Electron transfer in proteins

S. Larsson
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引用次数: 99

Abstract

Thermal electron transfer in protein structures is discussed on the basis of a model first proposed by R. A. Marcus. The electronic matrix element H12 is obtained in a many-electron theory for a number of typical structures of interest in proteins. Repetitive structures often permit resonance transfer over long distances provided the absolute value of the coupling matrix element between neighbouring atomic orbitals is larger than a critical value. The crucial energy separation Δ is obtained as a product of the transfer ‘pathway’ multiplied by coupling matrix elements at the gaps. It is shown that empty gaps are responsible for non-adiabatic behaviour and that saturated as well as aromatic parts of the protein permit electron transfer over larger distances than so far recognized. The Salemme model of the cytochrome c–cytochrome b5 interaction may permit electron transfer if the 8.4 A gap between the haem edges is filled by matter, for instance one of the propionate groups at the haem edge. Finally, the cytochrome c–cytochrome c peroxidase model of Poulos and Kraut is discussed and some alternative pathways suggested.
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蛋白质中的电子转移
本文在r.a.马库斯首先提出的模型的基础上讨论了蛋白质结构中的热电子传递。电子矩阵元素H12是在多电子理论中得到的,用于蛋白质的一些典型结构。只要相邻原子轨道间耦合矩阵元素的绝对值大于临界值,重复结构通常允许长距离共振转移。关键的能量分离Δ是传递“路径”乘以间隙处的耦合矩阵元素的乘积。结果表明,空白间隙是导致非绝热行为的原因,蛋白质的饱和部分和芳香部分允许电子在比迄今为止认识到的更大的距离上转移。细胞色素c -细胞色素b5相互作用的Salemme模型可能允许电子转移,如果血红素边缘之间8.4 A的间隙被物质填充,例如血红素边缘的一个丙酸基团。最后讨论了Poulos和Kraut的细胞色素c -过氧化物酶模型,并提出了一些可能的途径。
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