线粒体疾病中的线粒体通透性转换。

The Mitochondrial Permeability Transition in Mitochondrial Disorders.

机构信息

Vollum Institute, Oregon Health & Science University, Portland, OR 97239, USA.

出版信息

Oxid Med Cell Longev. 2019 May 5;2019:3403075. doi: 10.1155/2019/3403075. eCollection 2019.

Abstract

Mitochondrial permeability transition pore (PTP), a (patho)physiological phenomenon discovered over 40 years ago, is still not completely understood. PTP activation results in a formation of a nonspecific channel within the inner mitochondrial membrane with an exclusion size of 1.5 kDa. PTP openings can be transient and are thought to serve a physiological role to allow quick Ca release and/or metabolite exchange between mitochondrial matrix and cytosol or long-lasting openings that are associated with pathological conditions. While matrix Ca and oxidative stress are crucial in its activation, the consequence of prolonged PTP opening is dissipation of the inner mitochondrial membrane potential, cessation of ATP synthesis, bioenergetic crisis, and cell death-a primary characteristic of mitochondrial disorders. PTP involvement in mitochondrial and cellular demise in a variety of disease paradigms has been long appreciated, yet the exact molecular entity of the PTP and the development of potent and specific PTP inhibitors remain areas of active investigation. In this review, we will (i) summarize recent advances made in elucidating the molecular nature of the PTP focusing on evidence pointing to mitochondrial FF-ATP synthase, (ii) summarize studies aimed at discovering novel PTP inhibitors, and (iii) review data supporting compromised PTP activity in specific mitochondrial diseases.

摘要

线粒体通透性转换孔(PTP)是 40 多年前发现的一种(病理)生理现象,但目前仍不完全了解。PTP 的激活会导致线粒体内膜形成一种具有 1.5 kDa 排斥大小的非特异性通道。PTP 的开放可以是短暂的,被认为具有生理作用,可以允许 Ca 快速释放和/或代谢物在线粒体基质和细胞质之间交换,或者是与病理状况相关的持久开放。虽然基质 Ca 和氧化应激在其激活中至关重要,但 PTP 持续开放的后果是线粒体内膜电位耗散、ATP 合成停止、生物能危机和细胞死亡——这是线粒体疾病的主要特征。PTP 参与多种疾病模型中的线粒体和细胞死亡已经得到了长期的认可,但 PTP 的确切分子实体以及强效和特异性 PTP 抑制剂的开发仍然是活跃的研究领域。在这篇综述中,我们将:(i)总结最近在阐明 PTP 的分子性质方面取得的进展,重点是指向线粒体 FF-ATP 合酶的证据;(ii)总结旨在发现新型 PTP 抑制剂的研究;(iii)综述支持特定线粒体疾病中 PTP 活性受损的数据。

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