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Mechanical Properties of Interphase Nuclei Probed by Cellular Strain Application

机译:应用细胞应变探测相间核的力学性能

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摘要

The mechanical properties of the interphase nucleus have important implications for cellular function and can reflect changes in nuclear envelope structure and/or chromatin organization. Mutations in the nuclear envelope proteins lamin A and C cause several human diseases, such as Emery–Dreifuss muscular dystrophy, and dramatic changes in nuclear stiffness have been reported in cells from lamin A/C–deficient mice. We have developed a cellular strain technique to measure nuclear stiffness in intact, adherent cells and have applied this experimental method to fibroblasts from mouse models of Emery–Dreifuss muscular dystrophy and to skin fibroblasts from laminopathy patients and healthy control subjects. The experimental protocol is based on measuring induced nuclear deformations in cells plated on a flexible silicone substrate; the nuclear stiffness can subsequently be inferred from the ratio of induced nuclear strain to the applied membrane strain. These experiments reveal that lamins A and C are important determinants of nuclear stiffness and that lamin mutations associated with muscular dystrophies and other laminopathies often result in disturbed nuclear stiffness that could contribute to the tissue-specific disease phenotypes.
机译:相间核的机械性质对细胞功能具有重要意义,并且可以反映核包膜结构和/或染色质组织的变化。核膜蛋白Lamin A和C的突变会引起多种人类疾病,例如金刚砂—Dreifuss肌营养不良,据报道,缺乏lamin A / C的小鼠细胞中核劲度发生了巨大变化。我们已经开发出一种细胞应变技术来测量完整的贴壁细胞的核硬度,并将这种实验方法应用于来自Emery–Dreifuss肌肉营养不良的小鼠模型的成纤维细胞以及来自椎板病患者和健康对照组的皮肤成纤维细胞。实验方案基于测量镀在柔性有机硅基板上的细胞中诱导的核变形;随后可以从诱导的核应变与所施加的膜应变之比推断出核刚度。这些实验表明,核纤层蛋白A和C是决定核硬度的重要决定因素,与肌肉营养不良和其他拉丁病相关的核纤层蛋白突变通常会导致核僵硬度受干扰,从而可能导致组织特异性疾病的表型。

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