Murburn scheme for mitochondrial thermogenesis

K. Manoj, D. A. Gideon, Vivian David Jacob
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引用次数: 22

Abstract

The physiology of thermogenesis in mitochondria (mediated by uncoupling protein, UCP) has traditionally been explained as the dissipation of proton gradient across the inner mitochondrial membrane into heat. However, there are differences of opinion on how thermogenesis is achieved by UCPs and the mechanistic theories have not been correlated sufficiently with UCP’s structure. Recent experimental evidence suggests strong correlation of diffusible reactive oxygen species (DROS) with UCP-induced thermogenesis. Further, the mechanistic explanations of mitochondrial oxidative phosphorylation (mOxPhos) were recently revamped with murburn concept, which considers DROS as an obligatory catalytic agent in mOxPhos. Herein, we propose that UCPs (aided by the large pore and positively charged amino acids of aqueous-phase loops) enable protonation and transport of DROS. Thus, UCP facilitates DROS-reactions amongst themselves, forming water and liberating heat around the inner mitochondrial membrane. Thereby, the simple murburn scheme for biothermogenesis integrates structural information of UCP with its attributed physiological function.
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线粒体产热的Murburn图式
线粒体中的产热生理(由解偶联蛋白介导)传统上被解释为质子梯度穿过线粒体内膜消散为热。然而,关于UCP是如何产生热的存在不同的观点,并且机制理论还没有与UCP的结构充分相关。最近的实验证据表明,扩散性活性氧(DROS)与ucp诱导的产热有很强的相关性。此外,线粒体氧化磷酸化(mOxPhos)的机制解释最近被murburn概念所改进,该概念认为DROS是mOxPhos的强制性催化剂。在此,我们提出ucp(在水相环的大孔和带正电的氨基酸的帮助下)能够促进质子化和DROS的运输。因此,UCP促进了它们之间的ros反应,在线粒体内膜周围形成水并释放热量。因此,简单的murburn生热方案将UCP的结构信息与其固有的生理功能结合起来。
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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