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., 103(1):1-5 (Jan. 14, 1981). |
Albery, W. J. et al., “Amperometric enzyme electrodes. Part II. Conducting salts as electrode materials for the oxidation of glucose oxidase,” J. Electroanal. Chem. Interfacial Electrochem., 194(2)(1 page-13 Abstract only)(1985). |
Albery, W. J. et al., “Amperometric Enzyme Electrodes,” Phil. Trans. R. Soc. Lond. B316:107-119 (1987). |
Alcock, S. J. et al., “Continuous Analyte Monitoring to Aid Clinical Practice,” IEEE Engineering in Medicine and Biology, 319-325 (1994). |
Anderson, L. B. et al., “Thin-Layer Electrochemistry: Steady-State Methods of Studying Rate Processes,” J. Electroanal. Chem., 10:295-395 (1965). |
Bartlett, P. N. et al., “Covalent Binding of Electron Relays to Glucose Oxidation,” J. Chem. Soc. Chem. Commun., 1603-1604 (1987). |
Bartlett, P. N. et al., “Modification of glucose oxidase by tetrathiafulvalene,” J. Chem. Soc., Chem. Commun., 16 (1 page-Abstract only) (1990). |
Bartlett, P. N. et al., “Strategies for the Development of Amperometric Enzyme Electrodes,” Biosensors, 3:359-379 (1987/88). |
Bindra, D.S. et al., “Design and in Vitro Studies of a Needle-Type Glucose Sensor for Subcutaneous Monitoring”, Anal. Chem., 63(17):1692-1696 (Sep. 1, 1991). |
Bobbioni-Harsch, E. et al., “Lifespan of subcutaneous glucose sensors and their performances during dynamic glycaemia changes in rats,” J. Biomed. Eng. 15:457-463 (1993). |
Brandt, J. et al., “Covalent attachment of proteins to polysaccharide carriers by means of benzoquinone,” Biochim. Biophys. Acta, 386(1)(1 page Abstract only) (1975). |
Brownlee, M. et al., “A Glucose-Controlled Insulin-Delivery System: Semisynthetic Insulin Bound to Lectin”, Science, 206(4423):1190-1191 (Dec. 7, 1979). |
Cass, A.E.G. et al., “Ferricinum Ion As An Electron Acceptor for Oxido-Reductases,” J. Electroanal. Chem., 190:117-127 (1985). |
Cass, A.E.G. et al., “Ferrocene-Mediated Enzyme Electrode for Amperometric Determination of Glucose”, Anal. Chem., 56(4):667-671 (Apr. 1984). |
Castner, J. F. et al., “Mass Transport and Reaction Kinetic Parameters Determined Electrochemically for Immobilized Glucose Oxidase,” Biochemisty, 23(10):2203-2210 (1984). |
Claremont, D.J. et al., “Biosensors for Continuous In Vivo Glucose Monitoring”, IEEE Engineering in Medicine and Biology Society 10th Annual International Conference, New Orleans, Louisiana, 3 pgs. (Nov. 4-7, 1988). |
Clark, L.C. et al., “Differential Anodic Enzyme Polarography for the Measurement of Glucose”, Oxygen Transport to Tissue: Instrumentation, Methods, and Physiology, 127-132 (1973). |
Clark, L.C., Jr. et al., “Electrode Systems for Continuous Monitoring in Cardiovascular Surgery,” Annals New York Academy of Sciences, pp. 29-45 (1962). |
Clark, L.C. et al., “Long-term Stability of Electroenzymatic Glucose Sensors Implanted in Mice,” Trans. Am. Soc. Artif. Intern. Organs, XXXIV:259-265 (1988). |
Clarke, W. L., et al., “Evaluating Clinical Accuracy of Systems for Self-Monitoring of Blood Glucose,” Diabetes Care, 10(5):622-628 (Sep.-Oct. 1987). |
Csöregi, E. et al., “Design, Characterization, and One-Point in Vivo Calibration of a Subcutaneously Implanted Glucose Electrode,” Anal. Chem. 66(19):3131-3138 (Oct. 1, 1994). |
