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中间丝对细胞硬度、硬化和生长的作用。

Contribution of intermediate filaments to cell stiffness, stiffening, and growth.

作者信息

Wang N, Stamenović D

机构信息

Physiology Program, Department of Environmental Health, Harvard School of Public Health, Boston 02115, Massachusetts, USA.

出版信息

Am J Physiol Cell Physiol. 2000 Jul;279(1):C188-94. doi: 10.1152/ajpcell.2000.279.1.C188.

Abstract

It has been shown previously that intermediate filament (IF) gels in vitro exhibit stiffening at high-applied stress, and it was suggested that this stiffening property of IFs might be important for maintaining cell integrity at large deformations (Janmey PA, Evtenever V, Traub P, and Schliwa M, J Cell Biol 113: 155-160, 1991). In this study, the contribution of IFs to cell mechanical behavior was investigated by measuring cell stiffness in response to applied stress in adherent wild-type and vimentin-deficient fibroblasts using magnetic twisting cytometry. It was found that vimentin-deficient cells were less stiff and exhibited less stiffening than wild-type cells, except at the lowest applied stress (10 dyn/cm(2)) where the difference in the stiffness was not significant. Similar results were obtained from measurements on wild-type fibroblasts and endothelial cells after vimentin IFs were disrupted by acrylamide. If, however, cells were plated over an extended period of time (16 h), they exhibited a significantly greater stiffness before than after acrylamide, even at the lowest applied stress. A possible reason could be that the initially slack IFs became fully extended due to a high degree of cell spreading and thus contributed to the transmission of mechanical stress across the cell. Taken together, these findings were consistent with the notion that IFs play important roles in the mechanical properties of the cell during large deformation. The experimental data also showed that depleting or disrupting IFs reduced, but did not entirely abolish, cell stiffening. This residual stiffening might be attributed to the effect of geometrical realignment of cytoskeletal filaments in the direction of applied load. It was also found that vimentin-deficient cells exhibited a slower rate of proliferation and DNA synthesis than wild-type cells. This could be a direct consequence of the absence of the intracellular IFs that may be necessary for efficient mediation of mechanical signals within the cell. Taken together, results of this study suggest that IFs play important roles in the mechanical properties of cells and in cell growth.

摘要

先前的研究表明,体外中间丝(IF)凝胶在高外加应力下会变硬,有人认为中间丝的这种变硬特性可能对在大变形时维持细胞完整性很重要(扬米 PA、埃夫特涅弗 V、特劳布 P 和施利瓦 M,《细胞生物学杂志》113:155 - 160,1991)。在本研究中,通过使用磁性扭转细胞术测量贴壁野生型和波形蛋白缺陷型成纤维细胞在施加应力时的细胞硬度,研究了中间丝对细胞力学行为的贡献。发现波形蛋白缺陷型细胞比野生型细胞更软,并且除了在最低施加应力(10 达因/平方厘米)下硬度差异不显著外,其变硬程度也更低。在用丙烯酰胺破坏波形蛋白中间丝后,对野生型成纤维细胞和内皮细胞的测量也得到了类似结果。然而,如果细胞长时间(16 小时)接种,即使在最低施加应力下,它们在丙烯酰胺处理前的硬度也比处理后显著更高。一个可能的原因是,最初松弛的中间丝由于细胞高度铺展而完全伸展,从而有助于机械应力在细胞间的传递。综上所述,这些发现与中间丝在大变形过程中对细胞力学特性起重要作用的观点一致。实验数据还表明,耗尽或破坏中间丝会降低但不会完全消除细胞变硬。这种残余变硬可能归因于细胞骨架丝在施加负荷方向上的几何重排效应。还发现波形蛋白缺陷型细胞的增殖和 DNA 合成速率比野生型细胞慢。这可能是细胞内缺少中间丝的直接后果,而中间丝可能是细胞内有效介导机械信号所必需的。综上所述,本研究结果表明中间丝在细胞力学特性和细胞生长中起重要作用。

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