54
2 MET-Type Bioelectrocatalysis
86. Xu F, Shin W, Brown SH, Wahleithner JA, Sundaram UM, Solomon EI (1996) A study of a
series of recombinant fungal laccases and bilirubin oxidase that exhibit significant differences
in redox potential, substrate specificity, and stability. Biochem Biophys Acta 1292:303–311
87. Taniguchi I, Miyamoto S, Tomimura S, Hawkridge FM (1988a) Mediated electron transfer of
lactate oxidase and sarcosine oxidase with octacyanotungstate (IV) and octacyanomolybdate
(IV). J Electroanal Chem 240:333–339
88. Data taken in the laboratory of T. Ikeda. Grad. Sch. Agric., Kyoto Univ.
89. Sawyer DT, Roberts JL (1974) Experimental electrochemistry for chemists. Wiley, pp 323–
326
90. Coury Jr LA, Murray RW, Johnson JL, Rajagopalan KV (1991) Electrochemical study of
kinetics of electron transfer between synthetic electron acceptors and reduced molybdoheme
protein sulfite oxidase. J Phys Chem 95:6034–6040
91. Loach PA (1976) In: Fasman GD (ed) Handbook of biochemistry and molecular biology.
Physical and chemical data, 3rd edn, vol I. CRC, pp 123–130
92. Tsujimura S, Tatsumi H, Ogawa J, Shimizu S, Kano K, Ikeda T (2001) Bioelectrocatalytic
reduction of dioxygen to water at neutral pH using bilirubin oxidase as an enzyme and 2,2’azinobis (3-ethylbenzothiazolin-6-sulfonate) as an electron transfer mediator. J Electroanal
Chem 496:69–75
93. Bourdillon C, Demaille C, Moiroux J, Savéant J-M (1993) New insights into the enzymic
catalysis of the oxidation of glucose by native and recombinant glucose oxidase mediated by
electrochemically generated one-electron redox cosubstrates. J Am Chem Soc 115:1–10
94. Berka A, Vulterin J, Zyka J (1965) Newer redox titrants. Pergamon, New York
95. Kano K (2002) Redox potentials of proteins and other compounds of bioelectrochemical
interest in aqueous solutions. Rev Polarogr 48:29–46
96. Heineman WR, Norris BJ, Goelz JF (1975) Measurement of enzyme E°’ values by optically
transparent thin layer electrochemical cells. Anal Chem 47:79–84
97. Clark WM (1960) Oxidation-reduction potentials of organic systems. Williams & Wilkins,
Baltimore
98. Fuhrhop JH, Mauzerall D (1969) One-electron oxidation of metalloporphyrins. J Am Chem
Soc 91:4174–4181
99. Taniguchi I, Miyamoto S, Tomimura S, Hawkridge FM (1988b) Mediated electron transfer
of lactate oxidase and sarcosine oxidase with octacyanotungstate(IV) and octacyanomolybdate(IV). J Electroanal Chem 240:333–339
100. Faulkner KM, Bonaventura C, Crumbliss AL (1995) A Spectroelectrochemical method for
differentiation of steric and electronic effects in hemoglobins and myoglobins. J Biol Chem
270:13604–13612
101. Lardy HA (1949) Respiratory enzymes. Burgess, Minneapolis
102. Itoh S, Ogino M, Haranou S, Terasaka T, Ando T, Komatsu M, Ohshiro Y, Fukuzumi S, Kano K,
Takagi K, Ikeda T (1995) A model compound of novel cofactor tryptophan tryptophylquinone
of bacterial methylamine dehydrogenases. synthesis and physicochemical properties. J Am
Chem Soc 117:1485–1493
103. Morton RA, Gloor U, Schindler O, Wilson GM, Chopard-dit-Jean LH, Hemming FW, Isler
O, Leat W, Pennock JF, Rüegg R, Schwieter U, Wiss O (1958) Die Struktur des Ubichinons
aus Schweineherzen. Helv Chim Acta 41:2343–2357
104. Jagendorf AT, Marguiliea M (1960) Inhibition of spinach chloroplast photosynthetic reactions
by p-chlorophenyl-1,1-dimethylurea. Arch Biochem Biophys 90:184–195
105. Kano K, Mori T, Uno B, Goto M, Ikeda T (1993) Characterization of topa quinone cofactor.
Biochim Biophys Acta 1157:324–331
106. Kano K, Mori K, Uno B, Kubota T, Ikeda T, Senda M (1990) Voltammetric and spectroscopic studies of pyrroloquinoline quinone coenzyme under neutral and basic conditions.
