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Regulation of oxidation-reduction potentials through redox-linked ionization in the Y98H mutant of the Desulfovibrio vulgaris [Hildenborough] flavodoxin: direct proton nuclear magnetic resonance spectroscopic evidence for the redox-dependent shift in the pKa of Histidine-98.通过普通脱硫弧菌[希登伯勒]黄素氧还蛋白Y98H突变体中氧化还原相关电离调节氧化还原电位:组氨酸-98的pKa中氧化还原依赖性位移的直接质子核磁共振光谱证据。
Biochemistry. 1997 Jul 22;36(29):9013-21. doi: 10.1021/bi970783+.
3
On the mechanism of D-amino acid oxidase. Structure/linear free energy correlations and deuterium kinetic isotope effects using substituted phenylglycines.关于D-氨基酸氧化酶的作用机制。使用取代苯甘氨酸的结构/线性自由能关系和氘动力学同位素效应。
J Biol Chem. 1997 Feb 21;272(8):4924-34. doi: 10.1074/jbc.272.8.4924.
4
Three-dimensional structure of porcine kidney D-amino acid oxidase at 3.0 A resolution.猪肾D-氨基酸氧化酶在3.0埃分辨率下的三维结构。
J Biochem. 1996 Jul;120(1):14-7. doi: 10.1093/oxfordjournals.jbchem.a021376.
5
Crystal structure of D-amino acid oxidase: a case of active site mirror-image convergent evolution with flavocytochrome b2.D-氨基酸氧化酶的晶体结构:与黄素细胞色素b2活性位点镜像趋同进化的一个实例
Proc Natl Acad Sci U S A. 1996 Jul 23;93(15):7496-501. doi: 10.1073/pnas.93.15.7496.
6
Functional properties of the histidine-aspartate ion pair of flavocytochrome b2 (L-lactate dehydrogenase): substitution of Asp282 with asparagine.黄素细胞色素b2(L-乳酸脱氢酶)的组氨酸-天冬氨酸离子对的功能特性:用天冬酰胺取代天冬氨酸282
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7
The chemical mechanism of flavoprotein-catalysed alpha-hydroxy acid dehydrogenation: a mutational analysis.黄素蛋白催化的α-羟基酸脱氢反应的化学机制:突变分析
Biochem Soc Trans. 1996 Feb;24(1):77-83. doi: 10.1042/bst0240077.
8
NMR studies of flavoproteins.黄素蛋白的核磁共振研究。
Biochem Soc Trans. 1996 Feb;24(1):116-21. doi: 10.1042/bst0240116.
9
L-lactate oxidase and L-lactate monooxygenase: mechanistic variations on a common structural theme.L-乳酸氧化酶和L-乳酸单加氧酶:常见结构主题上的机制变化
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10
Anion-exchange analysis of ribulose-bisphosphate carboxylase/oxygenase reactions: CO2/O2 specificity determination and identification of side products.核酮糖-1,5-二磷酸羧化酶/加氧酶反应的阴离子交换分析:二氧化碳/氧气特异性测定及副产物鉴定
Anal Biochem. 1993 Mar;209(2):367-74. doi: 10.1006/abio.1993.1136.

关于黄素细胞色素b2(酵母L-乳酸脱氢酶)活性位点组氨酸的pKa值。

About the pKa of the active-site histidine in flavocytochrome b2 (yeast L-lactate dehydrogenase).

作者信息

Rao K S, Lederer F

机构信息

Laboratoire d'Enzymologie et Biochemie Structurales, Centre National de la Recherche Scientifique, Gif-sur-Yvette, France.

出版信息

Protein Sci. 1998 Jul;7(7):1531-7. doi: 10.1002/pro.5560070706.

DOI:10.1002/pro.5560070706
PMID:9684885
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2144062/
Abstract

Flavocytochrome b2 or L-lactate dehydrogenase from yeasts catalyzes the oxidation of L-lactate at the expense of monoelectronic acceptors such as cytochrome c, its physiological partner. When incubated in the presence of both L-lactate and a keto acid, the enzyme catalyzes a transhydrogenation reaction wherein only the flavin is involved. During this reaction, the substrate alpha-hydrogen is transferred not only to the solvent but also in part to the keto acid, which acts as reverse substrate. Thus, when bound to the reduced enzyme, this hydrogen is sticky. In the context of a carbanion mechanism, it resides on Nepsilon of His373, the active site base. We have shown before that a correlation between the amount of intermolecular hydrogen transfer from [2-3H] lactate and the keto acid reverse substrate concentration enables the determination of the first-order rate constant, kHe, for exchange of the substrate-derived protein-bound hydrogen with bulk solvent (Urban P, Lederer F, 1985, J Biol Chem 260:11115-11122). In this work, we show that the exchange with the solvent appears to be independent of the phosphate buffer concentration in the range from 40 to 500 mM. It is thus probable that exchange occurs directly with water molecules. The second-order rate constant for exchange is then 0.16 (+/-0.03) M(-1) s(-1). Using the Eigen equation, this figure yields a pKa of 9.1+/-0.1 for His373 in the reduced enzyme, compared to a probable value of 6.0 or less in the oxidized enzyme (Suzuki H, Ogura YC, 1970, J Biochem 67:291-295). The mechanistic significance of these results is discussed.

摘要

酵母中的黄素细胞色素b2或L-乳酸脱氢酶以单电子受体如细胞色素c(其生理伴侣)为代价催化L-乳酸的氧化。当在L-乳酸和酮酸同时存在的情况下孵育时,该酶催化一种仅涉及黄素的转氢反应。在这个反应过程中,底物α-氢不仅转移到溶剂中,还部分转移到酮酸上,酮酸作为反向底物。因此,当与还原态酶结合时,这个氢是粘性的。在碳负离子机制的背景下,它位于活性位点碱基His373的Nε上。我们之前已经表明,从[2-3H]乳酸到酮酸反向底物的分子间氢转移量与酮酸反向底物浓度之间的相关性能够确定底物衍生的与蛋白质结合的氢与大量溶剂交换的一级速率常数kHe(Urban P,Lederer F,1985,J Biol Chem 260:11115-11122)。在这项工作中,我们表明与溶剂的交换似乎与40至500 mM范围内的磷酸盐缓冲液浓度无关。因此,很可能是直接与水分子发生交换。交换的二级速率常数为0.16(±0.03)M-1 s-1。使用Eigen方程,该数值得出还原态酶中His373的pKa为9.1±0.1,而氧化态酶中可能的值为6.0或更低(Suzuki H,Ogura YC,1970,J Biochem 67:291-295)。讨论了这些结果的机制意义。