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细胞外液流动通过物理和生化信号诱导浅静息状态。

Extracellular Fluid Flow Induces Shallow Quiescence Through Physical and Biochemical Cues.

作者信息

Liu Bi, Wang Xia, Jiang Linan, Xu Jianhua, Zohar Yitshak, Yao Guang

机构信息

School of Pharmacy, Fujian Provincial Key Laboratory of Natural Medicine Pharmacology, Fujian Medical University, Fuzhou, China.

Department of Molecular and Cellular Biology, University of Arizona, Tucson, AZ, United States.

出版信息

Front Cell Dev Biol. 2022 Feb 24;10:792719. doi: 10.3389/fcell.2022.792719. eCollection 2022.

Abstract

The balance between cell quiescence and proliferation is fundamental to tissue physiology and homeostasis. Recent studies have shown that quiescence is not a passive and homogeneous state but actively maintained and heterogeneous. These cellular characteristics associated with quiescence were observed primarily in cultured cells under a static medium. However, cells face different microenvironmental conditions, particularly, under interstitial fluid flows distributed through extracellular matrices. Interstitial fluid flow exerts shear stress on cells and matrix strain, and results in continuous replacement of extracellular factors. In this study, we analyzed individual cells under varying fluid flow rates in microfluidic devices. We found quiescence characteristics previously identified under conventional static medium, including serum signal-dependant quiescence entry and exit and time-dependant quiescence deepening, are also present under continuous fluid flow. Furthermore, increasing the flow rate drives cells to shallower quiescence and become more likely to reenter the cell cycle upon growth stimulation. This effect is due to flow-induced physical and biochemical cues. Specifically, increasing shear stress or extracellular factor replacement individually, without altering other parameters, results in shallow quiescence. We show our experimental results can be quantitatively explained by a mathematical model connecting extracellular fluid flow to an Rb-E2f bistable switch that regulates the quiescence-to-proliferation transition. Our findings uncover a previously unappreciated mechanism that likely underlies the heterogeneous responses of quiescent cells for tissue repair and regeneration in different physiological tissue microenvironments.

摘要

细胞静止与增殖之间的平衡是组织生理学和内环境稳态的基础。最近的研究表明,静止并非一种被动且同质的状态,而是主动维持且具有异质性的。这些与静止相关的细胞特征主要在静态培养基中的培养细胞中观察到。然而,细胞面临不同的微环境条件,特别是在通过细胞外基质分布的组织液流动情况下。组织液流动对细胞施加剪切应力并导致基质应变,从而导致细胞外因子的持续更新。在本研究中,我们在微流控装置中分析了不同流速下的单个细胞。我们发现,在传统静态培养基中先前确定的静止特征,包括血清信号依赖的静止进入和退出以及时间依赖的静止加深,在持续流体流动下也存在。此外,流速增加会使细胞进入较浅的静止状态,并且在生长刺激下更有可能重新进入细胞周期。这种效应是由流动诱导的物理和生化信号引起的。具体而言,单独增加剪切应力或细胞外因子更新,而不改变其他参数,会导致较浅的静止状态。我们表明,我们的实验结果可以通过一个将细胞外液流动与调节静止到增殖转变的Rb-E2f双稳态开关相连接的数学模型进行定量解释。我们的研究结果揭示了一种以前未被认识到的机制,该机制可能是不同生理组织微环境中静止细胞对组织修复和再生的异质反应的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3fb5/8912726/1e1014abd96e/fcell-10-792719-g001.jpg

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