Nucleocytoplasmic transport senses mechanical forces independently of cell density in cell monolayers.

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-09-01 Epub Date: 2024-09-09 DOI:10.1242/jcs.262363
Ignasi Granero-Moya, Valeria Venturini, Guillaume Belthier, Bart Groenen, Marc Molina-Jordán, Miguel González-Martín, Xavier Trepat, Jacco van Rheenen, Ion Andreu, Pere Roca-Cusachs
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Abstract

Cells sense and respond to mechanical forces through mechanotransduction, which regulates processes in health and disease. In single adhesive cells, mechanotransduction involves the transmission of force from the extracellular matrix to the cell nucleus, where it affects nucleocytoplasmic transport (NCT) and the subsequent nuclear localization of transcriptional regulators, such as YAP (also known as YAP1). However, if and how NCT is mechanosensitive in multicellular systems is unclear. Here, we characterize and use a fluorescent sensor of nucleocytoplasmic transport (Sencyt) and demonstrate that NCT responds to mechanical forces but not cell density in cell monolayers. Using monolayers of both epithelial and mesenchymal phenotype, we show that NCT is altered in response both to osmotic shocks and to the inhibition of cell contractility. Furthermore, NCT correlates with the degree of nuclear deformation measured through nuclear solidity, a shape parameter related to nuclear envelope tension. In contrast, YAP is sensitive to cell density, showing that the YAP response to cell-cell contacts is not via a mere mechanical effect of NCT. Our results demonstrate the generality of the mechanical regulation of NCT.

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细胞单层中的核胞质运输感知力学与细胞密度无关。
细胞通过机械传导来感知和响应机械力,从而调节健康和疾病过程。在单个粘附细胞中,机械传导涉及从细胞外基质到细胞核的力传递,在细胞核中,力影响核胞质转运(NCT)和随后的转录调节因子(如 YAP)的核定位。然而,NCT 在多细胞系统中是否以及如何对机械敏感尚不清楚。在这里,我们描述并使用了一种核胞质转运荧光传感器(Sencyt),并证明了在细胞单层中,核胞质转运对力学而非细胞密度有反应。通过使用上皮细胞和间质细胞表型的单层细胞,我们发现核胞质转运对渗透冲击和细胞收缩性抑制的反应都发生了改变。此外,NCT 与通过核稳固性测量的核变形程度相关,核稳固性是与核包膜张力相关的形状参数。与此相反,YAP 但 NCT 对细胞密度很敏感,这表明 YAP 对细胞-细胞接触的反应并非仅仅通过 NCT 的机械效应。我们的研究结果证明了 NCT 机械调控的普遍性。
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CiteScore
7.20
自引率
4.30%
发文量
567
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