Key result
This review summarizes heart valve functional physiology, focusing on the link between disease-induced alterations in valve geometry, tissue stress, and cell mechanobiological responses.
This review summarizes current knowledge on heart valve biomechanics, mechanobiology, and computational modeling approaches.
Valve mechanics insights may refine valvular disease assessment; leaves open prospective validation of remodeling models.
Heart valves control unidirectional blood flow within the heart during the cardiac cycle. They have a remarkable ability to withstand the demanding mechanical environment of the heart, achieving lifetime durability by processes involving the ongoing remodeling of the extracellular matrix. The focus of this review is on heart valve functional physiology , with insights into the link between disease‐induced alterations in valve geometry, tissue stress, and the subsequent cell mechanobiological responses and tissue remodeling. We begin with an overview of the fundamentals of heart valve physiology and the characteristics and functions of valve interstitial cells (VICs). We then provide an overview of current experimental and computational approaches that connect VIC mechanobiological response to organ‐ and tissue‐level deformations and improve our understanding of the underlying functional physiology of heart valves. We conclude with a summary of future trends and offer an outlook for the future of heart valve mechanobiology, specifically, multiscale modeling approaches, and the potential directions and possible challenges of research development.
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Ayoub et al. (2016) conducted a review in Heart valve functional physiology and mechanobiology. This review summarizes heart valve functional physiology, focusing on the link between disease-induced alterations in valve geometry, tissue stress, and cell mechanobiological responses.
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