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间质干细胞中的谱系承诺、信号通路和细胞骨架系统。

Lineage Commitment, Signaling Pathways, and the Cytoskeleton Systems in Mesenchymal Stem Cells.

机构信息

Biological Faculty, M.V. Lomonosov Moscow State University, Moscow, Russia.

Center of Experimental Embryology and Reproductive Biotechnology, Moscow, Russia.

出版信息

Tissue Eng Part B Rev. 2020 Feb;26(1):13-25. doi: 10.1089/ten.TEB.2019.0250. Epub 2019 Nov 26.

Abstract

Mesenchymal stem cells (MSCs) from adult tissues are promising candidates for personalized cell therapy and tissue engineering. Significant progress was achieved in our understanding of the regulation of MSCs proliferation and differentiation by different cues during the past years. Proliferation and differentiation of MSCs are sensitive to the extracellular matrix (ECM) properties, physical cues, and chemical signaling. Sheath stress, matrix stiffness, surface adhesiveness, and micro- and nanotopography define cell shape and dictate lineage commitment of MSCs even in the absence of specific chemical signals. We discuss mechanotransduction as the major route from ECM through the cytoskeleton toward signaling pathways and gene expression. All components of the cytoskeleton from primary cilium and focal adhesions (FAs) to actin, microtubules (MTs), and intermediate filaments (IFs) are involved in the mechanotransduction. Differentiation of MSCs is regulated via the complex network of interrelated signaling pathways, including RhoA/ROCK, Akt/Erk, and YAP/TAZ effectors of Hippo pathway. These pathways could be regulated both by chemical and mechanical stimuli. Attenuation of these pathways in MSCs results in specific changes in FAs and actin cytoskeleton. Besides, differentiation of MSCs affects MTs and IFs. Recent findings highlight the role of intranuclear actin in the regulation of transcription factors in response to mechanical environmental stimuli. Alterations of cytoskeletal components reflect the MSC senescence state and their migratory capacity. In this review, we discuss the relationships between the molecular interactions in signaling pathways and morphological response of cytoskeletal components and reveal the complex interrelations between cytoskeleton systems and signaling pathways during lineage commitment of MSCs. Impact Statement This review describes the complex network of relationships between mechanical and biochemical stimuli in mesenchymal stem cells (MSC) and their balance which defines the morphological changes of cell shape due to rearrangement of cytoskeletal systems during lineage commitment of MSCs.

摘要

间充质干细胞(MSCs)来源于成体组织,是个性化细胞治疗和组织工程的有前途的候选者。在过去的几年中,我们在理解不同信号对 MSCs 增殖和分化的调控方面取得了重大进展。MSCs 的增殖和分化对细胞外基质(ECM)特性、物理信号和化学信号很敏感。鞘压力、基质硬度、表面附着力以及微观和纳观形貌决定了细胞的形状,并决定了 MSCs 的谱系决定,即使在没有特定化学信号的情况下也是如此。我们讨论了从 ECM 通过细胞骨架到信号通路和基因表达的主要机械转导途径。细胞骨架的所有成分,从初级纤毛和焦点黏附(FA)到肌动蛋白、微管(MT)和中间丝(IF),都参与了机械转导。MSCs 的分化受包括 RhoA/ROCK、Akt/Erk 和 Hippo 通路的 YAP/TAZ 效应物在内的复杂相互关联的信号通路网络调控。这些通路可以通过化学和机械刺激来调节。在 MSCs 中这些通路的衰减导致 FA 和肌动蛋白细胞骨架的特定变化。此外,MSCs 的分化会影响 MT 和 IF。最近的研究结果强调了核内肌动蛋白在调节转录因子对机械环境刺激的反应中的作用。细胞骨架成分的改变反映了 MSC 的衰老状态及其迁移能力。在这篇综述中,我们讨论了信号通路中的分子相互作用与细胞骨架成分形态反应之间的关系,并揭示了 MSC 谱系决定过程中细胞骨架系统与信号通路之间的复杂相互关系。

影响陈述 本综述描述了间充质干细胞(MSC)中机械和生化刺激之间的复杂网络关系及其平衡,该平衡定义了由于 MSC 谱系决定过程中细胞骨架系统的重新排列而导致细胞形状的形态变化。

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