Electrodes linked via conductive oligomers to nucleic acids

Chemistry: molecular biology and microbiology – Measuring or testing process involving enzymes or... – Involving nucleic acid

Reexamination Certificate

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C435S287200, C536S023100, C536S024300

Reexamination Certificate

active

06977151

ABSTRACT:
The invention relates to nucleic acids covalently coupled to electrodes via conductive oligomers. More particularly, the invention is directed to the site-selective modification of nucleic acids with electron transfer moieties and electrodes to produce a new class of biomaterials, and to methods of making and using them.

REFERENCES:
patent: 4755458 (1988-07-01), Rabbani et al.
patent: 4840893 (1989-06-01), Hill et al.
patent: 4868103 (1989-09-01), Stavrianopoulos et al.
patent: 4945045 (1990-07-01), Forrest et al.
patent: 4964972 (1990-10-01), Sagiv et al.
patent: 4994373 (1991-02-01), Stavrianopoulos et al.
patent: 5089112 (1992-02-01), Skotheim et al.
patent: 5156810 (1992-10-01), Ribi
patent: 5238808 (1993-08-01), Bard et al.
patent: 5242828 (1993-09-01), Bergstrom et al.
patent: 5278043 (1994-01-01), Bannwarth et al.
patent: 5312527 (1994-05-01), Mikkelsen et al.
patent: 5391272 (1995-02-01), O'Daly et al.
patent: 5443701 (1995-08-01), Willner et al.
patent: 5472881 (1995-12-01), Beebe et al.
patent: 5532128 (1996-07-01), Eggers et al.
patent: 5565322 (1996-10-01), Heller
patent: 5571568 (1996-11-01), Ribi et al.
patent: 5705348 (1998-01-01), Meade et al.
patent: 5770369 (1998-06-01), Meade et al.
patent: 5780234 (1998-07-01), Meade et al.
patent: 5824473 (1998-10-01), Meade et al.
patent: 5837859 (1998-11-01), Teoule et al.
patent: 5849486 (1998-12-01), Heller et al.
patent: 5952172 (1999-09-01), Meade et al.
patent: 6071699 (2000-06-01), Meade et al.
patent: 6087100 (2000-07-01), Meade et al.
patent: 6090933 (2000-07-01), Kayyem et al.
patent: 6096273 (2000-08-01), Kayyem et al.
patent: 6096825 (2000-08-01), Garnier
patent: 6177250 (2001-01-01), Meade et al.
patent: 6180352 (2001-01-01), Meade et al.
patent: 6200761 (2001-03-01), Meade et al.
patent: 6221583 (2001-04-01), Kayyem et al.
patent: 6238870 (2001-05-01), Meade et al.
patent: 6258545 (2001-07-01), Meade et al.
patent: 6479240 (2002-11-01), Kayyem et al.
patent: 6528266 (2003-03-01), Meade et al.
patent: 2001/0034033 (2001-10-01), Meade et al.
patent: 2003/0003473 (2003-01-01), Kayyem et al.
patent: 2003/0150723 (2003-08-01), Kayyem et al.
patent: 2003/0170677 (2003-09-01), Meade et al.
patent: 2004/0053290 (2004-03-01), Terbrueggen et al.
patent: 2004/0101890 (2004-05-01), Meade et al.
patent: 0 142 301 (1985-05-01), None
patent: 0 234 938 (1987-02-01), None
patent: 0 339 821 (1989-11-01), None
patent: 0 439 036 (1991-07-01), None
patent: 0 478 319 (1992-04-01), None
patent: 0 599 337 (1994-06-01), None
patent: 0 668 502 (1995-08-01), None
patent: 63-238166 (1988-10-01), None
patent: WO 86/05815 (1986-10-01), None
patent: WO 90/05732 (1990-05-01), None
patent: WO 92/10757 (1992-06-01), None
patent: WO 93/22678 (1993-11-01), None
patent: WO 93/22678 (1993-11-01), None
patent: WO 93/25898 (1993-12-01), None
patent: WO 94/22889 (1994-10-01), None
patent: WO 95/15971 (1995-06-01), None
patent: WO 95/15971 (1995-06-01), None
patent: WO 96/06946 (1996-03-01), None
patent: WO 96/10178 (1996-04-01), None
patent: WO 96/40712 (1996-12-01), None
patent: WO 97/46568 (1997-12-01), None
patent: WO 98/20162 (1998-05-01), None
patent: WO 98/20162 (1998-05-01), None
patent: WO 98/57159 (1998-12-01), None
Aizawa, M., et al., “Integrated molecular systems for biosensors,”Sens. Actuators B Chem. 24(1&3):1-5 (Mar. 1995).
Arkin, M., et al., “Evidence for Photoelectron Transfer Through DNA Intercalation,”J. Inorg. Biochem. Abstr., 6th Int. Conf. Bioinorg. Chem. 51(1&2):526 (1993).
Arkin, M., et al., “Rates of DNA-Mediated Electron Transfer Between Metallointercalators,”Science273(5274):475-480 (Jul. 1996).
Bain, C., et al., “Formation of monolayers by the coadsorption of thiols on gold: variation in the length of the alkyl chain,”J. Am. Chem. Soc. 111(18):7164-7175 (Aug. 1989).
