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Victor L Davidson

Showing results (71-80 of 109) with videos related to

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Biochemistry|February 13, 2014
Site-directed mutagenesis of Gln103 reveals the influence of this residue on the redox properties and stability of MauGSooim Shin, Erik T Yukl, Esha Sehanobish, et al.
ACS Omega|September 21, 2020
Correlation of Conservation of Sequence and Structures of Mycobacterial Hemerythrin-like Proteins with Evolutionary Relationship and Host PathogenicityZhongxin Ma, Maria Luiza Caldas Nogueira, Daniela Priscila Marchi-Salvador, et al.
Journal of Synchrotron Radiation|January 11, 2007
Tracking X-ray-derived redox changes in crystals of a methylamine dehydrogenase/amicyanin complex using single-crystal UV/Vis microspectrophotometryArwen R Pearson, Reinhard Pahl, Elena G Kovaleva, et al.
Biochemistry|November 1, 2006
Mechanistic possibilities in MauG-dependent tryptophan tryptophylquinone biosynthesisXianghui Li, Limei H Jones, Arwen R Pearson, et al.
Biochemistry|February 1, 2017
Roles of Copper and a Conserved Aspartic Acid in the Autocatalytic Hydroxylation of a Specific Tryptophan Residue during Cysteine Tryptophylquinone BiogenesisHeather R Williamson, Esha Sehanobish, Alan M Shiller, et al.
The Journal of Biological Chemistry|March 1, 2005
Active site aspartate residues are critical for tryptophan tryptophylquinone biogenesis in methylamine dehydrogenaseLimei H Jones, Arwen R Pearson, Yu Tang, et al.
Biochemistry|September 11, 2007
A single methionine residue dictates the kinetic mechanism of interprotein electron transfer from methylamine dehydrogenase to amicyaninJohn K Ma, Yongting Wang, Christopher J Carrell, et al.
Biochemistry|December 11, 2013
Oxidative damage in MauG: implications for the control of high-valent iron species and radical propagation pathwaysErik T Yukl, Heather R Williamson, LeeAnn Higgins, et al.
The Journal of Biological Chemistry|March 21, 2006
Involvement of a putative [Fe-S]-cluster-binding protein in the biogenesis of quinohemoprotein amine dehydrogenaseKazutoshi Ono, Toshihide Okajima, Minobu Tani, et al.
Biochemistry|April 12, 2016
Interaction of GoxA with Its Modifying Enzyme and Its Subunit Assembly Are Dependent on the Extent of Cysteine Tryptophylquinone BiosynthesisEsha Sehanobish, Jonatan C Campillo-Brocal, Heather R Williamson, et al.
Pageof 11

Showing results (71-80 of 109) with videos related to

Sort By:
Pageof 11
Biochemistry|February 13, 2014
Site-directed mutagenesis of Gln103 reveals the influence of this residue on the redox properties and stability of MauGSooim Shin, Erik T Yukl, Esha Sehanobish, et al.
ACS Omega|September 21, 2020
Correlation of Conservation of Sequence and Structures of Mycobacterial Hemerythrin-like Proteins with Evolutionary Relationship and Host PathogenicityZhongxin Ma, Maria Luiza Caldas Nogueira, Daniela Priscila Marchi-Salvador, et al.
Journal of Synchrotron Radiation|January 11, 2007
Tracking X-ray-derived redox changes in crystals of a methylamine dehydrogenase/amicyanin complex using single-crystal UV/Vis microspectrophotometryArwen R Pearson, Reinhard Pahl, Elena G Kovaleva, et al.
Biochemistry|November 1, 2006
Mechanistic possibilities in MauG-dependent tryptophan tryptophylquinone biosynthesisXianghui Li, Limei H Jones, Arwen R Pearson, et al.
Biochemistry|February 1, 2017
Roles of Copper and a Conserved Aspartic Acid in the Autocatalytic Hydroxylation of a Specific Tryptophan Residue during Cysteine Tryptophylquinone BiogenesisHeather R Williamson, Esha Sehanobish, Alan M Shiller, et al.
The Journal of Biological Chemistry|March 1, 2005
Active site aspartate residues are critical for tryptophan tryptophylquinone biogenesis in methylamine dehydrogenaseLimei H Jones, Arwen R Pearson, Yu Tang, et al.
Biochemistry|September 11, 2007
A single methionine residue dictates the kinetic mechanism of interprotein electron transfer from methylamine dehydrogenase to amicyaninJohn K Ma, Yongting Wang, Christopher J Carrell, et al.
Biochemistry|December 11, 2013
Oxidative damage in MauG: implications for the control of high-valent iron species and radical propagation pathwaysErik T Yukl, Heather R Williamson, LeeAnn Higgins, et al.
The Journal of Biological Chemistry|March 21, 2006
Involvement of a putative [Fe-S]-cluster-binding protein in the biogenesis of quinohemoprotein amine dehydrogenaseKazutoshi Ono, Toshihide Okajima, Minobu Tani, et al.
Biochemistry|April 12, 2016
Interaction of GoxA with Its Modifying Enzyme and Its Subunit Assembly Are Dependent on the Extent of Cysteine Tryptophylquinone BiosynthesisEsha Sehanobish, Jonatan C Campillo-Brocal, Heather R Williamson, et al.
Pageof 11