Citation: Je. Dove et Jp. Klinman, Trihydroxyphenylalanine quinone (TPQ) from copper amine oxidases and lysyltyrosylquinone (LTQ) from lysyl oxidase, ADV PROTEIN, 58, 2001, pp. 141-174
Citation: Cl. Tang et Jp. Klinman, The catalytic function of bovine lysyl oxidase in the absence of copper, J BIOL CHEM, 276(33), 2001, pp. 30575-30578
Citation: B. Schwartz et al., The role of copper in topa quinone biogenesis and catalysis, as probed by azide inhibition of a copper amine oxidase from yeast, BIOCHEM, 40(9), 2001, pp. 2954-2963
Citation: Sc. Tsai et Jp. Klinman, Probes of hydrogen tunneling with horse liver alcohol dehydrogenase at subzero temperatures, BIOCHEM, 40(7), 2001, pp. 2303-2311
Citation: Nk. Williams et Jp. Klinman, Whence topa? Models for the biogenesis of topa quinone in copper amine oxidases, J MOL CAT B, 8(1-3), 2000, pp. 95-101
Citation: Jk. Chin et Jp. Klinman, Probes of a role for remote binding interactions on hydrogen tunneling in the horse liver alcohol dehydrogenase reaction, BIOCHEM, 39(6), 2000, pp. 1278-1284
Authors:
Chen, ZW
Schwartz, B
Williams, NK
Li, RB
Klinman, JP
Mathews, FS
Citation: Zw. Chen et al., Crystal structure at 2.5 angstrom resolution of zinc-substituted copper amine oxidase of Hansenula polymorpha expressed in Escherichia coli, BIOCHEM, 39(32), 2000, pp. 9709-9717
Authors:
Melville, CR
Green, EL
Sanders-Loehr, J
Klinman, JP
Citation: Cr. Melville et al., Reassessment of the active site quino-cofactor proposed to occur in the Aspergillus niger amine oxidase AO-I from the properties of model compounds, BIOCHEM, 39(25), 2000, pp. 7589-7594
Authors:
Dove, JE
Schwartz, B
Williams, NK
Klinman, JP
Citation: Je. Dove et al., Investigation of spectroscopic intermediates during copper-binding and TPQformation in wild-type and active-site mutants of a copper-containing amine oxidase from yeast, BIOCHEM, 39(13), 2000, pp. 3690-3698
Citation: B. Schwartz et al., Kinetic analysis of oxygen utilization during cofactor biogenesis in a copper-containing amine oxidase from yeast, BIOCHEM, 39(13), 2000, pp. 3699-3707
Citation: A. Kohen et Jp. Klinman, Protein flexibility correlates with degree of hydrogen tunneling in thermophilic and mesophilic alcohol dehydrogenases, J AM CHEM S, 122(43), 2000, pp. 10738-10739
Citation: Sa. Mills et Jp. Klinman, Evidence against reduction of Cu2+ to Cu+ during dioxygen activation in a copper amine oxidase from yeast, J AM CHEM S, 122(41), 2000, pp. 9897-9904
Citation: L. Stewart et Jp. Klinman, Kinetic parameters for dimeric and tetrameric forms of bovine dopamine beta-monooxygenase and their relationship to non-Michaelis-Menten behavior, FEBS LETTER, 454(3), 1999, pp. 229-232
Citation: Kw. Rickert et Jp. Klinman, Nature of hydrogen transfer in soybean lipoxygenase 1: Separation of primary and secondary isotope effects, BIOCHEM, 38(38), 1999, pp. 12218-12228
Authors:
Plastino, J
Green, EL
Sanders-Loehr, J
Klinman, JP
Citation: J. Plastino et al., An unexpected role for the active site base in cofactor orientation and flexibility in the copper amine oxidase from Hansenula polymorpha, BIOCHEM, 38(26), 1999, pp. 8204-8216
Citation: Qj. Su et Jp. Klinman, Nature of oxygen activation in glucose oxidase from Aspergillus niger: Theimportance of electrostatic stabilization in superoxide formation, BIOCHEM, 38(26), 1999, pp. 8572-8581
Citation: Jm. Hevel et al., Mutation of a strictly conserved, active-site residue alters substrate specificity and cofactor biogenesis in a copper amine oxidase, BIOCHEM, 38(12), 1999, pp. 3683-3693
Citation: J. Rucker et Jp. Klinman, Computational study of tunneling and coupled motion in alcohol dehydrogenase-catalyzed reactions: Implication for measured hydrogen and carbon isotope effects, J AM CHEM S, 121(10), 1999, pp. 1997-2006