Claims
- 1. In a method of determining the nucleotide sequence of a target nucleic acid, the method of the type wherein a nested set of DNA fragments produced by extension of an oligonucleotide primer are separated by size, an improvement comprising:
- providing a nested set of DNA fragments, each DNA fragment of the set being conjugated to a polymer chain such that DNA fragments of different sizes have different ratios of charge to translational frictional drag in a non-sieving medium; and
- electrophoretically separating the DNA fragments in a non-sieving liquid medium.
- 2. The method of claim 1 wherein said step of providing a nested set of DNA fragments comprises the steps of:
- providing a primer comprising an oligonucleotide conjugated to a polymer chain;
- annealing the primer to the target nucleic acid; and
- extending the primer by a nucleic acid polymerase in the presence of nucleoside triphosphate precursors and at least one chain terminating nucleotide.
- 3. The method of claim 1 or 2 wherein the polymer chain is uncharged.
- 4. The method of claims 1 or 2 wherein the polymer chain has a neutral net charge.
- 5. In a method of determining the nucleotide sequence of a target nucleic acid, the method of the type wherein a nested set of DNA fragments produced by extension of an oligonucleotide primer are separated by size, an improvement comprising:
- providing a nested set of DNA fragments, each DNA fragment of the set being conjugated to a polymer chain such that DNA fragments of different sizes have different electrophoretic mobilities in a non-sieving medium; and
- electrophoretically separating the DNA fragments in a non-sieving liquid medium.
- 6. A kit for determining the nucleotide sequence of a target nucleic acid comprising:
- a primer, the primer having a polymer chain attached thereto, wherein the primer is extendible by a nucleic acid polymerase;
- a nucleic acid polymerase; and
- nucleoside triphosphate precursors and at least one chain terminating nucleotide.
- 7. The kit of claim 6 wherein the chain terminating nucleotide is labeled with a fluorescent dye.
Parent Case Info
This is a continuation of application Ser. No. 08/296,880 filed Aug. 26, 1994, which is a continuation of application Ser. No. 07/973,118, filed Nov. 6, 1992, abandoned, which is a continuation-in-part of application Ser. Nos. 07/866,018, U.S. Pat. No. 5,470,705, and 07/862,642, abandoned, filed Apr. 7, 1992 and Apr. 3, 1992, respectively.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
4879214 |
Kornher et al. |
Nov 1989 |
|
5108568 |
Van Alstine |
Apr 1992 |
|
5171534 |
Smith et al. |
Dec 1992 |
|
5514543 |
Grossman et al. |
May 1996 |
|
Non-Patent Literature Citations (6)
Entry |
J.Noolandi Electrophoresis 13:394-395 (1992) A new concept for sequencing DNA by capillary electrophoresis. |
K.L.Livak et al. Nucleic Acids Research 20(18): 4831-4837 (1992) Detection of single base differences using biotinylated nucleotides with very long linker arms. |
J.S.Kornher et al. Nucleic Acids Research 17(19): 7779-7784 (1989) Mutation detection using nucleotide analogs that alter electrophoretic mobility. |
P.Mayer et al. Analytical Chemistry 66: 1777-1780 (1994) Theory of DNA sequencing using free solution electrophoresis of protein-DNA complexes. |
W.Muller et al Nucleic Acids Research 9(1): 95-119 (1981) Polyethylene glycol derivatives of base and sequence specific DNA ligands: DNA interaction and application for base specific separation of DNA fragments by gel electrophoresis. |
R.L.Cunico et al. Journal of Chromatography 559: 467-477 (1991) Characterization of polyethylene glycol modified proteins using charge reversed capillary electrophoresis. |
Related Publications (1)
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Date |
Country |
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862642 |
Apr 1992 |
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Continuations (2)
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Number |
Date |
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Parent |
296880 |
Aug 1994 |
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Parent |
973118 |
Nov 1992 |
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Continuation in Parts (1)
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866018 |
Apr 1992 |
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