Csöregi, E. et al., “Design and Optimization of a Selective Subcutaneously Implantable Glucose Electrode Based on “Wired” Glucose Oxidase,” Anal. Chem. 67(7):1240-1244 (Apr. 1, 1995). |
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. 121:31-40 (1995). |
Davis, G., “Electrochemical Techniques for the Development of Amperometric Biosensors”, Biosensors, 1:161-178 (1985). |
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):1285-1289 (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., 110(8):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., 111:2357-2358 (1989). |
Denisevich, P. et al., “Unidirectional Current Flow and Charge State Trapping at Redox Polymer Interfaces on Bilayer Electrodes: Principles, Experimental Demonstration, and Theory,” J. Am. Chem. Soc., 103(16):4727-4737 (1981). |
Dicks, J. M., “Ferrocene modified polypyrrole with immobilised glucose oxidase and its application in amperometric glucose microbiosensors,” Ann. Biol. clin., 47:607-619 (1989). |
Engstrom, R.C., “Electrochemical Pretreatment of Glassy Carbon Electrodes”, Anal. Chem., 54(13):2310-2314 (Nov. 1982). |
Engstrom, R.C. et al., “Characterization of Electrochemically Pretreated Glassy Carbon Electrodes”, Anal. Chem., 56(2):136-141 (Feb. 1984). |
Ellis, C. D., “Selectivity and Directed Charge Transfer through an Electroactive Metallopolymer Film,” J. Am. Chem. Soc., 103(25):7480-7483 (1981). |
Feldman, B.J. et al., “Electron Transfer Kinetics at Redox Polymer/Solution Interfaces Using Microelectrodes and Twin Electrode Thin Layer Cells”, J. Electroanal. Chem., 194(1):63-81 (Oct. 10, 1985). |
Fischer, H. et al., “Intramolecular Electron Transfer Mediated by 4,4′-Bipyridine and Related Bridging Groups”, J. Am. Chem. Soc., 98(18):5512-5517 (Sep. 1, 1976). |
Foulds, N.C. et al., “Enzyme Entrapment in Electrically Conducting Polymers,” J. Chem. Soc., Faraday Trans 1., 82:1259-1264 (1986). |
Foulds, N.C. et al., “Immobilization of Glucose Oxidase in Ferrocene-Modified Pyrrole Polymers,” Anal. Chem., 60(22):2473-2478 (Nov. 15, 1988). |
Frew, J.E. et al., “Electron-Transfer Biosensors”, Phil. Trans. R. Soc. Lond., B316:95-106 (1987). |
Gorton, L. et al., “Selective detection in flow analysis based on the combination of immobilized enzymes and chemically modified electrodes,” Analytica Chimica Acta., 250:203-248 (1991). |
Gregg, B. A. et al., “Cross-Linked Redox Gels Containing Glucose Oxidase for Amperometric Biosensor Applications,” Analytical Chemistry, 62(3):258-263 (Feb. 1, 1990). |
Gregg, B. A. et al., “Redox Polymer Films Containing Enzymes. 1. A Redox-Conducting Epoxy Cement: Synthesis, Characterization, and Electrocatalytic Oxidation of Hydroquinone,” J. Phys. Chem., 95(15):5970-5975 (1991). |
Hale, P.D. et al., “A New Class of Amperometric Biosensor Incorporating a Polymeric Electron-Transfer Mediator,” J. Am. Chem. Soc., 111(9):3482-3484 (1989). |
Harrison, D.J. et al., “Characterization of Perfluorosulfonic Acid Polymer Coated Enzyme Electrodes and a Miniaturized Integrated Potentiostat for Glucose Analysis in Whole Blood”, Anal. Chem., 60(19):2002-2007 (Oct. 1, 1988). |
Hawkridge, F. M. et al., “Indirect Coulometric Titration of Biological Electron Transport Components,” Analytical Chemistry, 45(7):1021-1027 (Jun. 1973). |
Heller, A., “Amperometric biosensors based on three-dimensional hydrogel-forming epoxy networks,” Sensors and Actuators B, 13-14:180-183 (1993). |
