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Single vesicle imaging indicates distinct modes of rapid membrane retrieval during nerve growth

机译:单囊泡成像显示神经生长过程中快速膜恢复的不同模式

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Background During nerve growth, cytoplasmic vesicles add new membrane preferentially to the growth cone located at the distal tip of extending axons. Growth cone membrane is also retrieved locally, and asymmetric retrieval facilitates membrane remodeling during growth cone repulsion by a chemorepellent gradient. Moreover, growth inhibitory factors can stimulate bulk membrane retrieval and induce growth cone collapse. Despite these functional insights, the processes mediating local membrane remodeling during axon extension remain poorly defined. Results To investigate the spatial and temporal dynamics of membrane retrieval in actively extending growth cones, we have used a transient labeling and optical recording method that can resolve single vesicle events. Live-cell confocal imaging revealed rapid membrane retrieval by distinct endocytic modes based on spatial distribution in Xenopus spinal neuron growth cones. These modes include endocytic "hot-spots" triggered at the base of filopodia, at the lateral margins of lamellipodia, and along dorsal ridges of the growth cone. Additionally, waves of endocytosis were induced when individual filopodia detached from the substrate and fused with the growth cone dorsal surface or with other filopodia. Vesicle formation at sites of membrane remodeling by self-contact required F-actin polymerization. Moreover, bulk membrane retrieval by macroendocytosis correlated positively with the substrate-dependent rate of axon extension and required the function of Rho-family GTPases . Conclusions This study provides insight into the dynamic membrane remodeling processes essential for nerve growth by identifying several distinct modes of rapid membrane retrieval in the growth cone during axon extension. We found that endocytic membrane retrieval is intensified at specific subdomains and may drive the dynamic membrane ruffling and re-absorption of filopodia and lamellipodia in actively extending growth cones. The findings offer a platform for determining the molecular mechanisms of distinct endocytic processes that may remodel the surface distribution of receptors, ion channels and other membrane-associated proteins locally to drive growth cone extension and chemotactic guidance.
机译:背景在神经生长过程中,细胞质囊泡优先向位于延伸轴突远端的生长锥添加新膜。生长锥膜也可以局部回收,并且不对称回收有助于化学排斥剂在生长锥排斥期间的膜重塑。此外,生长抑制因子可以刺激大量膜的恢复并诱导生长锥塌陷。尽管有这些功能上的见识,但在轴突延伸过程中介导局部膜重塑的过程仍不清楚。结果为了研究膜在主动扩展生长锥中的时空动态,我们使用了瞬态标记和光学记录方法,可以解决单个囊泡事件。活细胞共聚焦成像显示基于非洲爪蟾脊髓神经元生长锥中的空间分布,通过不同的内吞模式快速恢复膜。这些模式包括在丝状伪足的底部,片状脂膜的侧缘以及沿生长锥的背脊触发的内吞性“热点”。另外,当单个丝状伪足从底物上脱离并与生长锥背表面或其他丝状伪足融合时,会引起内吞作用波。通过自接触在膜重塑部位形成囊泡需要F-肌动蛋白聚合。此外,通过大内吞作用的体膜取回与底物依赖的轴突延伸速率正相关,并且需要Rho家族GTP酶的功能。结论本研究通过确定轴突伸展过程中生长锥中快速成膜的几种不同模式,为神经生长所必需的动态膜重塑过程提供了见识。我们发现,在特定的子域内吞噬细胞膜的回收被增强,并可能在动态扩展的生长锥中驱动动态膜的皱纹和丝状伪足和片状脂膜的再吸收。这些发现为确定不同的内吞过程的分子机制提供了一个平台,这些分子机制可能会局部重构受体,离子通道和其他与膜相关的蛋白质的表面分布,从而驱动生长锥延伸和趋化性引导。

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