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细胞伤口修复过程中的膜动力学

Membrane dynamics during cellular wound repair.

作者信息

Davenport Nicholas R, Sonnemann Kevin J, Eliceiri Kevin W, Bement William M

机构信息

Program in Cellular and Molecular Biology, University of Wisconsin-Madison, Madison, WI 53706.

Laboratory of Cell and Molecular Biology, University of Wisconsin-Madison, Madison, WI 53706.

出版信息

Mol Biol Cell. 2016 Jul 15;27(14):2272-85. doi: 10.1091/mbc.E16-04-0223. Epub 2016 May 25.

Abstract

Cells rapidly reseal after damage, but how they do so is unknown. It has been hypothesized that resealing occurs due to formation of a patch derived from rapid fusion of intracellular compartments at the wound site. However, patching has never been directly visualized. Here we study membrane dynamics in wounded Xenopus laevis oocytes at high spatiotemporal resolution. Consistent with the patch hypothesis, we find that damage triggers rampant fusion of intracellular compartments, generating a barrier that limits influx of extracellular dextrans. Patch formation is accompanied by compound exocytosis, local accumulation and aggregation of vesicles, and rupture of compartments facing the external environment. Subcellular patterning is evident as annexin A1, dysferlin, diacylglycerol, active Rho, and active Cdc42 are recruited to compartments confined to different regions around the wound. We also find that a ring of elevated intracellular calcium overlaps the region where membrane dynamics are most evident and persists for several minutes. The results provide the first direct visualization of membrane patching during membrane repair, reveal novel features of the repair process, and show that a remarkable degree of spatial patterning accompanies damage-induced membrane dynamics.

摘要

细胞受损后会迅速重新封闭,但它们如何做到这一点尚不清楚。有人推测,重新封闭是由于伤口部位细胞内区室快速融合形成斑块所致。然而,斑块形成从未被直接观察到。在这里,我们以高时空分辨率研究非洲爪蟾卵母细胞受伤后的膜动力学。与斑块假说一致,我们发现损伤会引发细胞内区室的大量融合,形成一道屏障,限制细胞外葡聚糖的流入。斑块形成伴随着复合胞吐作用、囊泡的局部积累和聚集,以及面向外部环境的区室破裂。亚细胞模式很明显,因为膜联蛋白A1、肌营养不良蛋白、二酰基甘油、活性Rho和活性Cdc42被招募到局限于伤口周围不同区域的区室。我们还发现,细胞内钙升高的环与膜动力学最明显的区域重叠,并持续几分钟。这些结果首次直接观察到膜修复过程中的膜斑块形成,揭示了修复过程的新特征,并表明损伤诱导的膜动力学伴随着显著程度的空间模式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94b7/4945144/4fb2c1c148e6/2272fig1.jpg

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