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细胞通过基底膜的侵袭:netrin受体DCC起引导作用。

Cell invasion through basement membrane: The netrin receptor DCC guides the way.

作者信息

Morrissey Meghan A, Hagedorn Elliott J, Sherwood David R

机构信息

Department of Biology; Duke University; Durham, NC USA.

出版信息

Worm. 2013 Jul 1;2(3):e26169. doi: 10.4161/worm.26169. Epub 2013 Aug 22.

Abstract

Cell invasion through basement membrane is an essential part of normal development and physiology, and occurs during the pathological progression of human inflammatory diseases and cancer. F-actin-rich membrane protrusions, called invadopodia, have been hypothesized to be the "drill bits" of invasive cells, mediating invasion through the dense, highly cross-linked basement membrane matrix. Though studied in vitro for over 30 y, invadopodia function in vivo has remained elusive. We have recently discovered that invadopodia breach basement membrane during anchor cell invasion in C. elegans, a genetically and visually tractable in vivo invasion event. Further, we found that the netrin receptor DCC localizes to the initial site of basement membrane breach and directs invasion through a single gap in the matrix. In this commentary, we examine how the dynamics and structure of AC-invadopodia compare with in vitro invadopodia and how the netrin receptor guides invasion through a single basement membrane breach. We end with a discussion of our surprising result that the anchor cell pushes the basement membrane aside, instead of completely dissolving it through proteolysis, and provide some ideas for how proteases and physical displacement may work together to ensure efficient and robust invasion.

摘要

细胞通过基底膜的侵袭是正常发育和生理过程的重要组成部分,并且发生在人类炎症性疾病和癌症的病理进展过程中。富含丝状肌动蛋白的膜突出物,称为侵袭性伪足,被认为是侵袭性细胞的“钻头”,介导细胞通过致密、高度交联的基底膜基质进行侵袭。尽管在体外研究了30多年,但侵袭性伪足在体内的功能仍然难以捉摸。我们最近发现,在秀丽隐杆线虫的锚定细胞侵袭过程中,侵袭性伪足会突破基底膜,这是一个在遗传和视觉上易于处理的体内侵袭事件。此外,我们发现网蛋白受体DCC定位于基底膜破裂的初始部位,并通过基质中的单个间隙引导侵袭。在这篇评论中,我们研究了AC侵袭性伪足的动力学和结构与体外侵袭性伪足的比较,以及网蛋白受体如何通过单个基底膜破裂引导侵袭。我们最后讨论了一个令人惊讶的结果,即锚定细胞将基底膜推到一边,而不是通过蛋白水解将其完全溶解,并提供了一些关于蛋白酶和物理位移如何共同作用以确保高效和强大侵袭的想法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5df/3875654/a9fd3df8ae3f/worm-2-e26169-g1.jpg

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