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Vascular extracellular matrix and arterial mechanics.

机译:血管细胞外基质和动脉力学。

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An important factor in the transition from an open to a closed circulatory system was a change in vessel wall structure and composition that enabled the large arteries to store and release energy during the cardiac cycle. The component of the arterial wall in vertebrates that accounts for these properties is the elastic fiber network organized by medial smooth muscle. Beginning with the onset of pulsatile blood flow in the developing aorta, smooth muscle cells in the vessel wall produce a complex extracellular matrix (ECM) that will ultimately define the mechanical properties that are critical for proper function of the adult vascular system. This review discusses the structural ECM proteins in the vertebrate aortic wall and will explore how the choice of ECM components has changed through evolution as the cardiovascular system became more advanced and pulse pressure increased. By correlating vessel mechanics with physiological blood pressure across animal species and in mice with altered vessel compliance, we show that cardiac and vascular development are physiologically coupled, and we provide evidence for a universal elastic modulus that controls the parameters of ECM deposition in vessel wall development. We also discuss mechanical models that can be used to design better tissue-engineered vessels and to test the efficacy of clinical treatments.
机译:从开放式循环系统向封闭式循环系统过渡的一个重要因素是血管壁结构和组成的变化,使大动脉能够在心动周期内存储和释放能量。脊椎动物动脉壁中具有这些特性的成分是由内侧平滑肌组织的弹性纤维网络。从发育中的主动脉中脉动性血流的开始开始,血管壁中的平滑肌细胞会产生复杂的细胞外基质(ECM),该基质最终将定义对于成人血管系统的正常功能至关重要的机械性能。这篇综述讨论了脊椎动物主动脉壁中的结构性ECM蛋白,并将探讨随着心血管系统的发展和脉压的升高,ECM组分的选择如何通过进化而改变。通过将血管力学与跨动物物种以及具有顺应性变化的小鼠的生理血压相关联,我们表明心脏和血管的发育在生理上是耦合的,并且我们为控制血管壁发育中ECM沉积参数的通用弹性模量提供了证据。我们还将讨论可用于设计更好的组织工程血管并测试临床治疗效果的机械模型。

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