原位冷冻电子断层扫描揭示了轴突分支发育的局部细胞机制

Hana Nedozrálová, Nirakar Basnet, Iosune Ibiricu, Satish Bodakuntla, Christian Biertümpfel, N. Mizuno
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引用次数: 10

摘要

神经元是高度极化的细胞,形成一个复杂的树突和轴突网络。它们是由细胞骨架成分和细胞器的动态重组形成的。轴突分支允许形成新的路径并增加电路的复杂性。然而,由于技术限制,我们对分支形成的理解是稀疏的。通过对小鼠原代神经元的原位细胞低温电子断层扫描,我们直接看到了轴突分支细胞器和细胞骨架结构的重塑。引人注目的是,分支区域充当集中细胞器支持动态活动的热点。未排列的肌动蛋白丝聚集在早枝的基部并在丝状足减少时保留。微管和内质网共同迁移到预形成的分支中支持生长,同时积累致密的约500 nm的线粒体和局部聚集的核糖体。我们获得了事件的路线图,并提供了第一个直接证据,表明局部蛋白质合成选择性地发生在轴突分支,允许作为轴突发育和下游神经网络形成的独特控制中心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In situ cryo-electron tomography reveals local cellular machineries for axon branch development
Neurons are highly polarized cells forming an intricate network of dendrites and axons. They are shaped by the dynamic reorganization of cytoskeleton components and cellular organelles. Axon branching allows to form new paths and increases circuit complexity. However, our understanding of branch formation is sparse due to technical limitations. Using in situ cellular cryo-electron tomography on primary mouse neurons, we directly visualized the remodeling of organelles and cytoskeleton structures at axon branches. Strikingly, branched areas functioned as hotspots concentrating organelles to support dynamic activities. Unaligned actin filaments assembled at the base of premature branches and remained while filopodia diminished. Microtubules and ER co-migrated into preformed branches to support outgrowth together with accumulating compact ~500 nm mitochondria and locally clustered ribosomes. We obtained a roadmap of events and present the first direct evidence of local protein synthesis selectively taking place at axon branches, allowing to serve as unique control hubs for axon development and downstream neural network formation.
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