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内核膜蛋白SUN1是细胞骨架力产生和粘着斑成熟所必需的。

Inner Nuclear Membrane Protein, SUN1, is Required for Cytoskeletal Force Generation and Focal Adhesion Maturation.

作者信息

Ueda Nanami, Maekawa Masashi, Matsui Tsubasa S, Deguchi Shinji, Takata Tomoyo, Katahira Jun, Higashiyama Shigeki, Hieda Miki

机构信息

Department of Medical Technology, Ehime Prefectural University of Health Sciences, Tobe, Japan.

Division of Cell Growth and Tumor Regulation, Proteo-Science Center (PROS), Ehime University, Matsuyama, Japan.

出版信息

Front Cell Dev Biol. 2022 May 18;10:885859. doi: 10.3389/fcell.2022.885859. eCollection 2022.

Abstract

The linker of nucleoskeleton and cytoskeleton (LINC) complex is composed of the inner nuclear membrane-spanning SUN proteins and the outer nuclear membrane-spanning nesprin proteins. The LINC complex physically connects the nucleus and plasma membrane the actin cytoskeleton to perform diverse functions including mechanotransduction from the extracellular environment to the nucleus. Mammalian somatic cells express two principal SUN proteins, namely SUN1 and SUN2. We have previously reported that SUN1, but not SUN2, is essential for directional cell migration; however, the underlying mechanism remains elusive. Because the balance between adhesive force and traction force is critical for cell migration, in the present study, we focused on focal adhesions (FAs) and the actin cytoskeleton. We observed that siRNA-mediated SUN1 depletion did not affect the recruitment of integrin β1, one of the ubiquitously expressed focal adhesion molecules, to the plasma membrane. Consistently, SUN1-depleted cells normally adhered to extracellular matrix proteins, including collagen, fibronectin, laminin, and vitronectin. In contrast, SUN1 depletion reduced the activation of integrin β1. Strikingly, the depletion of SUN1 interfered with the incorporation of vinculin into the focal adhesions, whereas no significant differences in the expression of vinculin were observed between wild-type and SUN1-depleted cells. In addition, SUN1 depletion suppressed the recruitment of zyxin to nascent focal adhesions. These data indicate that SUN1 is involved in the maturation of focal adhesions. Moreover, disruption of the SUN1-containing LINC complex abrogates the actin cytoskeleton and generation of intracellular traction force, despite the presence of SUN2. Thus, a physical link between the nucleus and cytoskeleton through SUN1 is required for the proper organization of actin, thereby suppressing the incorporation of vinculin and zyxin into focal adhesions and the activation of integrin β1, both of which are dependent on traction force. This study provides insights into a previously unappreciated signaling pathway from the nucleus to the cytoskeleton, which is in the opposite direction to the well-known mechanotransduction pathways from the extracellular matrix to the nucleus.

摘要

核骨架与细胞骨架连接复合体(LINC复合体)由跨内核膜的SUN蛋白和跨外核膜的nesprin蛋白组成。LINC复合体在物理上连接细胞核与质膜以及肌动蛋白细胞骨架,以执行多种功能,包括从细胞外环境到细胞核的机械转导。哺乳动物体细胞表达两种主要的SUN蛋白,即SUN1和SUN2。我们之前报道过,SUN1而非SUN2对细胞定向迁移至关重要;然而,其潜在机制仍不清楚。由于黏附力和牵引力之间的平衡对细胞迁移至关重要,在本研究中,我们聚焦于粘着斑(FAs)和肌动蛋白细胞骨架。我们观察到,小干扰RNA介导的SUN1缺失并不影响整合素β1(一种普遍表达的粘着斑分子)向质膜的募集。同样,SUN1缺失的细胞能正常黏附于细胞外基质蛋白,包括胶原蛋白、纤连蛋白、层粘连蛋白和玻连蛋白。相比之下,SUN1缺失会降低整合素β1的激活。引人注目的是,SUN1的缺失干扰了纽蛋白掺入粘着斑,而在野生型细胞和SUN1缺失的细胞之间未观察到纽蛋白表达的显著差异。此外,SUN1缺失抑制了桩蛋白向新生粘着斑的募集。这些数据表明SUN1参与粘着斑的成熟。此外,尽管存在SUN2,但破坏含SUN1的LINC复合体会消除肌动蛋白细胞骨架和细胞内牵引力的产生。因此,通过SUN1在细胞核与细胞骨架之间建立物理连接对于肌动蛋白的正确组织是必需的,从而抑制纽蛋白和桩蛋白掺入粘着斑以及整合素β1的激活,这两者均依赖于牵引力。本研究为一条先前未被重视的从细胞核到细胞骨架的信号通路提供了见解,该通路与从细胞外基质到细胞核的著名机械转导通路方向相反。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/268b/9157646/549a7dfc5022/fcell-10-885859-g001.jpg

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