感染期间线粒体生物能量学和动力学。

Q2 Medicine
Cynthia Soultawi, Yasmina Fortier, Calaiselvy Soundaramourty, Jérôme Estaquier, Mireille Laforge
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引用次数: 3

摘要

微生物已经发展出一系列的策略来克服被感染宿主的防御机制。在病原体-宿主共同进化过程中,它们发展出操纵细胞机制的策略,特别是在破坏线粒体功能方面。线粒体是高度动态的细胞器,不断地重塑其结构。特别是,线粒体网络的形成和细胞分布在很大程度上是由线粒体分裂、融合、运动和栓系等保守活动维持的。线粒体在提供能量生产、钙代谢和细胞凋亡方面的作用早已被认识到。最近,线粒体也被证明是先天免疫反应的一个平台。在这种情况下,线粒体动力学和成形不仅对维持嵴结构和生物能量以满足细胞需求至关重要,而且有助于调节细胞功能,如先天免疫反应和线粒体通透性。由于线粒体在细胞存活中的关键作用,它们代表了病原体的有吸引力的目标。因此,微生物通过操纵线粒体动力学可能逃到宿主细胞的控制之下。在这里,我们描述了在微生物感染期间线粒体生物能量学、动力学和成形是如何受到影响的,以及这种相互作用如何对导致疾病的病原体有益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mitochondrial Bioenergetics and Dynamics During Infection.

Microbes have developed a series of strategies to overcome the defense mechanisms of the infected host. During pathogen-host coevolution, they develop strategy to manipulate cellular machinery particularly in subverting mitochondrion function. Mitochondria are highly dynamic organelles that constantly remodel their structure. In particular, shaping and cellular distribution of the mitochondrial network is maintained in large part by the conserved activities of mitochondrial division, fusion, motility, and tethering. Mitochondria have been long recognized for their role in providing energy production, calcium metabolism, and apoptosis. More recently, mitochondria have been also shown to serve as a platform for innate immune response. In this context, mitochondrial dynamics and shaping is not only essential to maintain cristae structure and bioenergetic to fuel cellular demands but contribute to regulate cellular function such as innate immune response and mitochondrial permeabilization. Due to their key role in cell survival, mitochondria represent attractive targets for pathogens. Therefore, microbes by manipulating mitochondrial dynamics may escape to host cellular control. Herein, we describe how mitochondrial bioenergetics, dynamics, and shaping are impacted during microbe infections and how this interplay benefits to pathogens contributing to the diseases.

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来源期刊
Experientia supplementum (2012)
Experientia supplementum (2012) Medicine-Medicine (all)
CiteScore
3.30
自引率
0.00%
发文量
24
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