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Correlating nuclear morphology and external force with combined atomic force microscopy and light sheet imaging separates roles of chromatin and lamin A/C in nuclear mechanics

机译:将核形态和外力与组合原子力显微镜和光纸成像分离染色质和拉丁菌在核力学中的作用

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摘要

Nuclei are often under external stress, be it during migration through tight constrictions or compressive pressure by the actin cap, and the mechanical properties of nuclei govern their subsequent deformations. Both altered mechanical properties of nuclei and abnormal nuclear morphologies are hallmarks of a variety of disease states. Little work, however, has been done to link specific changes in nuclear shape to external forces. Here, we utilize a combined atomic force microscope and light sheet microscope to show SKOV3 nuclei exhibit a two-regime force response that correlates with changes in nuclear volume and surface area, allowing us to develop an empirical model of nuclear deformation. Our technique further decouples the roles of chromatin and lamin A/C in compression, showing they separately resist changes in nuclear volume and surface area, respectively; this insight was not previously accessible by Hertzian analysis. A two-material finite element model supports our conclusions. We also observed that chromatin decompaction leads to lower nuclear curvature under compression, which is important for maintaining nuclear compartmentalization and function. The demonstrated link between specific types of nuclear morphological change and applied force will allow researchers to better understand the stress on nuclei throughout various biological processes.
机译:核通常在外部压力下,通过肌动蛋白帽的紧张收缩或压缩压力在迁移期间,核的机械性能治理其后续变形。核的机械性质和异常核形态的改变是各种疾病状态的标志。然而,已经完成了一点工作,以便将核形状的具体变化与外力联系起来。这里,我们利用组合的原子力显微镜和光薄片显微镜显示Skov3核表现出与核体积和表面积的变化相关的双政策力响应,使我们能够开发核变形的经验模型。我们的技术进一步脱钩了染色质和层压A / C在压缩中的作用,显示它们分别抵抗核体积和表面积的变化;以前没有通过赫兹分析访问此洞察力。两材料有限元模型支持我们的结论。我们还观察到染色质分解导致压缩下的核曲率降低,这对于维持核隔离和功能是重要的。特定类型的核形态变化与应用力之间的显示联系将使研究人员在整个生物过程中更好地了解核的压力。

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