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网蛋白缺失对角蛋白网络动力学及组织的影响。

Effects of Plectin Depletion on Keratin Network Dynamics and Organization.

作者信息

Moch Marcin, Windoffer Reinhard, Schwarz Nicole, Pohl Raphaela, Omenzetter Andreas, Schnakenberg Uwe, Herb Fabian, Chaisaowong Kraisorn, Merhof Dorit, Ramms Lena, Fabris Gloria, Hoffmann Bernd, Merkel Rudolf, Leube Rudolf E

机构信息

Institute of Molecular and Cellular Anatomy, RWTH Aachen University, Aachen, Germany.

Institute of Materials in Electrical Engineering 1, RWTH Aachen University, Aachen, Germany.

出版信息

PLoS One. 2016 Mar 23;11(3):e0149106. doi: 10.1371/journal.pone.0149106. eCollection 2016.

Abstract

The keratin intermediate filament cytoskeleton protects epithelial cells against various types of stress and is involved in fundamental cellular processes such as signaling, differentiation and organelle trafficking. These functions rely on the cell type-specific arrangement and plasticity of the keratin system. It has been suggested that these properties are regulated by a complex cycle of assembly and disassembly. The exact mechanisms responsible for the underlying molecular processes, however, have not been clarified. Accumulating evidence implicates the cytolinker plectin in various aspects of the keratin cycle, i.e., by acting as a stabilizing anchor at hemidesmosomal adhesion sites and the nucleus, by affecting keratin bundling and branching and by linkage of keratins to actin filament and microtubule dynamics. In the present study we tested these hypotheses. To this end, plectin was downregulated by shRNA in vulvar carcinoma-derived A431 cells. As expected, integrin β4- and BPAG-1-positive hemidesmosomal structures were strongly reduced and cytosolic actin stress fibers were increased. In addition, integrins α3 and β1 were reduced. The experiments furthermore showed that loss of plectin led to a reduction in keratin filament branch length but did not alter overall mechanical properties as assessed by indentation analyses using atomic force microscopy and by displacement analyses of cytoplasmic superparamagnetic beads using magnetic tweezers. An increase in keratin movement was observed in plectin-depleted cells as was the case in control cells lacking hemidesmosome-like structures. Yet, keratin turnover was not significantly affected. We conclude that plectin alone is not needed for keratin assembly and disassembly and that other mechanisms exist to guarantee proper keratin cycling under steady state conditions in cultured single cells.

摘要

角蛋白中间丝细胞骨架保护上皮细胞免受各种类型的应激,并参与信号传导、分化和细胞器运输等基本细胞过程。这些功能依赖于角蛋白系统的细胞类型特异性排列和可塑性。有人提出,这些特性受组装和拆卸的复杂循环调节。然而,负责潜在分子过程的确切机制尚未阐明。越来越多的证据表明,细胞连接蛋白网蛋白在角蛋白循环的各个方面发挥作用,即通过在半桥粒黏附位点和细胞核处作为稳定锚定物,通过影响角蛋白的成束和分支以及通过将角蛋白与肌动蛋白丝和微管动力学联系起来。在本研究中,我们对这些假设进行了测试。为此,通过短发夹RNA在源自外阴癌的A431细胞中下调网蛋白。正如预期的那样,整合素β4和BPAG-1阳性的半桥粒结构明显减少,而胞质肌动蛋白应激纤维增加。此外,整合素α3和β1减少。实验还表明,网蛋白的缺失导致角蛋白丝分支长度缩短,但通过使用原子力显微镜的压痕分析和使用磁镊对细胞质超顺磁珠的位移分析评估,并未改变整体力学性能。在缺乏网蛋白的细胞中观察到角蛋白运动增加,这与缺乏半桥粒样结构的对照细胞情况相同。然而,角蛋白周转没有受到显著影响。我们得出结论,在培养的单细胞中,仅网蛋白对角蛋白的组装和拆卸不是必需的,并且存在其他机制来保证在稳态条件下角蛋白的正常循环。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/036d/4805305/aaf2fa0d6217/pone.0149106.g001.jpg

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