心脏细胞和组织的动态力学生物学:现状和未来展望。

IF 2.9 Q2 BIOPHYSICS Biophysics reviews Pub Date : 2023-03-01 Epub Date: 2023-03-29 DOI:10.1063/5.0141269
Chenyan Wang, Ghiska Ramahdita, Guy Genin, Nathaniel Huebsch, Zhen Ma
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引用次数: 0

摘要

机械力影响心脏细胞和组织的整个生命周期,从发育到生长,最终到病理生理。然而,驱动细胞和组织对机械力作出反应的机械生物学途径现在才刚刚开始被理解,部分原因是在实验室环境中复制心脏细胞和组织不断变化的动态微环境所面临的挑战。尽管已经建立了许多体外心脏模型,通过生物材料支架或外部刺激为心脏细胞和组织提供特定的刚度、地形或粘弹性,但呈现随时间变化的机械微环境的技术直到最近才发展起来。在这篇综述中,我们总结了用于心脏机械生物学研究的体外平台的范围。我们对心肌细胞在这些环境下的表型和分子变化进行了全面的回顾,重点关注动态机械信号是如何被转导和破译的。我们总结了这些发现将如何帮助确定心脏病理学的基线,以及这些体外系统将如何潜在地促进心脏病治疗的发展。
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Dynamic mechanobiology of cardiac cells and tissues: Current status and future perspective.

Mechanical forces impact cardiac cells and tissues over their entire lifespan, from development to growth and eventually to pathophysiology. However, the mechanobiological pathways that drive cell and tissue responses to mechanical forces are only now beginning to be understood, due in part to the challenges in replicating the evolving dynamic microenvironments of cardiac cells and tissues in a laboratory setting. Although many in vitro cardiac models have been established to provide specific stiffness, topography, or viscoelasticity to cardiac cells and tissues via biomaterial scaffolds or external stimuli, technologies for presenting time-evolving mechanical microenvironments have only recently been developed. In this review, we summarize the range of in vitro platforms that have been used for cardiac mechanobiological studies. We provide a comprehensive review on phenotypic and molecular changes of cardiomyocytes in response to these environments, with a focus on how dynamic mechanical cues are transduced and deciphered. We conclude with our vision of how these findings will help to define the baseline of heart pathology and of how these in vitro systems will potentially serve to improve the development of therapies for heart diseases.

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