Heller, A., “Electrical Connection of Enzyme Redox Centers to Electrodes,” J. Phys. Chem., 96(9):3579-3587 (1992). |
Heller, A., “Electrical Wiring of Redox Enzymes,” Acc. Chem. Res., 23(5):129-134 (1990). |
Ianniello, R.M. et al. “Immobilized Enzyme Chemically Modified Electrode as an Amperometric Sensor”, Anal. Chem., 53(13):2090-2095 (Nov. 1981). |
Ianniello, R.M. et al., “Differential Pulse Voltammetric Study of Direct Electron Transfer in Glucose Oxidase Chemically Modified Graphite Electrodes”, Anal. Chem., 54:(7):1098-1101 (Jun. 1981). |
Ikeda, T. et al., “Glucose oxidase-immobilized benzoquinone-carbon paste electrode as a glucose sensor,” Agric. Biol. Chem., 49(2) (1 page-Abstract only)(1985). |
Ikeda, T. et al., “Kinetics of Outer-Sphere Electron Transfers Between Metal Complexes in Solutions and Polymeric Films on Modified Electrodes”, J. Am. Chem. Soc., 103(25):7422-7425 (Dec. 16, 1981). |
Johnson, J. M. et al., “Potential-Dependent Enzymatic Activity in an Enzyme Thin-Layer Cell,” Anal. Chem. 54:1377-1383 (1982). |
Johnson, K.W., “Reproducible Electrodeposition of Biomolecules for the Fabrication of Miniature Electroenzymatic Biosensors,” Sensors and Actuators B Chemical, B5:85-89 (1991). |
Jönsson, G. et al., “An Amperometric Glucose Sensor Made by Modification of a Graphite Electrode Surface With Immobilized Glucose Oxidase and Adsorbed Mediator”, Biosensors, 1:355-368 (1985). |
Josowicz, M. et al., “Electrochemical Pretreatment of Thin Film Platinum Electrodes”, J. Elecrochem. Soc., 135(1):112-115 (Jan. 1988). |
Katakis, I. et al., “Electrostatic Control of the Electron Transfer Enabling Binding of Recombinant Glucose Oxidase and Redox Polyelectrolytes,” J. Am. Chem. Soc., 116(8):3617-3618 (1994). |
Katakis, I. et al., “L-α-Glycerophosphate and L-Lactate Electrodes Based on the Electrochemical “Wiring” of Oxidases,” Analytical Chemisry, 64(9):1008-1013 (May 1, 1992). |
Kenausis, G. et al., “‘Wiring’ of glucose oxidase and lactate oxidase within a hydrogel made with poly(vinyl pyridine) complexed with [Os(4,4′-dimethoxy-2,2′-bipyridine)2Cl]+/2+,” J. Chem. Soc., Faraday Trans., 92(20):4131-4136 (1996). |
Koudelka, M. et al., “In-Vivo Behaviour of Hypodermically Implanted Microfabricated Glucose Sensors”, Biosensors & Bioelectronics, 6(1):31-36 (1991). |
Kulys, J. et al., “Mediatorless peroxidase electrode and preparation of bienzyme sensors,” Bioelectrochemisty and Bioenergetics, 24:305-311 (1990). |
Lager, W. et al., “Implantable Electrocatalytic Glucose Sensor,” Horm. Metab. Res., 26:526-530 (Nov. 1994). |
Lindner, E. et al. “Flexible (Kapton-Based) Microsensor Arrays of High Stability for Cardiovascular Applications”, J. Chem. Soc.Faraday Trans., 89(2):361-367 (Jan. 21, 1993). |
Maidan, R. et al., “Elimination of Electrooxidizable Interferant-Produced Currents in Amperometric Biosensors,” Analytical Chemistry, 64(23):2889-2896 (Dec. 1, 1992). |
Mastrototaro, J.J. et al., “An Electroenzymatic Glucose Sensor Fabricated on a Flexible Substrate”, Sensors and Biosensors B Chemical, B5:139-144 (1991). |
McNeil, C. J. et al., “Thermostable Reduced Nicotinamide Adenine Dinucleotide Oxidase: Application to Amperometric Enzyme Assay,” Anal. Chem., 61(1):25-29 (Jan. 1, 1989). |
