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黏附细胞的体积调节:表面张力和细胞肿胀的作用。

Volume regulation in adhered cells: Roles of surface tension and cell swelling.

机构信息

Collège de France, Paris, France; Laboratoire Physico-Chimie Curie, Institut Curie, Centre de Recherche, Paris Sciences et Lettres Research University, Centre National de la Recherche Scientifique, Paris, France; Université Pierre et Marie Curie, Sorbonne Universités, Paris, France.

Laboratoire Physico-Chimie Curie, Institut Curie, Centre de Recherche, Paris Sciences et Lettres Research University, Centre National de la Recherche Scientifique, Paris, France; Université Pierre et Marie Curie, Sorbonne Universités, Paris, France.

出版信息

Biophys J. 2023 Feb 7;122(3):506-512. doi: 10.1016/j.bpj.2022.12.036. Epub 2023 Jan 6.

Abstract

The volume of adhered cells has been shown experimentally to decrease during spreading. This effect can be understood from the pump-leak model, which we have extended to include mechano-sensitive ion transporters. We identify a novel effect that has important consequences on cellular volume loss: cells that are swollen due to a modulation of ion transport rates are more susceptible to volume loss in response to a tension increase. This effect explains in a plausible manner the discrepancies between three recent, independent experiments on adhered cells, between which both the magnitude of the volume change and its dynamics varied substantially. We suggest that starved and synchronized cells in two of the experiments were in a swollen state and, consequently, exhibited a large volume loss at steady state. Nonswollen cells, for which there is a very small steady-state volume decrease, are still predicted to transiently lose volume during spreading due to a relaxing viscoelastic tension that is large compared with the steady-state tension. We elucidate the roles of cell swelling and surface tension in cellular volume regulation and discuss their possible microscopic origins.

摘要

实验表明,细胞在铺展过程中黏附细胞的体积会减少。该效应可以用泵漏模型来理解,我们将其扩展到包括机械敏感性离子转运体。我们发现了一种新的效应,它对细胞体积损失有重要影响:由于离子转运速率的调节而肿胀的细胞,对张力增加引起的体积损失更敏感。该效应以合理的方式解释了三个最近的独立黏附细胞实验之间的差异,这三个实验之间,体积变化的幅度及其动力学变化都很大。我们推测,两个实验中的饥饿和同步化细胞处于肿胀状态,因此在稳态下会表现出大量的体积损失。尽管对于非肿胀细胞,其稳态体积减小非常小,但由于与稳态张力相比,松弛的黏弹性张力非常大,在铺展过程中它们仍会瞬时失去体积。我们阐明了细胞肿胀和表面张力在细胞体积调节中的作用,并讨论了它们可能的微观起源。

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