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E J Crane

Showing results (1-10 of 9) with videos related to

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Biochemistry|February 20, 1996
The active-site histidine-10 of enterococcal NADH peroxidase is not essential for catalytic activityE J Crane, D Parsonage, A Claiborne
Biochemistry|July 15, 1997
13C NMR analysis of the cysteine-sulfenic acid redox center of enterococcal NADH peroxidaseE J Crane, J Vervoort, A Claiborne
Biochemistry|October 31, 1995
Analysis of the kinetic mechanism of enterococcal NADH peroxidase reveals catalytic roles for NADH complexes with both oxidized and two-electron-reduced enzyme formsE J Crane, D Parsonage, L B Poole, et al.
Biochemistry|August 24, 2000
Analysis of the kinetic and redox properties of the NADH peroxidase R303M mutant: correlation with the crystal structureE J Crane, J I Yeh, J Luba, et al.
Biochemistry|October 3, 1995
Mechanism of reconstitution of brewers' yeast pyruvate decarboxylase with thiamin diphosphate and magnesiumJ A Vaccaro, E J Crane, T K Harris, et al.
Biochemistry|November 26, 1999
Protein-sulfenic acids: diverse roles for an unlikely player in enzyme catalysis and redox regulationA Claiborne, J I Yeh, T C Mallett, et al.
European Journal of Biochemistry|November 28, 2001
The NADH oxidase from Pyrococcus furiosus. Implications for the protection of anaerobic hyperthermophiles against oxidative stressD E Ward, C J Donnelly, M E Mullendore, et al.
Environmental Pollution (Barking, Essex : 1987)|December 2, 2020
Emerging organic compounds in European groundwaterS Y Bunting, D J Lapworth, E J Crane, et al.
Nature|August 9, 2013
Nitrogen losses in anoxic marine sediments driven by Thioploca-anammox bacterial consortiaM G Prokopenko, M B Hirst, L De Brabandere, et al.
Pageof 1

Showing results (1-10 of 9) with videos related to

Sort By:
Pageof 1
Biochemistry|February 20, 1996
The active-site histidine-10 of enterococcal NADH peroxidase is not essential for catalytic activityE J Crane, D Parsonage, A Claiborne
Biochemistry|July 15, 1997
13C NMR analysis of the cysteine-sulfenic acid redox center of enterococcal NADH peroxidaseE J Crane, J Vervoort, A Claiborne
Biochemistry|October 31, 1995
Analysis of the kinetic mechanism of enterococcal NADH peroxidase reveals catalytic roles for NADH complexes with both oxidized and two-electron-reduced enzyme formsE J Crane, D Parsonage, L B Poole, et al.
Biochemistry|August 24, 2000
Analysis of the kinetic and redox properties of the NADH peroxidase R303M mutant: correlation with the crystal structureE J Crane, J I Yeh, J Luba, et al.
Biochemistry|October 3, 1995
Mechanism of reconstitution of brewers' yeast pyruvate decarboxylase with thiamin diphosphate and magnesiumJ A Vaccaro, E J Crane, T K Harris, et al.
Biochemistry|November 26, 1999
Protein-sulfenic acids: diverse roles for an unlikely player in enzyme catalysis and redox regulationA Claiborne, J I Yeh, T C Mallett, et al.
European Journal of Biochemistry|November 28, 2001
The NADH oxidase from Pyrococcus furiosus. Implications for the protection of anaerobic hyperthermophiles against oxidative stressD E Ward, C J Donnelly, M E Mullendore, et al.
Environmental Pollution (Barking, Essex : 1987)|December 2, 2020
Emerging organic compounds in European groundwaterS Y Bunting, D J Lapworth, E J Crane, et al.
Nature|August 9, 2013
Nitrogen losses in anoxic marine sediments driven by Thioploca-anammox bacterial consortiaM G Prokopenko, M B Hirst, L De Brabandere, et al.
Pageof 1