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Nuclear envelope: a new frontier in plant mechanosensing?

机译:核包膜:植物机械传感的新领域?

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摘要

In animals, it is now well established that forces applied at the cell surface are propagated through the cytoskeleton to the nucleus, leading to deformations of the nuclear structure and, potentially, to modification of gene expression. Consistently, altered nuclear mechanics has been related to many genetic disorders, such as muscular dystrophy, cardiomyopathy and progeria. In plants, the integration of mechanical signals in cell and developmental biology has also made great progress. Yet, while the link between cell wall stresses and cytoskeleton is consolidated, such cortical mechanical cues have not been integrated with the nucleoskeleton. Here, we propose to take inspiration from studies on animal nuclei to identify relevant methods amenable to probing nucleus mechanics and deformation in plant cells, with a focus on microrheology. To identify potential molecular targets, we also compare the players at the nuclear envelope, namely lamina and LINC complex, in both plant and animal nuclei. Understanding how mechanical signals are transduced to the nucleus across kingdoms will likely have essential implications in development (e.g. how mechanical cues add robustness to gene expression patterns), in the nucleoskeleton–cytoskeleton nexus (e.g. how stress is propagated in turgid/walled cells), as well as in transcriptional control, chromatin biology and epigenetics.
机译:在动物中,现在已经确定,施加在细胞表面的力会通过细胞骨架传播到细胞核,从而导致核结构变形,并可能改变基因表达。一致地,改变的核力学与许多遗传疾病有关,例如肌肉营养不良,心肌病和早衰。在植物中,机械信号在细胞和发育生物学中的整合也取得了长足的进步。然而,虽然细胞壁应力与细胞骨架之间的联系得到了巩固,但这种皮质机械提示尚未与核骨架整合在一起。在这里,我们建议从动物核研究中汲取灵感,确定适合于探测核力学和植物细胞变形的相关方法,重点是微流变学。为了确定潜在的分子靶标,我们还比较了植物和动物核中处于核膜的参与者,即椎板和LINC复合体。了解机械信号如何跨王国转移到核中,可能会对核骨架-细胞骨架联系中的发育(例如机械线索如何为基因表达模式增加鲁棒性)(例如压力如何在突节/壁细胞中传播)产生重要影响,以及转录控制,染色质生物学和表观遗传学。

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