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关于生物能量学的普遍核心。

On the universal core of bioenergetics.

作者信息

Schoepp-Cothenet Barbara, van Lis Robert, Atteia Ariane, Baymann Frauke, Capowiez Line, Ducluzeau Anne-Lise, Duval Simon, ten Brink Felix, Russell Michael J, Nitschke Wolfgang

机构信息

Laboratoire de Bioénergétique et Ingénierie des Protéines UMR 7281 CNRS/AMU, FR3479, F-13402 Marseille Cedex 20, France.

出版信息

Biochim Biophys Acta. 2013 Feb;1827(2):79-93. doi: 10.1016/j.bbabio.2012.09.005. Epub 2012 Sep 14.

Abstract

Living cells are able to harvest energy by coupling exergonic electron transfer between reducing and oxidising substrates to the generation of chemiosmotic potential. Whereas a wide variety of redox substrates is exploited by prokaryotes resulting in very diverse layouts of electron transfer chains, the ensemble of molecular architectures of enzymes and redox cofactors employed to construct these systems is stunningly small and uniform. An overview of prominent types of electron transfer chains and of their characteristic electrochemical parameters is presented. We propose that basic thermodynamic considerations are able to rationalise the global molecular make-up and functioning of these chemiosmotic systems. Arguments from palaeogeochemistry and molecular phylogeny are employed to discuss the evolutionary history leading from putative energy metabolisms in early life to the chemiosmotic diversity of extant organisms. Following the Occam's razor principle, we only considered for this purpose origin of life scenarios which are contiguous with extant life. This article is part of a Special Issue entitled: The evolutionary aspects of bioenergetic systems.

摘要

活细胞能够通过将还原型和氧化型底物之间的放能电子转移与化学渗透势的产生相偶联来获取能量。原核生物利用多种氧化还原底物,从而导致电子传递链的布局非常多样,然而用于构建这些系统的酶和氧化还原辅因子的分子结构组合却惊人地少且统一。本文概述了主要类型的电子传递链及其特征电化学参数。我们认为,基本的热力学考量能够解释这些化学渗透系统的整体分子组成和功能。我们运用古地球化学和分子系统发育的论据来讨论从早期生命中假定的能量代谢到现存生物的化学渗透多样性的进化历程。遵循奥卡姆剃刀原则,我们仅为此目的考虑与现存生命连续的生命起源情景。本文是名为“生物能量系统的进化方面”的特刊的一部分。

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