Copy of application Ser. No. 09/434,026, filed Nov. 4, 1999. |
Abruña, H. D. et al., “Rectifying Interfaces Using Two-Layer Films of Electrochemically Polymerized Vinylpyridine and Vinylbipyridine Complexes of Ruthenium and Iron on Electrodes,”J. Am. Chem. Soc., vol. 103, No. 1, pp. 1-5 (Jan. 14, 1981). |
Cass, A. et al., “Ferrocene-Mediated Enzyme Electrode for Amperometric Determination of Glucose”, Anal. Chem., vol. 56, No. 4, pp. 667-671 (Apr. 1984). |
Cass, A. et al., “Ferricinum Ion as an Electron Acceptor for Oxido-Reductases,” J. Electroanal. Chem., vol. 190, pp. 117-127 (1985). |
Chen, C.Y. et al., “A Biocompatible Needle-Type Glucose Sensor Based on Platinum-Electroplated Carbon Electrode”, Applied Biochemistry and Biotechnology, vol. 36, pp. 211-226 (1992). |
Chen, C.Y. et al., “Amperometric Needle-Type Glucose Sensor based on a Modified Platinum Electrode with Diminished Response to Interfering Materials”, Analytica Chimica Acta, vol. 265, pp. 5-14 (1992). |
Csöregi, E. et al., “Design, Characterization, and One-Point in Vivo Calibration of a Subcutaneously Implanted Glucose Electrode,” Anal. Chem., vol. 66, No. 19, pp. 31313138 (Oct. 1, 1994). |
Csöregi, E. et al., “On-Line Glucose Monitoring by Using Microdialysis Sampling and Amperometric Detection Based on “Wired” Glucose Oxidase in Carbon Paste,” Mikrochim. Acta., vol. 121, pp. 31-40 (1995). |
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., vol. 91, No. 6, pp. 1285-1289 (1987). |
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., vol. 110, No. 8, pp. 2615-2620 (1988). |
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., vol. 111, pp. 23572358 (1989). |
Dicks, J. M., “Ferrocene modified polypyrrole with immobilised glucose oxidase and its application in amperometric glucose microbiosensors,” Ann. Biol. clin., vol. 47, pp. 607-619 (1989). |
Doherty, A.P. et al., “The Effect of the Nature of the Polymer Backbone on the Stability and the Analytical Response of Polymer-Modified Electrodes”, Electroanalysis, vol. 7, No. 4, pp. 333-339 (1995). |
Fieselmann, B. et al., “Synthesis, Electron Paramagnetic Resonance, and Magnetic Studies on Binuclear Bis(η5-cyclopentadienyl)titanium(III) Compounds with Bridging Pyrazolate, Biimidazolate, and Bibenzimidazolate Anions”, Inorganic Chemistry, vol. 17, No. 8, pp. 2078-2084 (1978). |
Fischer, H. et al., “Intramolecular Electron Transfer Mediated by 4,4′-Bipyridine and Related Bridging Groups”, J. Am. Chem. Soc., vol. 98, No. 18, pp. 5512-5517 (Sep. 1, 1976). |
Foulds, N. et al., “Enzyme Entrapment in Electrically Conducting Polymers,” J. Chem. Soc., Faraday Trans l., vol. 82, pp. 1259-1264 (1986). |
Foulds, N. et al., “Immobilization of Glucose Oxidase in Ferrocene-Modified Pyrrole Polymers,” Anal. Chem., vol. 60, No. 22, pp. 2473-2478 (Nov. 15, 1988). |
Gregg, B. et al., “Cross-Linked Redox Gels Containing Glucose Oxidase for Amperometric Biosensor Applications,” Analytical Chemistry, vol. 62, No. 3, pp. 258-263 (Feb. 1, 1990). |
Gregg, B. et al., “Redox Polymer Films Containing Enzymes. 1. A Redox-Conducting Epoxy Cement: Synthesis, Characterization, and Electrocatalytic Oxidation of Hydroquinone,” J. Phys. Chem., vol. 95, No. 15, pp. 5970-5975 (1991). |
Haga, M., “Synthesis and Protonation-deprotonation Reactions of Ruthenium(II) Complexes Containing 2,2′-Bibenzimidazole and Related Ligands”, Inorganica Chimica Acta, vol. 75, pp. 29-35 (1983). |
Hale, P. et al., “A New Class of Amperometric Biosensor Incorporating a Polymeric Electron-Transfer Mediator,”J. Am. Chem. Soc., vol. 111, No. 9, pp. 3482-3484 (1989). |
Heller, A., “Electrical Connection of Enzyme Redox Centers to Electrodes,” J. Phys. Chem., vol. 96, No. 9, pp. 3579-3587 (1992). |
Heller, A., “Electrical Wiring of Redox Enzymes,” Acc. Chem. Res., vol. 23, No. 5, pp. 129-134 (1990). |
