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细胞色素c过氧化物酶和抗坏血酸过氧化物酶中化合物I中间体电子结构的量子力学/分子力学研究

QM/MM studies of the electronic structure of the compound I intermediate in cytochrome c peroxidase and ascorbate peroxidase.

作者信息

Bathelt Christine M, Mulholland Adrian J, Harvey Jeremy N

机构信息

Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol, UK BS8 1TS.

出版信息

Dalton Trans. 2005 Nov 7(21):3470-6. doi: 10.1039/b505407a. Epub 2005 Sep 13.

Abstract

Cytochrome c peroxidase (CcP) and ascorbate peroxidase (APX) both involve reactive haem oxoferryl intermediates known as 'compound I' species. These two enzymes also have a very similar structure, especially in the vicinity of the haem group. Despite this similarity, the electronic structure of compound I in the two enzymes is known to be very different. Compound I intermediates have three unpaired electrons, two of which are always situated on the Fe-O core, whilst the third is located in a porphyrin orbital in APX and many other compound I species. In CcP, however, this third unpaired electron is positioned on a tryptophan residue lying close to the haem ring. The same residue is present in the same position in APX, yet it is not oxidized in that case. We report QM/MM calculations, using accurate B3LYP density functional theory for the QM region, on the active intermediate for both enzymes. We reproduce the observed difference in electronic structure, and show that it arises as a result of subtle electrostatic effects which affect the ionization potential of both the tryptophan and porphyrin groups. The computed structures of both enzymes do not involve deprotonation of the tryptophan group, or protonation of the oxoferryl oxygen.

摘要

细胞色素c过氧化物酶(CcP)和抗坏血酸过氧化物酶(APX)都涉及被称为“化合物I”物种的活性血红素氧铁中间体。这两种酶也具有非常相似的结构,尤其是在血红素基团附近。尽管有这种相似性,但已知这两种酶中化合物I的电子结构非常不同。化合物I中间体有三个未成对电子,其中两个总是位于Fe-O核心上,而第三个位于APX和许多其他化合物I物种的卟啉轨道中。然而,在CcP中,这第三个未成对电子位于靠近血红素环的一个色氨酸残基上。在APX的相同位置存在相同的残基,但在那种情况下它不会被氧化。我们报告了对这两种酶的活性中间体进行的QM/MM计算,对QM区域使用了精确的B3LYP密度泛函理论。我们再现了观察到的电子结构差异,并表明这是由于影响色氨酸和卟啉基团电离势的微妙静电效应导致的。两种酶的计算结构都不涉及色氨酸基团去质子化或氧铁基氧质子化。

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