Electron transfer in multicentre redox proteins: from fundamentals to extracellular electron transfer.

IF 3.8 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Busra Bayar, Ricardo Soares, Haris Nalakath, Alexandra S Alves, Catarina M Paquete, Ricardo O Louro
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引用次数: 0

Abstract

Multicentre redox proteins participate in diverse metabolic processes, such as redox shuttling, multielectron catalysis, or long-distance electron conduction. The detail in which these processes can be analysed depends on the capacity of experimental methods to discriminate the multiple microstates that can be populated while the protein changes from the fully reduced to the fully oxidized state. The population of each state depends on the redox potential of the individual centres and on the magnitude of the interactions between the individual redox centres with their neighbours. It also depends on the interactions with binding sites for other ligands such as protons giving origin to the redox-Bohr effect. Modelling strategies that match the capacity of experimental methods to discriminate the contributions of individual centres are presented. These models provide thermodynamic and kinetic characterization of multicentre redox proteins. The current state of the art in the characterization of multicentre redox proteins is illustrated using the case of multiheme cytochromes involved in the process of extracellular electron transfer. In this new frontier of biological electron transfer, which can extend for distances that exceed the size of the individual multicentre redox proteins by orders of magnitude, current experimental data is still unable, in most cases, to provide discrimination between incoherent conduction by heme orbitals from coherent band conduction.

多中心氧化还原蛋白中的电子转移:从基本原理到细胞外电子转移。
多中心氧化还原蛋白参与多种代谢过程,如氧化还原穿梭、多电子催化或远距离电子传导。分析这些过程的细节取决于实验方法区分多种微观状态的能力,这些微观状态可以在蛋白质从完全还原状态转变为完全氧化状态时填充。每个状态的数量取决于单个氧化还原中心的氧化还原电位,以及单个氧化还原中心与其邻居之间相互作用的大小。它还取决于与其他配体的结合位点的相互作用,如产生氧化还原-玻尔效应的质子。提出了与实验方法的能力相匹配的建模策略,以区分各个中心的贡献。这些模型提供了多中心氧化还原蛋白的热力学和动力学表征。在多中心氧化还原蛋白的表征技术的当前状态是用涉及细胞外电子转移过程的多血红素细胞色素的情况说明。在这个生物电子转移的新前沿,它可以扩展到超过单个多中心氧化还原蛋白大小的数量级,目前的实验数据在大多数情况下仍然无法提供血红素轨道非相干传导和相干带传导之间的区别。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bioscience Reports
Bioscience Reports 生物-细胞生物学
CiteScore
8.50
自引率
0.00%
发文量
380
审稿时长
6-12 weeks
期刊介绍: Bioscience Reports provides a home for sound scientific research in all areas of cell biology and molecular life sciences. Since 2012, Bioscience Reports has been fully Open Access and publishes all papers under the liberal CC BY licence, giving the life science community quality research to share and discuss.Content before 2012 is subscription-only, and is accessible via archive purchase. Articles are assessed on soundness, providing a home for valid findings and data. We welcome papers that span disciplines (e.g. chemistry, medicine), including papers describing: -new methodologies -tools and reagents to probe biological questions -mechanistic details -disease mechanisms -metabolic processes and their regulation -structure and function -bioenergetics
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