Bioelectrochem Bioenerg 23:227–238
107. Duine JA, Jzn FF, Verwiel PEJ (1981) Characterization of the second prosthetic group in
methanol dehydrogenase from Hyphomicrobium X. Eur J Biochem 118:395–399
2 MET-Type Bioelectrocatalysis
86. Xu F, Shin W, Brown SH, Wahleithner JA, Sundaram UM, Solomon EI (1996) A study of a
series of recombinant fungal laccases and bilirubin oxidase that exhibit significant differences
in redox potential, substrate specificity, and stability. Biochem Biophys Acta 1292:303–311
87. Taniguchi I, Miyamoto S, Tomimura S, Hawkridge FM (1988a) Mediated electron transfer of
lactate oxidase and sarcosine oxidase with octacyanotungstate (IV) and octacyanomolybdate
(IV). J Electroanal Chem 240:333–339
88. Data taken in the laboratory of T. Ikeda. Grad. Sch. Agric., Kyoto Univ.
89. Sawyer DT, Roberts JL (1974) Experimental electrochemistry for chemists. Wiley, pp 323–
326
90. Coury Jr LA, Murray RW, Johnson JL, Rajagopalan KV (1991) Electrochemical study of
kinetics of electron transfer between synthetic electron acceptors and reduced molybdoheme
protein sulfite oxidase. J Phys Chem 95:6034–6040
91. Loach PA (1976) In: Fasman GD (ed) Handbook of biochemistry and molecular biology.
Physical and chemical data, 3rd edn, vol I. CRC, pp 123–130
92. Tsujimura S, Tatsumi H, Ogawa J, Shimizu S, Kano K, Ikeda T (2001) Bioelectrocatalytic
reduction of dioxygen to water at neutral pH using bilirubin oxidase as an enzyme and 2,2’azinobis (3-ethylbenzothiazolin-6-sulfonate) as an electron transfer mediator. J Electroanal
Chem 496:69–75
93. Bourdillon C, Demaille C, Moiroux J, Savéant J-M (1993) New insights into the enzymic
catalysis of the oxidation of glucose by native and recombinant glucose oxidase mediated by
electrochemically generated one-electron redox cosubstrates. J Am Chem Soc 115:1–10
94. Berka A, Vulterin J, Zyka J (1965) Newer redox titrants. Pergamon, New York
95. Kano K (2002) Redox potentials of proteins and other compounds of bioelectrochemical
interest in aqueous solutions. Rev Polarogr 48:29–46
96. Heineman WR, Norris BJ, Goelz JF (1975) Measurement of enzyme E°’ values by optically
transparent thin layer electrochemical cells. Anal Chem 47:79–84
97. Clark WM (1960) Oxidation-reduction potentials of organic systems. Williams & Wilkins,
Baltimore
98. Fuhrhop JH, Mauzerall D (1969) One-electron oxidation of metalloporphyrins. J Am Chem
Soc 91:4174–4181
99. Taniguchi I, Miyamoto S, Tomimura S, Hawkridge FM (1988b) Mediated electron transfer
of lactate oxidase and sarcosine oxidase with octacyanotungstate(IV) and octacyanomolybdate(IV). J Electroanal Chem 240:333–339
100. Faulkner KM, Bonaventura C, Crumbliss AL (1995) A Spectroelectrochemical method for
differentiation of steric and electronic effects in hemoglobins and myoglobins. J Biol Chem
270:13604–13612
101. Lardy HA (1949) Respiratory enzymes. Burgess, Minneapolis
102. Itoh S, Ogino M, Haranou S, Terasaka T, Ando T, Komatsu M, Ohshiro Y, Fukuzumi S, Kano K,
Takagi K, Ikeda T (1995) A model compound of novel cofactor tryptophan tryptophylquinone
of bacterial methylamine dehydrogenases. synthesis and physicochemical properties. J Am
Chem Soc 117:1485–1493
103. Morton RA, Gloor U, Schindler O, Wilson GM, Chopard-dit-Jean LH, Hemming FW, Isler
O, Leat W, Pennock JF, Rüegg R, Schwieter U, Wiss O (1958) Die Struktur des Ubichinons
aus Schweineherzen. Helv Chim Acta 41:2343–2357
104. Jagendorf AT, Marguiliea M (1960) Inhibition of spinach chloroplast photosynthetic reactions
by p-chlorophenyl-1,1-dimethylurea. Arch Biochem Biophys 90:184–195
105. Kano K, Mori T, Uno B, Goto M, Ikeda T (1993) Characterization of topa quinone cofactor.
Biochim Biophys Acta 1157:324–331
106. Kano K, Mori K, Uno B, Kubota T, Ikeda T, Senda M (1990) Voltammetric and spectroscopic studies of pyrroloquinoline quinone coenzyme under neutral and basic conditions.
Bioelectrochem Bioenerg 23:227–238
107. Duine JA, Jzn FF, Verwiel PEJ (1981) Characterization of the second prosthetic group in
methanol dehydrogenase from Hyphomicrobium X. Eur J Biochem 118:395–399
