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首页> 外文期刊>Cellular and Molecular Bioengineering >Mechanical Role of Nesprin-1-Mediated Nucleus-Actin Filament Binding in Cyclic Stretch-Induced Fibroblast Elongation
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Mechanical Role of Nesprin-1-Mediated Nucleus-Actin Filament Binding in Cyclic Stretch-Induced Fibroblast Elongation

机译:Nesprin-1介导的核 - 肌动蛋白长丝在环状拉伸诱导的成纤维细胞伸长中结合的机械作用

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The intracellular mechanical link tethering the nucleus to the cytoskeleton has been suggested to be the linker of the nucleoskeleton and cytoskeleton (LINC) complex. Previous studies have reported that knockdown of nesprin-1, a component of the LINC complex that directly binds to actin filaments, suppresses cellular morphological response to mechanical stimuli. The relation between nesprin-1 knockdown and cellular morphological changes, however, remains unclear. In this study, we examined the mechanical role of nucleus-actin filament binding in morphological changes of fibroblasts exposed to cyclic stretching. After exposure to 10% cyclic stretching for 6 h, fibroblasts transfected with nesprin-1-specific small interfering RNA showed fewer elongated shapes compared with non-transfected cells. To further examine the mechanical role of the nucleus and nucleus-bound actin filaments, we applied cyclic stretching to fibroblasts treated with Trichostatin A (TSA), which decreases nuclear stiffness and thereby reduces nucleus-binding actin filament tension. TSA-treatment was found to induce more rounded cellular shapes than those of non-treated cells under both static and cyclic stretching conditions. These results suggest that the tension of nucleus-bound actin filaments plays an important role in the formation of elongated fibroblasts under cyclic stretching and that nesprin-1 knockdown causes a decrease of tension in nucleus-associated actin filaments.
机译:已经提出了细胞内的机械连接对细胞骨架的细胞核是核心骨骼和细胞骨架(LINC)复合物的接头。先前的研究报道,Nesprin-1的敲低,LINC复合物的组分直接与肌动蛋白细丝粘下,抑制了对机械刺激的细胞形态应答。然而,Nesprin-1敲低和细胞形态学变化之间的关系仍然不清楚。在这项研究中,我们研究了核 - 肌动蛋白长丝结合在暴露于循环拉伸的成纤维细胞的形态变化中的机械作用。在暴露于6小时的10%环状拉伸后,与未转染的细胞相比,用Nesprin-1特异性小干扰RNA转染的成纤维细胞显示出较少的细长形状。为了进一步检查细胞核和核 - 结合的肌动蛋白长丝的机械作用,我们将循环拉伸施加到用甲状腺抑制菌素A(TSA)处理的成纤维细胞,这降低了核刚度,从而减少了核结合肌动蛋白长丝张力。发现TSA治疗在静态和环状拉伸条件下诱导比未处理细胞更圆的细胞形状。这些结果表明,核 - 结合的肌动蛋白长丝的张力在环状伸缩下形成细长成纤维细胞中起重要作用,并且Nesprin-1敲低导致细胞核相关肌动蛋白长丝中的张力降低。

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