线粒体珠化的生物物理机制。

IF 2.7 3区 生物学 Q3 CELL BIOLOGY
Gabriel Sturm, Kayley Hake, Austin E Y T Lefebvre, Caleb J Rux, Daria Ivanova, Alfred Millett-Sikking, Kevin M Tharp, Beiduo Rao, Michael Closser, Adam James Waite, Magdalena Precido-Lopez, Alex T Ritter, Sophie Dumont, Wen Lu, Suliana Manley, Juan C Landoni, Wallace F Marshall
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引用次数: 0

摘要

线粒体网络表现出显著的动态,部分是由裂变和融合事件驱动的。然而,还有其他不涉及裂变和聚变的网络重组。一个这样的例外是难以捉摸的,线粒体的“串珠”形态转变。在这种转变过程中,线粒体膜的圆柱形管瞬间发生形状变化,变成一串沿着细管连接的“珍珠”。这些动态已经在许多情况下被观察到,并给出了不同的解释。在这里,我们通过提出基于管状流体膜的生物物理特性的共同潜在机制来统一这些观察结果,众所周知,在特定的张力和压力制度下,膜达到不稳定性并经历形状转变为一串相连的珍珠。首先,我们使用高速光片显微镜显示,在我们所研究的每种细胞类型中,包括在T细胞激活、神经元放电和复制性衰老过程中,线粒体网络中自发发生了短暂的珍珠事件。这种高时间数据揭示了两种不同类型的自发珠光,由离子通量或细胞骨架张力触发。然后,我们通过化学、遗传和机械扰动诱导出珍珠,并确定了线粒体珍珠产生的三个主要物理原因:i)离子通量产生内部渗透压,ii)膜填料降低弯曲弹性,以及iii)外部机械力增加膜张力。因此,珍珠动力学揭示了线粒体生物学的基本生物物理方面。我们认为,除裂变和融合外,珠化应该作为线粒体动力学的一个关键过程,与生理、疾病和衰老有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The biophysical mechanism of mitochondrial pearling.

Mitochondrial networks exhibit remarkable dynamics that are driven in part by fission and fusion events. However, there are other reorganizations of the network that do not involve fission and fusion. One such exception is the elusive, "beads-on-a-string" morphological transition of mitochondria. During such transitions, the cylindrical tubes of the mitochondrial membrane transiently undergo shape changes to a string of "pearls" connected along thin tubes. These dynamics have been observed in many contexts and given disparate explanations. Here we unify these observations by proposing a common underlying mechanism based on the biophysical properties of tubular fluid membranes for which it is known that, under particular regimes of tension and pressure, membranes reach an instability and undergo a shape transition to a string of connected pearls. First, we use high-speed light-sheet microscopy to show that transient, short-lived pearling events occur spontaneously in the mitochondrial network in every cell type we have examined, including during T cell activation, neuronal firing, and replicative senescence. This high-temporal data reveals two distinct classes of spontaneous pearling, triggered either by ionic flux or cytoskeleton tension. We then induce pearling with chemical, genetic, and mechanical perturbations and establish three main physical causes of mitochondrial pearling, i) ionic flux producing internal osmotic pressure, ii) membrane packing lowering bending elasticity, and iii) external mechanical force increasing membrane tension. Pearling dynamics thereby reveal a fundamental biophysical facet of mitochondrial biology. We suggest that pearling should take its place beside fission and fusion as a key process of mitochondrial dynamics, with implications for physiology, disease, and aging.

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来源期刊
Molecular Biology of the Cell
Molecular Biology of the Cell 生物-细胞生物学
CiteScore
6.00
自引率
6.10%
发文量
402
审稿时长
2 months
期刊介绍: MBoC publishes research articles that present conceptual advances of broad interest and significance within all areas of cell, molecular, and developmental biology. We welcome manuscripts that describe advances with applications across topics including but not limited to: cell growth and division; nuclear and cytoskeletal processes; membrane trafficking and autophagy; organelle biology; quantitative cell biology; physical cell biology and mechanobiology; cell signaling; stem cell biology and development; cancer biology; cellular immunology and microbial pathogenesis; cellular neurobiology; prokaryotic cell biology; and cell biology of disease.
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