a Department of Biomedical Engineering , Vanderbilt University , Nashville , TN , USA.
b Department of Chemical and Biomolecular Engineering , Vanderbilt University , Nashville , TN , USA.
Nucleus. 2017 Sep 3;8(5):534-547. doi: 10.1080/19491034.2017.1322237. Epub 2017 Jun 22.
The cytoskeleton provides structure and plays an important role in cellular function such as migration, resisting compression forces, and transport. The cytoskeleton also reacts to physical cues such as fluid shear stress or extracellular matrix remodeling by reorganizing filament associations, most commonly focal adhesions and cell-cell cadherin junctions. These mechanical stimuli can result in genome-level changes, and the physical connection of the cytoskeleton to the nucleus provides an optimal conduit for signal transduction by interfacing with nuclear envelope proteins, called nesprins, within the LINC (linker of the nucleus to the cytoskeleton) complex. Using single-molecule on single nuclei assays, we report that the interactions between the nucleus and the cytoskeleton, thought to be nesprin-cytoskeleton interactions, are highly sensitive to force magnitude and direction depending on whether cells are historically interfaced with the matrix or with cell aggregates. Application of ∼10-30 pN forces to these nesprin linkages yielded structural transitions, with a base transition size of 5-6 nm, which are speculated to be associated with partial unfoldings of the spectrin domains of the nesprins and/or structural changes of histones within the nucleus.
细胞骨架提供结构,并在细胞功能中发挥重要作用,如迁移、抵抗压缩力和运输。细胞骨架还通过重新组织丝束关联(最常见的是焦点黏附物和细胞间钙黏着连接)对物理线索(如流体切应力或细胞外基质重塑)做出反应。这些机械刺激可以导致基因组水平的变化,并且细胞骨架与核的物理连接通过与核膜蛋白(称为核纤层连接蛋白 nesprins)相互作用,为信号转导提供了最佳途径,这些核膜蛋白存在于 LINC(核与细胞骨架的连接)复合物中。使用单分子在单个核上的检测,我们报告说,细胞核与细胞骨架之间的相互作用,据认为是 nesprin-细胞骨架相互作用,高度敏感于力的大小和方向,这取决于细胞是与基质还是与细胞聚集物相互作用的历史。对这些 nesprin 键施加约 10-30 pN 的力会产生结构转变,其基本转变大小为 5-6nm,据推测,这与 nesprins 的 spectrin 结构域的部分展开和/或核内组蛋白的结构变化有关。