76
3 Fundamentals of DET-Type Bioelectrocatalysis
31. Elliott SJ, Hoke KR, Heffron K, Palak M, Rothery RA, Weiner JH, Armstrong FA (2004)
Voltammetric studies of the catalytic mechanism of the respiratory nitrate reductase from
escherichia coli: how nitrate reduction and inhibition depend on the oxidation state of the
active site. Biochemistry 43:799–807
32. Zu Y, Shannon RJ, Hirst J (2003) Reversible, electrochemical interconversion of NADH and
NAD + by the catalytic (Iλ) subcomplex of mitochondrial NADH: Ubiquinone oxidoreductase
(complex I). J Am Chem Soc 125:6020–6021
33. Léger C, Heffron K, Pershad HR, Maklashina E, Luna-Chavez C, Cecchini G, Ackrell BAC,
Armstrong FA (2001) Enzyme electrokinetics: energetics of succinate oxidation by fumarate
reductase and succinate dehydrogenase. Biochemistry 40:11234–11245
34. Parkin A, Seravall J, Vincent KA, Ragsdale SW, Armstrong FA (2007) Rapid and efficient electrocatalytic CO 2 /CO interconversions by carboxydothermus hydrogenoformans CO
dehydrogenase I on an electrode. J Am Chem Soc 129:10328–10329
35. Heffron K, Léger C, Rothery RA, Weiner JH, Armstrong FA (2001) Determination of an
optimal potential window for catalysis by E. coli dimethyl sulfoxide reductase and hypothesis
on the role of Mo(V) in the reaction pathway. Biochemistry 40:3117–3126
36. Hoke KR, Cobb N, Armstrong FA, Hille R (2004) Electrochemical studies of arsenite oxidase:
an unusual example of a highly cooperative two-electron molybdenum center. Biochemistry
43:1667–1674
37. Larsson T, Lindgren A, Ruzgas T, Lindquist S-E, Gorton L (2000) Bioelectrochemical characterisation of cellobiose dehydrogenase modified graphite electrodes: ionic strength and pH
dependences. J Electroanal Chem 482:1–10
38. Shiota M, Yamazaki T, Yoshimatsu K, Kojima K, Tsugawa W, Ferri S, Sode K (2016) An
Fe–S cluster in the conserved Cys-Rich region in the catalytic subunit of FAD-dependent
dehydrogenase complexes. Bioelectrochemistry 112:178–183
39. Kamitaka Y, Tsujimura S, Kano K (2007) High current density bioelectrolysis of d-fructose
at fructose dehydrogenase-adsorbed and Ketjen black-modified electrodes without a mediator.
Chem Lett 36:218–219
40. Murata K, Suzuki M, Kajiya K, Nakamura N, Ohno H (2009) High performance bioanode based
on direct electron transfer of fructose dehydrogenase at gold nanoparticle-modified electrodes.
Electrochem Commun 11:668–671
41. Kalimuthu P, Ringel P, Kruse T, Bernhardt PV (2016) Direct Electrochemistry of nitrate reductase from the fungus Neurospora crassa. Biochim. Biophys Acta Bioenerg 1857:1506–1513
42. Tsujimura S, Abo T, Ano Y, Matsushita K, Kano K (2007) Electrochemistry of D-gluconate
2-dehydrogenase from Gluconobacter frateurii on indium tin oxide electrode surface. Chem
Lett 36:1164–1165
43. Ratautas D, Lauryn˙ enas A, Dagys M, Marcinkeviˇ ci˙ e L, Meškys R, Kulys J (2016) High
current, low redox potential mediatorless bioanode based on gold nanoparticles and glucose
dehydrogenase from Ewingella americana. Electrochim Acta 199:254–260
44. Ratautasa D, Tetianec L, Marcinkeviˇ cien˙ e L, Meškys R, Kulys J (2017) Bioanode with alcohol
dehydrogenase undergoing a direct electron transfer on functionalized gold nanoparticles for
an application in biofuel cells for glycerol conversion. Biosens Bioelectron 98:215–221
45. Ramanavicius A, Habermüller K, Csöregi E, Laurinavicius V, Schuhmann W, Polypyrroleentrapped quinohemoprotein alcohol dehydrogenase. Evidence for direct electron transfer via
conducting-polymer chains. Anal Chem 71:3581–3586 (1999)
46. Bradley AL, Chobot SE, Arciero DM, Hooper AB, Elliott SJ (2004) A distinctive electrocatalytic response from the cytochrome c peroxidase of Nitrosomonas europaea. J Biol Chem
279:13297–13300
47. Siritanaratkul B, Megarity CF, Roberts TG, Samuels TOM, Winkler M, Warner JH, Happe
T, Armstrong FA (2017) Transfer of photosynthetic NADP + /NADPH recycling activity to a
porous metal oxide for highly specific, electrochemically-driven organic synthesis. Chem Sci
8:4579–4586
48. Tominaga M, Nomura S, Taniguchi I (2008) Bioelectrocatalytic current based on direct heterogeneous electron transfer reaction of glucose oxidase adsorbed onto multi-walled carbon
nanotubes synthesized on platinum electrode surfaces. Electrochem Commun 10:888–890
Précédent

- 88/145

Suivant