Ianniello, R.M. et al. “Immobilized Enzyme Chemically Modified Electrode as an Amperometric Sensor”, Anal. Chem., vol. 53, No. 13, pp. 2090-2095 (Nov. 1981). |
Ikeda, T. et al., “Glucose oxidase-immobilized benzoquinone-carbon paste electrode as a glucose sensor,” Agric. Biol. Chem., vol. 49, No. 2, (1 page—Abstract only) (1985). |
Jönsson, G. et al., “An Amperometric Glucose Sensor Made by Modification of a Graphite Electrode Surface with Immobilized Glucose Oxidase and Adsorbed Mediator”, Biosensors, vol. 1, pp. 355-368 (1985). |
Katakis, I. et al., “L-α-Glycerophosphate and L-Lactate Electrodes Based on the Electrochemical “Wiring” of Oxidases,” Analytical Chemistry, vol. 64, No. 9, pp. 1008-1013 (May 1, 1992). |
Katakis, I. et al., “Electrostatic Control of the Electron Transfer Enabling Binding of Recombinant Glucose Oxidase and Redox Polyelectrolytes,” J. Am. Chem. Soc., vol. 116, No. 8, pp. 3617-3618 (1994). |
Kenausis, G. et al., “‘Wiring’ of glucose oxidase and lactate oxidase within a hydrogel made with poly(vinly pyridine) complexed with [Os(4,4′-dimethoxy-2,2′-bipyridine)2C1]+/2+,” J. Chem. Soc., Faraday Trans., vol. 92, No. 20, pp. 4131-4136 (1996). |
Maidan, R. et al., “Elimination of Electrooxidizable Interferant-Produced Currents in Amperometric Biosensors,” Analytical Chemistry, vol. 64, No. 23, pp. 2889-2896 (Dec. 1, 1992). |
Ohara, T.J. et al., “Glucose Electrodes Based on Cross-Linked [Os(bpy)2C1]+/2+ Complexed Poly(l-vinylimidazole) Films”, Polym. Mater. Sci. Eng., vol. 70, pp. 182-183 (1993). |
Ohara, T. et al., “Glucose Electrodes Based on Cross-Linked [Os(bpy)2CI]+/2+ Complexed Poly(1-vinylimadazole) Films,” Analytical Chemistry, vol. 65, No. 23, pp. 3512-3516 (Dec. 1, 1993). |
Ohara, T. et al., ““Wired” Enzyme Electrodes for Amperometric Determination of Glucose or Lactate in the Presence of Interfering Substances,” Analytical Chemistry, vol. 66, No. 15, pp. 2451-2457 (Aug. 1, 1994). |
Ohara, T., “Osmium Bipyridyl Redox Polymers Used in Enzyme Electrodes,” Platinum Metals Rev., vol. 39, No. 2, pp. 54-62 (Apr. 1995). |
Pickup, J. et al., “Potentially-implantable, amperometric glucose sensors with mediated electron transfer: improving the operating stability,” Biosensors, vol. 4, No. 2, (1 page—Abstract only) (1989). |
Pishko, M. et al., “Amperometric Glucose Microelectrodes Prepared Through Immobilization of Glucose Oxidase in Redox Hydrogels”, Anal. Chem., vol. 63, No. 20, pp. 2268-2272 (Oct. 15, 1991). |
Pollak, A. et al., “Enzyme Immobilization by Condensation Copolymerization into Cross-Linked Polyacrylamide Gels,”J. Am. Chem. Soc., vol. 102, No. 20, pp. 6324-6336 (1980). |
Reeder, K. et al., “Solution-State Spin-Equilibrium Properties of the Tris[2-(2-pyridyl)imidazole]iron(II) and Tris[2-(2-pyridyl)benzimidazole]iron(II) Cations”, Inorganic Chemistry, vol. 17, No. 4, pp. 10711075 (1978). |
Sasso, S. et al., “Electropolymerized 1,2-Diaminobenzene as a Means to Prevent Interferences and Fouling and to Stabilize Immobilized Enzyme in Electrochemical Biosensors”, Anal. Chem., vol. 62, No. 11, pp. 1111-1117 (Jun. 1, 1990). |
Schalkhammer, T. et al., “Electrochemical Glucose Sensors on Permselective Non-conducting Substituted Pyrrole Polymers”, Sensors and Actuators, vol. B4, pp. 273-281 (1991). |
Taylor, C. et al., “‘Wiring’ of glucose oxidase within a hydrogel made with polyvinyl imidazole complexed with [(Os-4,4′-dimethoxy-2,2′-bipyridine)C1]+/2+,” Journal of Electroanalytical Chemistry, vol. 396, pp. 511-515 ()1995). |
Trojanowicz, M. et al., “Enzyme Entrapped Polypyrrole Modified Electrode for Flow-Injection Determination of Glucose,” Biosensors & Bioelectronics, vol. 5, pp. 149-156 (1990). |
Ye, L. et al., “High Current Density “Wired” Quinoprotein Glucose Dehydrogenase Electrode,” Anal. Chem., vol. 65, No. 3, pp. 238-241 (Feb. 1, 1993). |
Yildiz, A., “Evaluation of an Improved Thin-Layer Electrode”, Analytical Chemistry vol. 40, No. 7, pp. 1018-1024 (Jun. 1968). |