Miyawaki, O. et al., “Electrochemical and Glucose Oxidase Coenzyme Activity of Flavin Adenine Dinucleotide Covalently Attached to Glassy Carbon at the Adenine Amino Group”, Biochimica et Biophysica Acta, 838:60-68 (1985). |
Moatti-Sirat, D. et al., “Evaluating in vitro and in vivo the inteference of ascorbate and acetaminophen on glucose detection by a needle-type glucose sensor,” Biosensors & Bioelectronics, 7(5):345-352 (1992). |
Moatti-Sirat, D. et al., “Reduction of acetaminophen interference in glucose sensors by a composite Nafion membrane: demonstration in rats and man,” Diabetologia, 37(6) (1 page-Abstract only) (Jun. 1994). |
Moatti-Sirat, D. et al., “Towards continuous glucose monitoring: in vivo evaluation of a miniaturized glucose sensor implanted for several days in rat subcutaneous tissue,” Diabetologia, 35(3) (1 page-Abstract only) (Mar. 1992). |
Nagy, G. et al., “A New Type of Enzyme Electrode: The Ascorbic Acid Eliminator Electrode,” Life Sciences, 31(23):2611-2616 (1982). |
Nakamura, S. et al., “Effect of Periodate Oxidation on the Structure and Properties of Glucose Oxidase,” Biochimica et Biophysica Acta., 445:294-308 (1976). |
Narazimhan, K. et al., “p-Benzoquinone activation of metal oxide electrodes for attachment of enzymes,” Enzyme Microb. Technol., 7(6)(1 page-Abstract only)(1985). |
Ohara, T. J. et al., “Glucose Electrodes Based on Cross-Linked [Os(bpy)2CI]+/2+ Complexed Poly(1-vinylimadazole) Films,” Analytical Chemistry, 65(23):3512-3516 (Dec. 1, 1993). |
Ohara, T. J., “Osmium Bipyridyl Redox Polymers Used in Enzyme Electrodes,” Platinum Metals Rev., 39(2):54-62 (Apr. 1995). |
Ohara, T. J. et al., ““Wired” Enzyme Electrodes for Amperometric Determination of Glucose or Lactate in the Presence of Interfering Substances,” Analytical Chemistry, 66(15):2451-2457 (Aug. 1, 1994). |
Olievier, C. N. et al., “In vivo Measurement of Carbon Dioxide Tension with a Miniature Electrode,” Pflugers Arch. 373:269-272 (1978). |
Paddock, R. et al., “Electrocatalytic reduction of hydrogen peroxide via direct electron transfer from pyrolytic graphite electrodes to irreversibly adsorbed cytochrome c peroxidase,” J. Electroanal. Chem., 260:487-494 (1989). |
Palleschi, G. et al., “A Study of Interferences in Glucose Measurements in Blood by Hydrogen Peroxide Based Glucose Probes”, Anal. Biochem., 159:114-121 (1986). |
Pankratov, I. et al., “Sol-gel derived renewable-surface biosensors,” Journal of Electroanalytical Chemistry, 393:35-41 (1995). |
Pathak, C. P. et al., “Rapid Photopolymerization of Immunoprotective Gels in Contact with Cells and Tissue,” J. Am. Chem. Soc., 114(21):8311-8312 (1992). |
Pickup, J., “Developing glucose sensors for in vivo use,” Tibtech, 11: 285-289 (Jul. 1993). |
Pickup, J. C. et al., “In vivo molecular sensing in diabetes mellitus: an implantable glucose sensor with direct electron transfer,” Diabetologia, 32(3):213-217 (1989). |
Pickup, J. et al., “Potentially-implantable, amperometric glucose sensors with mediated electron transfer: improving the operating stability,” Biosensors, 4(2) (1 page-Abstract only) (1989). |
Pishko, M.V. et al., “Amperometric Glucose Microelectrodes Prepared Through Immobilization of Glucose Oxidase in Redox Hydrogels”, Anal. Chem., 63(20):2268-2272 (Oct. 15, 1991). |
Poitout, V. et al., “A glucose monitoring system for on line estimation in man of blood glucose concentration using a miniaturized glucose sensor implanted in the subcutaneous tissue and a wearable control unit,” Diabetolgia, 36(7) (1 page-Abstract only) (Jul. 1993). |
