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三甲胺脱氢酶与电子传递黄素蛋白的反应。

The reaction of trimethylamine dehydrogenase with electron transferring flavoprotein.

作者信息

Huang L, Rohlfs R J, Hille R

机构信息

Department of Medical Biochemistry, Ohio State University, Columbus 43210, USA.

出版信息

J Biol Chem. 1995 Oct 13;270(41):23958-65. doi: 10.1074/jbc.270.41.23958.

Abstract

The kinetics of electron transfer between trimethylamine dehydrogenase (TMADH) and its physiological acceptor, electron transferring flavoprotein (ETF), has been studied by static and stopped-flow absorbance measurements. The results demonstrate that reducing equivalents are transferred from TMADH to ETF solely through the 4Fe/4S center of the former. The intrinsic limiting rate constant (klim) and dissociation constant (Kd) for electron transfer from the reduced 4Fe/4S center of TMADH to ETF are about 172 s-1 and 10 microM, respectively. The reoxidation of fully reduced TMADH with an excess of ETF is markedly biphasic, indicating that partial oxidation of the iron-sulfur center in 1-electron reduced enzyme significantly reduces the rate of electron transfer out of the enzyme in these forms. The interaction of the two unpaired electron spins of flavin semiquinone and reduced 4Fe/4S center in 2-electron reduced TMADH, on the other hand, does not significantly slow down the electron transfer from the 4Fe/4S center to ETF. From a comparison of the limiting rate constants for the oxidative and reductive half-reactions, we conclude that electron transfer from TMADH to ETF is not rate-limiting during steady-state turnover. The overall kinetics of the oxidative half-reaction are not significantly affected by high salt concentrations, indicating that electrostatic forces are not involved in the formation and decay of reduced TMADH-oxidized ETF complex.

摘要

通过静态和停流吸光度测量研究了三甲胺脱氢酶(TMADH)与其生理受体电子传递黄素蛋白(ETF)之间的电子转移动力学。结果表明,还原当量仅通过前者的4Fe/4S中心从TMADH转移至ETF。从TMADH还原的4Fe/4S中心向ETF进行电子转移的固有极限速率常数(klim)和解离常数(Kd)分别约为172 s-1和10 μM。用过量的ETF使完全还原的TMADH再氧化具有明显的双相性,表明单电子还原酶中铁硫中心的部分氧化显著降低了这些形式的酶中电子转出的速率。另一方面,在双电子还原的TMADH中黄素半醌的两个未成对电子自旋与还原的4Fe/4S中心之间的相互作用,不会显著减慢从4Fe/4S中心向ETF的电子转移。通过比较氧化和还原半反应的极限速率常数,我们得出结论,在稳态周转期间,从TMADH到ETF的电子转移不是限速步骤。氧化半反应的整体动力学不受高盐浓度的显著影响,表明静电力不参与还原的TMADH-氧化的ETF复合物的形成和衰变。

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