Mechanotransduction of mesenchymal stem cells and hemodynamic implications.

IF 1.6 4区 医学 Q4 PHYSIOLOGY
Ting-Wei Kao, Yi-Shiuan Liu, Chih-Yu Yang, Oscar Kuang-Sheng Lee
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引用次数: 1

Abstract

Mesenchymal stem cells (MSCs) possess the capacity for self-renewal and multipotency. The traditional approach to manipulating MSC's fate choice predominantly relies on biochemical stimulation. Accumulating evidence also suggests the role of physical input in MSCs differentiation. Therefore, investigating mechanotransduction at the molecular level and related to tissue-specific cell functions sheds light on the responses secondary to mechanical forces. In this review, a new frontier aiming to optimize the cultural parameters was illustrated, i.e. spatial boundary condition, which recapitulates in vivo physiology and facilitates the investigations of cellular behavior. The concept of mechanical memory was additionally addressed to appreciate how MSCs store imprints from previous culture niches. Besides, different types of forces as physical stimuli were of interest based on the association with the respective signaling pathways and the differentiation outcome. The downstream mechanoreceptors and their corresponding effects were further pinpointed. The cardiovascular system or immune system may share similar mechanisms of mechanosensing and mechanotransduction; for example, resident stem cells in a vascular wall and recruited MSCs in the bloodstream experience mechanical forces such as stretch and fluid shear stress. In addition, baroreceptors or mechanosensors of endothelial cells detect changes in blood flow, pass over signals induced by mechanical stimuli and eventually maintain arterial pressure at the physiological level. These mechanosensitive receptors transduce pressure variation and regulate endothelial barrier functions. The exact signal transduction is considered context dependent but still elusive. In this review, we summarized the current evidence of how mechanical stimuli impact MSCs commitment and the underlying mechanisms. Future perspectives are anticipated to focus on the application of cardiovascular bioengineering and regenerative medicine.

间充质干细胞的机械转导及其血流动力学意义。
间充质干细胞(MSCs)具有自我更新能力和多能性。操纵MSC命运选择的传统方法主要依赖于生化刺激。越来越多的证据也表明物理输入在间充质干细胞分化中的作用。因此,在分子水平上研究机械转导,并与组织特异性细胞功能相关,有助于阐明机械力的次生反应。本文介绍了优化培养参数的一个新领域,即空间边界条件,它概括了体内生理,促进了细胞行为的研究。机械记忆的概念也被提及,以了解MSCs如何从以前的文化环境中存储印记。此外,不同类型的力作为物理刺激的兴趣基于各自的信号通路和分化结果的关联。进一步明确了下游的机械感受器及其相应的作用。心血管系统或免疫系统可能具有类似的机械感知和机械转导机制;例如,血管壁上的常驻干细胞和血液中募集的间充质干细胞会受到拉伸和流体剪切应力等机械力的影响。此外,内皮细胞的压力感受器或机械感受器检测血流的变化,传递机械刺激引起的信号,最终将动脉压维持在生理水平。这些机械敏感受体可传导压力变化并调节内皮屏障功能。确切的信号转导被认为是上下文相关的,但仍然难以捉摸。在这篇综述中,我们总结了目前关于机械刺激如何影响间充质干细胞承诺及其潜在机制的证据。未来的发展方向是心血管生物工程和再生医学的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.30
自引率
5.60%
发文量
36
审稿时长
6-12 weeks
期刊介绍: Chinese Journal of Physiology is a multidisciplinary open access journal. Chinese Journal of Physiology (CJP) publishes high quality original research papers in physiology and pathophysiology by authors all over the world. CJP welcomes submitted research papers in all aspects of physiology science in the molecular, cellular, tissue and systemic levels. Multidisciplinary sciences with a focus to understand the role of physiology in health and disease are also encouraged. Chinese Journal of Physiology accepts fourfold article types: Original Article, Review Article (Mini-Review included), Short Communication, and Editorial. There is no cost for readers to access the full-text contents of publications.
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