Poitout, V. et al., “Calibration in dogs of a subcutaneous miniaturized glucose sensor using a glucose meter for blood glucose determination,” Biosensors & Bioelectronics, 7:587-592 (1992). |
Poitout, V. et al., “In vitro and in vivo evaluation in dogs of a miniaturized glucose sensor,” ASAIO Transactions, 37(3) (1 page-Abstract only) (Jul.-Sep. 1991). |
Pollak, A. et al., “Enzyme Immobilization by Condensation Copolymerization into Cross-Linked Polyacrylamide Gels,” J. Am. Chem. Soc., 102(20):6324-6336 (1980). |
Reach, G. et al., “Can Continuous Glucose Monitoring Be Used for the Treatment of Diabetes?” Analytical Chemistry, 64(6):381-386 (Mar. 15, 1992). |
Rebrin, K. et al., “Automated Feedback Control of Subcutaneous Glucose Concentration in Diabetic Dogs”, Diabetologia, 32(8):573-576 (Aug. 1989). |
Sakakida, M. et al., “Ferrocene-mediate needle-type glucose sensor covered with newly designed biocompatible membrane,” Sensors and Actuators B, 13-14:319-322 (1993). |
Samuels, G. J. et al., “An Electrode-Supported Oxidation Catalyst Based on Ruthenium (IV). pH “Encapsulation” in a Polymer Film,” J. Am. Chem. Soc., 103(2):307-312 (1981). |
Sasso, S.V. et al., “Electropolymerized 1,2-Diaminobenzene as a Means to Prevent Interferences and Fouling and to Stabilize Immobilized Enzyme in Electrochemical Biosensors”, Anal. Chem., 62(11):1111-1117 (Jun. 1, 1990). |
Scheller, F. et al., “Enzyme electrodes and their application,” Phil. Trans. R. Soc, Lond., B 316:85-94 (1987). |
Schmehl, R.H. et al., “The Effect of Redox Site Concentration on the Rate of Mediated Oxidation of Solution Substrates by a Redox Copolymer Film”, J. Electroanal. Chem., 152:97-109 (Aug. 25, 1983). |
Shichiri, M. et al., “Glycaemic Control in Pancreatetomized Dogs with a Wearable Artificial Endocrine Pancreas”, Diabetologia, 24(3):179-184 (Mar. 1983). |
Sittampalam, G. et al., “Surface-Modified Electrochemical Detector for Liquid Chromatography”, Anal. Chem., 55(9):1608-1610 (Aug. 1983). |
Soegijoko, S. et al., Horm. Metabl. Res., Suppl. Ser, 12 (1 page-Abstract only) (1982). |
Sprules, S. D. et al., “Evaluation of a New Disposable Screen-Printed Sensor Strip for the Measurement of NADH and Its Modification to Produce a Lactate Biosensor Employing Microliter Volumes,” Electroanalysis, 8(6):539-543 (1996). |
Sternberg, F. et al., “Calibration Problems of Subcutaneous Glucosensors when Applied “In-Situ” in Man,” Horm. metabl. Res, 26:524-525 (1994). |
Sternberg, R. et al., “Covalent Enzyme Coupling on Cellulose Acetate Membranes for Glucose Sensor Development,” Analytical Chemistry, 60(24):2781-2786 (Dec. 15, 1988). |
Sternberg, R. et al., “Study and Development of Multilayer Needle-type Enzyme-based Glucose Microsensors,” Biosensors, 4:27-40 (1988). |
Suekane, M., “Immobolization of glucose isomerase,” Zeitschrift für Allgemeine Mikrobiologie, 22(8):565-576 (1982). |
Tajima, S. et al., “Simultaneous Determination of Glucose and 1,5-Anydroglucitol”, Chemical Abstracts, 111(25):394 111:228556g (Dec. 18, 1989). |
Tarasevich, M.R. “Bioelectrocatalysis”, Comprehensive Treatise of Electrochemistry, 10(Ch. 4):231-295 (1985). |
Tatsuma, T. et al., “Enzyme Monolayer- and Bilayer-Modified Tin Oxide Electrodes for the Determination of Hydrogen Peroxide and Glucose,” Anal. Chem., 61(21):2352-2355 (Nov. 1, 1989). |
