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Dynamic, mechanical integration between nucleus and cell- where physics meets biology

机译:原子核与细胞之间的动态机械整合-物理与生物学相遇

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Nuclear motions like rotation, translation and deformation suggest that the nucleus is acted upon by mechanical forces. Molecular linkages with the cytoskeleton are thought to transfer forces to the nuclear surface. We developed an approach to apply reproducible, known mechanical forces to the nucleus in spread adherent cells and quantified the elastic response of the mechanically integrated nucleus-cell. The method is sensitive to molecular perturbations and revealed new insight into the function of the LINC complex. While these experiments revealed elastic behaviors, turnover of the cytoskeleton by assembly/disassembly and binding/unbinding of linkages are expected to dissipate any stored mechanical energy in the nucleus or the cytoskeleton. Experiments investigating nuclear forces over longer time scales demonstrated the mechanical principle that expansive/compressive stresses on the nuclear surface arise from the movement of the cell boundaries to shape and position the nucleus. Such forces can shape the nucleus to conform to cell shapes during cell movements with or without myosin activity.
机译:诸如旋转,平移和变形之类的核运动表明,核受机械力作用。人们认为与细胞骨架的分子键将力转移至核表面。我们开发了一种方法,将可复制的已知机械力应用于扩散的贴壁细胞中的核,并量化了机械整合的核细胞的弹性响应。该方法对分子扰动敏感,并揭示了对LINC复合物功能的新见解。尽管这些实验揭示了弹性行为,但是通过组装/拆卸和键的结合/解开引起的细胞骨架的更新有望消散核或细胞骨架中任何存储的机械能。在更长的时间范围内研究核力的实验证明了机械原理,即在核表面上的膨胀/压缩应力是由细胞边界的移动引起的,以形成和定位核。在具有或不具有肌球蛋白活性的细胞运动期间,这种力可使细胞核成形以符合细胞形状。

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