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1
Mechanical instability generated by Myosin 19 contributes to mitochondria cristae architecture and OXPHOS.肌球蛋白 19 产生的机械不稳定性有助于线粒体嵴结构和 OXPHOS。
Nat Commun. 2022 May 13;13(1):2673. doi: 10.1038/s41467-022-30431-3.
2
Mitochondria-associated myosin 19 processively transports mitochondria on actin tracks in living cells.线粒体相关肌球蛋白 19 在活细胞中沿肌动蛋白轨道进行性地运输线粒体。
J Biol Chem. 2022 May;298(5):101883. doi: 10.1016/j.jbc.2022.101883. Epub 2022 Mar 31.
3
Mitochondrial adaptor TRAK2 activates and functionally links opposing kinesin and dynein motors.线粒体衔接蛋白 TRAK2 激活并功能连接相反的驱动蛋白和动力蛋白。
Nat Commun. 2021 Jul 28;12(1):4578. doi: 10.1038/s41467-021-24862-7.
4
Mitocytosis, a migrasome-mediated mitochondrial quality-control process.有丝分裂,一种由迁移体介导的线粒体质量控制过程。
Cell. 2021 May 27;184(11):2896-2910.e13. doi: 10.1016/j.cell.2021.04.027.
5
Coordination of mitochondrial and cellular dynamics by the actin-based motor Myo19.肌球蛋白 19 通过基于肌动蛋白的运动协调线粒体和细胞动力学。
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USP19 promotes hypoxia-induced mitochondrial division via FUNDC1 at ER-mitochondria contact sites.USP19 通过 FUNDC1 在 ER-线粒体接触位点促进缺氧诱导的线粒体分裂。
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7
Distinct fission signatures predict mitochondrial degradation or biogenesis.独特的裂变特征可预测线粒体的降解或生物发生。
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8
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Proc Natl Acad Sci U S A. 2021 May 11;118(19). doi: 10.1073/pnas.2021461118.
9
Mitochondrial membrane tension governs fission.线粒体膜张力控制裂变。
Cell Rep. 2021 Apr 13;35(2):108947. doi: 10.1016/j.celrep.2021.108947.
10
Actin cables and comet tails organize mitochondrial networks in mitosis.肌动蛋白丝和彗星尾在有丝分裂中组织线粒体网络。
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肌球蛋白 19 将线粒体固定在与内质网相关的肌动蛋白上,以促进线粒体分裂。

Myo19 tethers mitochondria to endoplasmic reticulum-associated actin to promote mitochondrial fission.

机构信息

Department of Physiology, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA 19104, USA.

Cell and Molecular Biology Graduate Group, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA 19104, USA.

出版信息

J Cell Sci. 2023 Mar 1;136(5). doi: 10.1242/jcs.260612. Epub 2023 Mar 2.

DOI:10.1242/jcs.260612
PMID:36744380
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10022680/
Abstract

Mitochondrial homeostasis requires a dynamic balance of fission and fusion. The actin cytoskeleton promotes fission, and we found that the mitochondrially localized myosin, myosin 19 (Myo19), is integral to this process. Myo19 knockdown induced mitochondrial elongation, whereas Myo19 overexpression induced fragmentation. This mitochondrial fragmentation was blocked by a Myo19 mutation predicted to inhibit ATPase activity and strong actin binding but not by mutations predicted to affect the working stroke of the motor that preserve ATPase activity. Super-resolution imaging indicated a dispersed localization of Myo19 on mitochondria, which we found to be dependent on metaxins. These observations suggest that Myo19 acts as a dynamic actin-binding tether that facilitates mitochondrial fragmentation. Myo19-driven fragmentation was blocked by depletion of either the CAAX splice variant of the endoplasmic reticulum (ER)-anchored formin INF2 or the mitochondrially localized F-actin nucleator Spire1C (a splice variant of Spire1), which together polymerize actin at sites of mitochondria-ER contact for fission. These observations imply that Myo19 promotes fission by stabilizing mitochondria-ER contacts; we used a split-luciferase system to demonstrate a reduction in these contacts following Myo19 depletion. Our data support a model in which Myo19 tethers mitochondria to ER-associated actin to promote mitochondrial fission.

摘要

线粒体动态平衡需要不断地进行分裂和融合。肌动蛋白细胞骨架促进分裂,我们发现定位于线粒体的肌球蛋白 19(Myo19)是这个过程的重要组成部分。Myo19 敲低导致线粒体伸长,而 Myo19 过表达导致线粒体碎片化。Myo19 的突变(预测抑制 ATP 酶活性和强肌动蛋白结合)可以阻断这种线粒体碎片化,而不影响该运动器的工作冲程(保留 ATP 酶活性)的突变则不会。超分辨率成像表明 Myo19 在线粒体上呈弥散定位,我们发现这依赖于 metaxin。这些观察结果表明,Myo19 作为一种动态的肌动蛋白结合系绳,促进线粒体的碎片化。Myo19 驱动的碎片化被内质网(ER)锚定形式素 INF2 的 CAAX 剪接变体或定位于线粒体的 F-肌动蛋白核化因子 Spire1C(Spire1 的剪接变体)的消耗所阻断,这两种因子都在 ER 与线粒体接触的部位聚合肌动蛋白以促进分裂。这些观察结果表明,Myo19 通过稳定线粒体 ER 接触来促进分裂;我们使用分裂萤光素酶系统来证明 Myo19 耗尽后这些接触减少。我们的数据支持这样一种模型,即 Myo19 将线粒体固定在 ER 相关的肌动蛋白上,以促进线粒体的分裂。