; U.S. Provisional Application No. 60/367,929 filed Mar. 25, 2002 titled “Voltage-Controlled Method for Constructing User-Defined, Very Long DNA Sequences”; U.S. Provisional Application No. 60/367,988 filed Mar. 25, 2002 titled “DNA/RNA as a Write/Read Medium”; U.S. Provisional Application No. 60/367,989 filed Mar. 25, 2002 titled “Synthesis of DNA via Array-Based Ligation”; and U.S. Provisional Application No. 60/428,579 filed Nov. 22, 2002 titled “Constructing Very Long DNA Sequences from Synthetic DNA Molecules” are incorporated into this application by this reference.
Government Interests
[0002] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
Provisional Applications (5)
|
Number |
Date |
Country |
|
60367928 |
Mar 2002 |
US |
|
60367929 |
Mar 2002 |
US |
|
60367988 |
Mar 2002 |
US |
|
60367989 |
Mar 2002 |
US |
|
60428579 |
Nov 2002 |
US |