Department of Biomedical Engineering, Columbia University, New York, NY, USA.
J Mol Cell Cardiol. 2010 Mar;48(3):490-6. doi: 10.1016/j.yjmcc.2009.08.003. Epub 2009 Aug 15.
Extracellular matrix (ECM) components play essential roles in development, remodeling, and signaling in the cardiovascular system. They are also important in determining the mechanics of blood vessels, valves, pericardium, and myocardium. The goal of this brief review is to summarize available information regarding the mechanical contributions of ECM in the myocardium. Fibrillar collagen, elastin, and proteoglycans all play crucial mechanical roles in many tissues in the body generally and in the cardiovascular system specifically. The myocardium contains all three components, but their mechanical contributions are relatively poorly understood. Most studies of ECM contributions to myocardial mechanics have focused on collagen, but quantitative prediction of mechanical properties of the myocardium, or changes in those properties with disease, from measured tissue structure is not yet possible. Circumstantial evidence suggests that the mechanics of cardiac elastin and proteoglycans merit further study. Work in other tissues used a combination of correlation, modification or digestion, and mathematical modeling to establish mechanical roles for specific ECM components; this work can provide guidance for new experiments and modeling studies in myocardium.
细胞外基质 (ECM) 成分在心血管系统的发育、重塑和信号转导中发挥着重要作用。它们在确定血管、瓣膜、心包和心肌的力学特性方面也很重要。本文的目的是总结有关 ECM 在心肌中力学贡献的现有信息。纤维状胶原蛋白、弹性蛋白和蛋白聚糖在体内的许多组织中,特别是在心血管系统中,都起着至关重要的力学作用。心肌中含有这三种成分,但它们的力学贡献相对不太清楚。大多数关于 ECM 对心肌力学贡献的研究都集中在胶原蛋白上,但从测量的组织结构定量预测心肌的力学特性或这些特性随疾病的变化尚不可能。间接证据表明,心脏弹性蛋白和蛋白聚糖的力学特性值得进一步研究。其他组织的研究采用相关性、修饰或消化以及数学建模的组合来确定特定 ECM 成分的力学作用;这项工作可以为心肌中的新实验和建模研究提供指导。