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The Coupled Bio-Chemo-Electro-Mechanical Behavior of Glucose Exposed Arterial Elastin

机译:葡萄糖暴露的动脉弹性蛋白的生物化学-电-机械耦合行为

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摘要

Elastin, the principle protein component of the elastic fiber, is a critical extracellular matrix (ECM) component of the arterial wall providing structural resilience and biological signaling essential in vascular morphogenesis and maintenance of mechanical homeostasis. Pathogenesis of many cardiovascular diseases have been associated with alterations of elastin. As a long-lived ECM protein that is deposited and organized before adulthood, elastic fibers can suffer from cumulative effects of biochemical exposure encountered during aging and/or disease, which greatly compromise their mechanical function. This review article covers findings from recent studies of the mechanical and structural contribution of elastin to vascular function, and the effects of biochemical degradation. Results from diverse experimental methods including tissue-level mechanical characterization, fiber-level nonlinear optical imaging, piezoelectric force microscopy, and nuclear magnetic resonance are reviewed. The intriguing coupled bio-chemo-electro-mechanical behavior of elastin calls for a multi-scale and multi-physical understanding of ECM mechanics and mechanobiology in vascular remodeling.
机译:弹性蛋白是弹性纤维的主要蛋白质成分,是动脉壁的关键细胞外基质(ECM)成分,可提供结构弹性和生物信号,这些信号是血管形态发生和维持机械动态平衡所必需的。许多心血管疾病的发病机制都与弹性蛋白的改变有关。弹性纤维是一种长寿命的ECM蛋白,在成年之前沉积并组织起来,因此会遭受衰老和/或疾病过程中所遇到的生化暴露累积影响,从而极大地损害其机械功能。这篇综述文章涵盖了弹性蛋白对血管功能的机械和结构贡献以及生化降解作用的最新研究发现。审查了多种实验方法的结果,包括组织级机械表征,纤维级非线性光学成像,压电显微镜和核磁共振。弹性蛋白的有趣的生物化学-电-机械行为耦合要求对血管重塑中的ECM力学和力学生物学有多尺度和多物理的理解。

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