Gaussian curvature dilutes the nuclear lamina, favoring nuclear rupture, especially at high strain rate.

Charlotte R Pfeifer, Michael P Tobin, Sangkyun Cho, Manasvita Vashisth, Lawrence J Dooling, Lizeth Lopez Vazquez, Emma G Ricci-De Lucca, Keiann T Simon, Dennis E Discher
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引用次数: 12

Abstract

Nuclear rupture has long been associated with deficits or defects in lamins, with recent results also indicating a role for actomyosin stress, but key physical determinants of rupture remain unclear. Here, lamin-B filaments stably interact with the nuclear membrane at sites of low Gaussian curvature yet dilute at high curvature to favor rupture, whereas lamin-A depletion requires high strain-rates. Live-cell imaging of lamin-B1 gene-edited cancer cells is complemented by fixed-cell imaging of rupture in: iPS-derived progeria patients cells, cells within beating chick embryo hearts, and cancer cells with multi-site rupture after migration through small pores. Data fit a model of stiff filaments that detach from a curved surface.Rupture is modestly suppressed by inhibiting myosin-II and by hypotonic stress, which slow the strain-rates. Lamin-A dilution and rupture probability indeed increase above a threshold rate of nuclear pulling. Curvature-sensing mechanisms of proteins at plasma membranes, including Piezo1, might thus apply at nuclear membranes.Summary statement: High nuclear curvature drives lamina dilution and nuclear envelope rupture even when myosin stress is inhibited. Stiff filaments generally dilute from sites of high Gaussian curvature, providing mathematical fits of experiments.

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高斯曲率稀释核层,有利于核破裂,特别是在高应变速率下。
长期以来,核破裂一直与层粘连蛋白的缺陷有关,最近的研究结果也表明了肌动球蛋白应激的作用,但破裂的关键物理决定因素仍不清楚。在这里,纤层蛋白b丝在低高斯曲率处稳定地与核膜相互作用,但在高曲率处被稀释,有利于破裂,而纤层蛋白a的耗尽需要高应变率。lamin-B1基因编辑的癌细胞的活细胞成像辅以ips衍生的早衰患者细胞、跳动的鸡胚胎心脏细胞和通过小孔隙迁移后多点破裂的癌细胞的破裂固定细胞成像。数据符合刚性细丝从曲面分离的模型。通过抑制肌球蛋白- ii和低渗应激,可以适度抑制破裂,从而减缓应变速率。Lamin-A稀释和破裂概率确实在核拉力阈值以上增加。因此,包括Piezo1在内的质膜上蛋白质的曲率传感机制可能适用于核膜。摘要声明:高核曲率驱动层稀释和核膜破裂,即使肌球蛋白应激被抑制。硬丝通常从高高斯曲率的位置稀释,提供了实验的数学拟合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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