The cycle of form and function in cardiac valvulogenesis

Stephanie E. Lindsey, J. Butcher
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引用次数: 16

Abstract

The formation and remodeling of the embryonic valves is a complex and dynamic process that occurs within a constantly changing hemodynamic environment. Defects in embryonic and fetal valve remodeling are the leading cause of congenital heart defects, yet very little is known about how fibrous leaflet tissue is created from amorphous gelatinous masses called cushions. Microenvironmental cues such as mechanical forces and extracellular matrix composition play major roles in cell differentiation, but almost all research efforts in valvulogenesis center around genetics and molecular approaches. This review summarizes what is known about the dynamic mechanical and extracellular matrix microenvironment of the atrioventricular and semilunar valves during embryonic development and their possible guidance roles. A variety of new computational tools and sophisticated experimental techniques are progressing that enable precise microenvironmental alterations that are critical to complement genetic gain and loss of function approaches. Studies at the interface of mechanical and genetic signaling in embryonic valvulogenesis will likely pay significant dividends, not only in terms of increasing our mechanistic understanding, but also lead to the development of novel therapeutic strategies for patients with congenital valve abnormalities.
心脏瓣膜形成中形态和功能的循环
胚胎瓣膜的形成和重塑是一个复杂的动态过程,发生在不断变化的血流动力学环境中。胚胎缺陷和胎儿瓣膜重塑是导致先天性心脏缺陷的主要原因,然而人们对纤维小叶组织是如何从被称为软垫的无定形胶质团块中产生的知之甚少。机械力和细胞外基质组成等微环境因素在细胞分化中起着重要作用,但几乎所有关于瓣膜发生的研究都集中在遗传学和分子方法上。本文综述了胚胎发育过程中房室瓣和半月瓣的动态力学和细胞外基质微环境及其可能的指导作用。各种新的计算工具和复杂的实验技术正在取得进展,能够实现精确的微环境改变,这对于补充遗传功能的获得和丧失方法至关重要。在胚胎瓣膜发生中机械和遗传信号的界面研究可能会带来显著的回报,不仅在增加我们对机制的理解方面,而且还会导致先天性瓣膜异常患者的新治疗策略的发展。
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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