Taylor, C. et al., “‘Wiring’ of glucose oxidase within a hydrogel made with polyvinyl imidazole complexed with [(Os-4,4′-dimethoxy-2,2′-bipyridine)Cl]+/2+,” Journal of Electroanalytical Chemistry, 396:511-515 (1995). |
Trojanowicz, M. et al., “Enzyme Entrapped Polypyrrole Modified Electrode for Flow-Injection Determination of Glucose,” Biosensors & Bioelectronics, 5:149-156 (1990). |
Turner, A.P.F. et al., “Diabetes Mellitus: Biosensors for Research and Management”, Biosensors, 1:85-115 (1985). |
Turner, R.F.B. et al., “A Biocompatible Enzyme Electrode for Continuous in vivo Glucose Monitoring in Whole Blood,” Sensors and Actuators, B1(1-6):561-564 (Jan. 1990). |
Tuzhi, P. et al., “Constant Potential Pretreatment of Carbon Fiber Electrodes for In Vivo Electrochemistry”, Analytical Letters, 24(6):935-945 (1991). |
Umaha, M., “Protein-Modified Electrochemically Active Biomaterial Surface,” U.S. Army Research Office Report, (12 pages) (Dec. 1988). |
Urban, G. et al., “Miniaturized Thin-Film Biosensors Using Covalently Immobilized Glucose Oxidase”, Biosensors & Bioelectronics, 6(7):555-562 (1991). |
Velho, G. et al., “In Vitro and In Vivo Stability of Electrode Potentials in Needle-Type Glucose Sensors”, Diabetes, 38(2):164-171 (Feb. 1989). |
Velho, G. et al., “Strategies for calibrating a subcutaneous glucose sensor,” Biomed. Biochin. Acta, 48(11/12):957-964 (1989). |
Von Woedtke, T. et al., “In Situ Calibration of Implanted Electrochemical Glucose Sensors,” Biomed. Biochim. Acta, 48(11/12):943-952 (1989). |
Vreeke, M.S. et al., “Chapter 15: Hydrogen Peroxide Electrodes Based on Electrical Connection of Redox Centers of Various Peroxidases to Electrodes through a Three-Dimensional Electron-Relaying Polymer Network,” Diagnostic Biosensor Polymers, 7 pgs. (Jul. 26, 1993). |
Vreeke, M. et al., “Hydrogen Peroxide and β-Nicotinamide Adenine Dinucleotide Sensing Amperometric Electrodes Based on Electrical Connection of Horseradish Peroxidase Redox Centers to Electrodes through a Three-Dimensional Electron Relaying Polymer Network,” Analytical Chemistry, 64(24):3084-3090 (Dec. 15, 1992). |
Wang, J. et al., “Activation of Glassy Carbon Electrodes by Alternating Current Electrochemical Treatment”, Analytica Chimica Acta, 167:325-334 (Jan. 1985). |
Wang, J. et al., “Amperometric biosensing of organic peroxides with peroxidase-modified electrodes,” Analytica Chimica Acta. 254:81-88 (1991). |
Wang, D. L. et al., “Miniaturized Flexible Amperometric Lactate Probe,” Analytical Chemistry, 65(8):1069-1073 (Apr. 15, 1993). |
Wang, J. et al., “Screen-Printable Sol-Gel Enzyme-Containing Carbon Inks,” Analytical Chemistry, 68(15):2705-2708 (Aug. 1, 1996). |
Wang, J. et al., “Sol-Gel-Derived Metal-Dispersed Carbon Composite Amperometric Biosensors,” Electroanalysis, 9(1):52-55 (1997). |
Williams, D.L. et al., “Electrochemical-Enzymatic Analysis of Blood Glucose and Lactate”, Anal. Chem., 42(1):118-121 (Jan. 1970). |
Wilson, G. S. et al., “Progress toward the Development of an Implantable Sensor for Glucose,” Clinical Chemistry, 38(9):1613-1617 (1992). |
Yabuki, S. et al., “Electro-conductive Enzyme Membrane,” J. Chem. Soc. Chem. Commun, 945-946 (1989). |
Yang, L. et al., “Determination of Oxidase Enzyme Substrates Using Cross-Flow Thin-Layer Amperometry,” Electroanalysis, 8(8-9):716-721 (1996). |
