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线粒体结构、动态和生理学:从光镜角度解析网络

Mitochondrial Structure, Dynamics, and Physiology: Light Microscopy to Disentangle the Network.

机构信息

Institute of Physics, Swiss Federal Institute of Technology Lausanne (EPFL), Lausanne, Switzerland; email:

Institute of Biochemistry, Swiss Federal Institute of Technology Zürich (ETH), Zürich, Switzerland; email:

出版信息

Annu Rev Cell Dev Biol. 2024 Oct;40(1):219-240. doi: 10.1146/annurev-cellbio-111822-114733. Epub 2024 Sep 21.

Abstract

Mitochondria serve as energetic and signaling hubs of the cell: This function results from the complex interplay between their structure, function, dynamics, interactions, and molecular organization. The ability to observe and quantify these properties often represents the puzzle piece critical for deciphering the mechanisms behind mitochondrial function and dysfunction. Fluorescence microscopy addresses this critical need and has become increasingly powerful with the advent of superresolution methods and context-sensitive fluorescent probes. In this review, we delve into advanced light microscopy methods and analyses for studying mitochondrial ultrastructure, dynamics, and physiology, and highlight notable discoveries they enabled.

摘要

线粒体是细胞的能量和信号中心

这种功能源于它们的结构、功能、动态、相互作用和分子组织之间的复杂相互作用。观察和量化这些特性的能力通常代表着揭示线粒体功能和功能障碍背后机制的关键拼图。荧光显微镜满足了这一关键需求,并且随着超分辨率方法和上下文敏感荧光探针的出现,其功能变得越来越强大。在这篇综述中,我们深入探讨了用于研究线粒体超微结构、动力学和生理学的高级显微镜方法和分析,并强调了它们所带来的显著发现。

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