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RTN4 和 CLIMP-63 在调节线粒体结构、生物能量和细胞凋亡中的新作用。

Novel roles of RTN4 and CLIMP-63 in regulating mitochondrial structure, bioenergetics and apoptosis.

机构信息

Departments of Molecular and Clinical Cancer Medicine, Institute of Systems, Molecular and Integrative Biology, University of Liverpool, Liverpool, L69 3GE, UK.

Molecular Physiology and Cell Signaling, Institute of Systems, Molecular and Integrative Biology, University of Liverpool, Liverpool, L69 3GE, UK.

出版信息

Cell Death Dis. 2022 May 4;13(5):436. doi: 10.1038/s41419-022-04869-8.

Abstract

The recruitment of DRP1 to mitochondrial membranes prior to fission is facilitated by the wrapping of endoplasmic reticulum (ER) membranes around the mitochondria. To investigate the complex interplay between the ER membranes and DRP1 in the context of mitochondrial structure and function, we downregulate two key ER shaping proteins, RTN4 and CLIMP-63, and demonstrate pronounced mitochondrial hyperfusion and reduced ER-mitochondria contacts, despite their differential regulation of ER architecture. Although mitochondrial recruitment of DRP1 is unaltered in cells lacking RTN4 or CLIMP-63, several aspects of mitochondrial function, such as mtDNA-encoded translation, respiratory capacity and apoptosis are significantly hampered. Further mechanistic studies reveal that CLIMP-63 is required for cristae remodeling (OPA1 proteolysis) and DRP1-mediated mitochondrial fission, whereas both RTN4 and CLIMP-63 regulate the recruitment of BAX to ER and mitochondrial membranes to enable cytochrome c release and apoptosis, thereby performing novel and distinct roles in the regulation of mitochondrial structure and function.

摘要

在分裂之前,DRP1 被招募到线粒体膜上,这是由内质网(ER)膜围绕线粒体形成的。为了研究 ER 膜和 DRP1 在线粒体结构和功能方面的复杂相互作用,我们下调了两种关键的 ER 成形蛋白 RTN4 和 CLIMP-63,尽管它们对 ER 结构的调节不同,但明显表现出线粒体过度融合和 ER-线粒体接触减少。尽管在缺乏 RTN4 或 CLIMP-63 的细胞中,DRP1 向线粒体的募集没有改变,但线粒体功能的几个方面,如 mtDNA 编码的翻译、呼吸能力和细胞凋亡,都受到严重阻碍。进一步的机制研究表明,CLIMP-63 是嵴重塑(OPA1 蛋白水解)和 DRP1 介导的线粒体分裂所必需的,而 RTN4 和 CLIMP-63 都调节 BAX 向 ER 和线粒体膜的募集,以实现细胞色素 c 的释放和细胞凋亡,从而在调节线粒体结构和功能方面发挥新的、独特的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/72bd/9068774/2473379fc63d/41419_2022_4869_Fig1_HTML.jpg

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