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Origin of axial prestretch and residual stress in arteries

机译:轴向预拉伸的起源和动脉残余应力

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The structural protein elastin endows large arteries with unique biological functionality and mechanical integrity, hence its disorganization, fragmentation, or degradation can have important consequences on the progression and treatment of vascular diseases. There is, therefore, a need in arterial mechanics to move from materially uniform, phenomenological, constitutive relations for the wall to those that account for separate contributions of the primary structural constituents: elastin, fibrillar collagens, smooth muscle, and amorphous matrix. In this paper, we employ a recently proposed constrained mixture model of the arterial wall and show that prestretched elastin contributes significantly to both the retraction of arteries that is observed upon transection and the opening angle that follows the introduction of a radial cut in an unloaded segment. We also show that the transmural distributions of elastin and collagen, compressive stiffness of collagen, and smooth muscle tone play complementary roles. Axial prestresses and residual stresses in arteries contribute to the homeostatic state of stress in vivo as well as adaptations to perturbed loads, disease, or injury. Understanding better the development of and changes in wall stress due to individual extracellular matrix constituents thus promises to provide considerable clinically important insight into arterial health and disease.
机译:结构蛋白弹性蛋白赋予大动脉独特的生物学功能和机械完整性,因此其分解,断裂或降解可能对血管疾病的进展和治疗产生重要影响。因此,动脉力学需要从壁的物质均匀的,现象学的,本构关系转变为那些主要结构成分的单独贡献的物质:弹性蛋白,纤维状胶原,平滑肌和无定形基质。在本文中,我们采用了最近提出的受约束的动脉壁混合模型,结果表明,预拉伸的弹性蛋白对横切时观察到的动脉回缩以及在空载节段中引入放射状切开后的张开角均具有重要作用。 。我们还表明,弹性蛋白和胶原蛋白的透壁分布,胶原蛋白的抗压刚度和平滑肌张力起着互补的作用。动脉中的轴向预应力和残余应力会导致体内应力的体内稳态,并适应摄动的负荷,疾病或损伤。因此,更好地了解由于单个细胞外基质成分引起的壁应力的发生和变化,有望为动脉健康和疾病提供相当重要的临床意义。

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