Blonder, R., et al., “Application of Redox Enzymes for Probing the Antigen-Antibody Association at the Monolayer Interfaces: Development of Amperometric Immunosensor Electrodes,”Anal. Chem. 68(18):3151-3157 (Sep. 1996).
Brun, A., et al., “Photochemistry of intercalated quaternary diazaaromatic salts,”J. Am. Chem. Soc. 113(21):8153-8159 (Oct. 1991).
Cheng, J., et al., “Selectivity and sensitivity of self-assembled thioctic acid electrodes,”Anal. Chem. 64(17):1998-1999 (Sep. 1992).
Chidsey, C., et al., “Coadsorption of ferrocene-terminated and unsubstituted alkanethiols on gold: electroactive self-assembled monolayers,” J. Am. Chem. Soc. 112(11):4301-4306 (32994).
Degani, Y., et al., “Direct electrical communication between chemically modified enzymes and metal electrodes: 2. Methods for bonding electron-transfer relays to glucose oxidase and D-amino-acid oxidase,”J. Am. Chem. Soc. 110(8):2615-2620 (Apr. 1988).
Degani, Y., et al., “Direct electrical communication between chemically modified enzymes and metal electrodes. 1. Electron transfer from glucose oxidase to metal electrodes via electron relays, bound covalently to the enzyme,”J. Phys. Chem. 91(6):1285-1288 (Mar. 1987).
Degani, Y., et al., “Electrical communication between redox centers of glucose oxidase and electrodes via electrostatically and covalently bound redox polymers,”J. Am. Chem. Soc. 111(7):2357-2358 (Mar. 1989).
Friedman, A., et al., “Molecular ‘light switch’ for DNA: Ru(bpy)2(dppz)2+,”J. Am. Chem. Soc. 112(12):4960-4962 (Jun. 1990).
Fromherz, P., “Photoinduced electron transfer in DNA matrix from intercalated ethidium to condensed methylviologen,”J. Am. Chem. Soc. 108(17):5361-6362 (Aug. 1986).
Gregg, B., et al., “Cross-linked redox gets containing glucose oxidase for amperonmetric biosensor applications,”Anal. Chem. 62(3):258-263 (Feb. 1990).
Hashimoto, K., et al., “Sequence-specific gene detection with a gold electrode modified with DNA probes and an electrochemically active dye,”Anal. Chem. 66(21):3830-3833 (Nov. 1994).
Heller, A., “Electrical Wiring of Redox Enzymes,”Acc. Chem. Res. 23(5):128-134 (May. 1990).
Heller, A., et al., “Amperometric biosensors based on three-dimensional hydrogel-forming epoxy networks,”Sens. Actuators B13(1-3):180-183 (May 1993).
Jenkins, Y., et al., “A Sequence-Specific Molecular Light Switch: Tethering of an Oligonucleotide to a Dipyridophenazine Complex of Ruthenium (II)”J. Am. Chem. Soc. 114(22):8736-8738 (Oct. 1992).
Jiang, L., et al., “Direct electron transfer reactions of glucose oxidase immobilised at a self-assembled monolayer,”J. Chem. Soc. Chem. Commun. 12:1293-1295 (1995).
Millan, K., et al., “Voltammetric DNA biosensor for cystic fibrosis based on modified carbon paste electrode,”Anal. Chem. 66:2943-2948 (1994).
Purugganan, M., et al., “Accelerated electron transfer between metal complexes mediated by DNA,”Science241:1645-1649 (1988).
Satyanarayana, S., et al., “Neither Δ- nor Λ-Tris(phenanthroline)ruthenium(II) Binds to DNA by Classical Intercalation,”Biochemistry31(39):9319-9324 (Oct. 1992).
Turro, N., et al., “Molecular recognition and chemistry in restricted reaction spaces. Photophysics and photoinduced electron transfer on the surfaces of micelles, dendrimers, and DNA,”Acc. Chem. Res. 24:332-340 (1991).
Turro, N., et al., “Photoelectron transfer between molecules adsorbed in restricted spaces,”Photochem. Convers. Storage Sol. Energy, Proc. Intl. Conf., 8thAnnu., pp. 121-139 (1990).
Uosaki, K., et al., “A self-assembled monolayer of ferrocenylalkane thiols on gold as an electron mediator for the reduction of Fe(III)-EDTA in solution,”Electrochem. Acta36(11/12):1799-1801 (1991).
Weber, K., et al., “Voltammetry or redox-active groups irreversibly adsorbed onto electrodes. Treatment using the Marcus relation between rate and overpotential,”Anal. Chem. 66(19):3164-3172 (Oct. 1994).
Welch, T., et al., “Distribution of metal complexes bound to DNA de

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