Yao, S.J. et al., “The Interference of Ascorbate and Urea in Low-Potential Electrochemical Glucose Sensing”, Proceedings of the Twelfth Annual International Conference of the IEEE Engineering in Medicine and Biology Society, 12(2):487-489 (Nov. 1-4, 1990). |
Yao, T. et al., “A Chemically-Modified Enzyme Membrane Electrode As An Amperometric Glucose Sensor,” Analytica Chimica Acta., 148:27-33 (1983). |
Ye, L. et al., “High Current Density “Wired” Quinoprotein Glucose Dehydrogenase Electrode,” Anal. Chem., 65(3):238-241 (Feb. 1, 1993). |
Yildiz, A. et al., “Evaluation of an Improved Thin-Layer Electrode,” Analytical Chemistry, 40(70):1018-1024 (Jun. 1968). |
Zamzow, K. et al., New Wearable Continuous Blood Glucose Monitor (BGM) and Artificial Pancreas (AP), Diabetes, 39:5A(20) (May 1990). |
Zhang, Y. et al., “Application of cell culture toxicity tests to the development of implantable biosensors,” Biosensors & Bioelectronics, 6:653-661 (1991). |
Zhang, Y. et al., “Elimination of the Acetaminophen Interference in an Implantable Glucose Sensor,” Anal. Chem. 66:1183-1188 (1994). |
Aisenberg et al., “Blood glucose, level monitoring alarm system,” Great Britain Patent GB 1394171, issued May 14, 1975, (Abstract only). |
Cerami, “Monitor for continuous in vivo measurement of glucose concentration,” United States Patent 4,436,094, issued Mar. 13, 1984, 2 pages (Abstract only). |
Franetzki, “Implantable, calibrateable measuring instrument for a body substance and a calibrating method,” United States Patent 4,759,371, issued Jul. 26, 1988, 2 pages (Abstract only). |
Gilli, “Apparatus and method employing plural electrode configurations for cardioversi on of atrial fibrillation in an arrhythmia control system,” United States Patent 5,209,229, issued May 11, 1993, 2 pgs (Abstract only). |
Klein, “Control and regulation device for glycemia,” Great Britain Patent 1599241A, issued Sep. 30, 1981 (Abstract only). |
Klein, “Method and apparatus for the control and regulation of glycemia,” United States Patent 4,206,755, issued Jun. 10, 1980, 2 pages (Abstract only). |
Lawton, “Implantable electrochemical sensor,” United States Patent 4,016,866, issued Apr. 12, 1977, 2 pages (Abstract only). |
Vadgama et al., “Sensor devices,” United States Patent 5,531,878, issued Jul. 2, 1996, 2 pages (Abstract only). |
Abstract from Korf, J. et al., “Monitoring of Glucose and Lactate Using Microdialysis: Applications in Neonates and Rat Brain”, Developmental Neuroscience, vol. 15, No. 3-5, pp. 240-46 (1993). |
Flentge F. et al., “An Enzyne-Reactor for Electrochemical Monitoring of Choline and Acetylcholine: Applications in High-Performance Liquid Chromatography, Brain Tissue, Microdialysis and Cerebrospinal Fluid”, Analytical Biochemistry, vol. 204, No. 2, pp. 305-310, (Aug. 1, 1992). |
Laurell, T., “A Continuous Glucose Monitoring System Based on Microdialysis”, Journal of Med. Eng. & Tech., vol. 16, No. 5, pp. 187-193 (Sep./Oct. 1992). |
Marko-Varga, G. et al., “Enzyme-Based Biosensor as a Selective Detection Unit in Column Liquid Chromatography”, Journal of Chromatography A, vol. 660, pp. 153-167 (1994). |
Schmidt, F.J. et al., “Calibration of a Wearable Glucose Sensor”, The International Journal of Artificial Organs, vol. 15, No. 1, pp. 55-61 (1992). |