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来自黄孢原毛平革菌的纤维二糖脱氢酶自我底物抑制作为功能调节的电化学证据。

Electrochemical evidence of self-substrate inhibition as functions regulation for cellobiose dehydrogenase from Phanerochaete chrysosporium.

作者信息

Stoica Leonard, Ruzgas Tautgirdas, Gorton Lo

机构信息

Department of Analytical Chemistry, Lund University, P.O. Box 124, SE-221 00, Lund, Sweden.

出版信息

Bioelectrochemistry. 2009 Sep;76(1-2):42-52. doi: 10.1016/j.bioelechem.2009.06.007. Epub 2009 Jun 24.

Abstract

The reaction mechanism of cellobiose dehydrogenase (CDH) from Phanerochaete chrysosporium, adsorbed on graphite electrodes, was investigated by following its catalytic reaction with cellobiose registered in both direct and mediated electron transfer modes between the enzyme and the electrode. A wall-jet flow through amperometric cell housing the CDH-modified graphite electrode was connected to a single line flow injection system. In the present study, it is proven that cellobiose, at concentrations higher than 200 microM, competes for the reduced state of the FAD cofactor and it slows down the transfer of electrons to any 2e(-)/H(+) acceptors or further to the heme cofactor, via the internal electron transfer pathway. Based on and proven by electrochemical results, a kinetic model of substrate inhibition is proposed and supported by the agreement between simulation of plots and experimental data. The implications of this kinetic model, called pseudo-ping-pong mechanism, on the possible functions CDH are also discussed. The enzyme exhibits catalytic activity also for lactose, but in contrast to cellobiose, this sugar does not inhibit the enzyme. This suggests that even if some other substrates are coincidentally oxidized by CDH, however, they do not trigger all the possible natural functions of the enzyme. In this respect, cellobiose is regarded as the natural substrate of CDH.

摘要

研究了吸附在石墨电极上的黄孢原毛平革菌纤维二糖脱氢酶(CDH)的反应机制,通过跟踪其与纤维二糖的催化反应来进行研究,该反应在酶与电极之间的直接和介导电子转移模式下均可记录。一个装有CDH修饰石墨电极的壁流喷射安培检测池与单管路流动注射系统相连。在本研究中,已证明浓度高于200微摩尔的纤维二糖会竞争FAD辅因子的还原态,并减缓电子通过内部电子转移途径向任何2e(-)/H(+)受体或进一步向血红素辅因子的转移。基于电化学结果并经其证实,提出了底物抑制动力学模型,该模型得到了曲线模拟与实验数据一致性的支持。还讨论了这种称为伪乒乓机制的动力学模型对CDH可能功能的影响。该酶对乳糖也具有催化活性,但与纤维二糖不同的是,这种糖不会抑制该酶。这表明,即使CDH偶然氧化了其他一些底物,然而,它们并不会触发该酶所有可能的天然功能。在这方面,可以认为纤维二糖是CDH的天然底物。

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