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细胞色素 bc 复合物中跨膜电子转移途径:介电异质性和相间库仑相互作用。

Pathways of Transmembrane Electron Transfer in Cytochrome bc Complexes: Dielectric Heterogeneity and Interheme Coulombic Interactions.

机构信息

Department of Molecular Biophysics, Faculty of Biochemistry, Biophysics, and Biotechnology, Jagiellonian University , Kraków 31-007, Poland.

出版信息

J Phys Chem B. 2017 Feb 9;121(5):975-983. doi: 10.1021/acs.jpcb.6b11709. Epub 2017 Jan 25.

Abstract

The intramembrane cytochrome bc complex of the photosynthetic bacterium Rhodobacter capsulatus and the cytochrome bf complex, which functions in oxygenic photosynthesis, utilize two pairs of b-hemes in a symmetric dimer to accomplish proton-coupled electron transfer. The transmembrane electron transfer pathway in each complex was identified through the novel use of heme Soret band excitonic circular dichroism (CD) spectra, for which the responsible heme-heme interactions were determined from crystal structures. Kinetics of heme reduction and CD amplitude change were measured simultaneously. For bc, in which the redox potentials of the transmembrane heme pair are separated by 160 mV, heme reduction occurs preferentially to the higher-potential intermonomer heme pair on the electronegative (n) side of the complex. This contrasts with the bf complex, where the redox potential difference between transmembrane intramonomer p- and n-side hemes is substantially smaller and the n-p pair is preferentially reduced. Limits on the dielectric constant between intramonomer hemes were calculated from the interheme distance and the redox potential difference, ΔE. The difference in preferred reduction pathway is a consequence of the larger ΔE between n- and p-side hemes in bc, which favors the reduction of n-side hemes and cannot be offset by decreased repulsive Coulombic interactions between intramonomer hemes.

摘要

光合作用细菌荚膜红杆菌的膜内细胞色素 bc 复合物和细胞色素 bf 复合物都利用两对 b-血红素在对称二聚体中完成质子偶联电子转移。通过新颖的使用血红素 Soret 带激子圆二色性 (CD) 光谱,确定了每个复合物中的跨膜电子转移途径,这些血红素-血红素相互作用是从晶体结构中确定的。血红素还原和 CD 幅度变化的动力学同时进行测量。对于 bc,其跨膜血红素对的氧化还原电位相差 160 mV,电子受体侧(n 侧)优先还原跨膜对较高氧化还原电位的血红素对。这与 bf 复合物形成对比,其中跨膜单体 p-和 n-侧血红素之间的氧化还原电位差要小得多,并且 n-p 对优先还原。从血红素间距离和氧化还原电位差 ΔE 计算了单体间血红素的介电常数限制。优先还原途径的差异是 bc 中 n-和 p-侧血红素之间更大的 ΔE 的结果,这有利于 n-侧血红素的还原,并且不能通过降低单体间血红素之间的排斥库仑相互作用来抵消。

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