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Arterial mechanics considering the structural and mechanical contributions of ECM constituents

机译:考虑ECM成分的结构和力学影响的动脉力学

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摘要

Considering the organization and engagement behavior of different extracellular matrix (ECM) constituents in the medial and adventitial layer of the arterial wall, in this study, we proposed a new constitutive model of ECM mechanics that considers the distinct structural and mechanical contributions of medial elastin, medial collagen, and adventitial collagen, to incorporate the constituent-specific fiber orientation and the sequential fiber engagement in arterial mechanics. Planar biaxial tensile testing method was used to characterize the orthotropic and hyperelastic behavior of porcine thoracic aorta. Fiber distribution functions of medial elastin, medial collagen, and adventitial collagen were incorporated into the constitutive model. Considering the sequential engagement of ECM constituents in arterial mechanics, a recruitment density function was incorporated into the model to capture the delayed engagement of adventitial collagen. A freely jointed chain model was used to capture the mechanical behavior of elastin and collagen at the fiber level. The tissue-level ECM mechanics was obtained by incorporating fiber distribution, engagement, and elastin and collagen content. The multi-scale constitutive model considering the structural and mechanical contributions of the three major ECM constituents allows us to directly incorporate information obtained from quantitative multi-photon imaging and analysis, and biochemical assay for the prediction of tissue-level mechanical response. Moreover, the model shows promises in fitting and predicting with a small set of material parameters, which has physical meanings and can be related to the structure of the ECM.
机译:考虑到动脉壁内侧和外膜层中不同细胞外基质(ECM)成分的组织和参与行为,在这项研究中,我们提出了一种新的ECM力学本构模型,其中考虑了弹性蛋白内侧在结构和力学方面的独特贡献,内侧胶原和外膜胶原,将特定成分的纤维取向和顺序的纤维结合纳入动脉力学中。平面双轴拉伸试验方法用于表征猪胸主动脉的正交各向异性和超弹性行为。内侧弹性蛋白,内侧胶原和外膜胶原的纤维分布功能被纳入本构模型。考虑到ECM成分在动脉力学中的顺序参与,将募集密度函数合并到模型中以捕获外膜胶原的延迟参与。使用自由连接链模型在纤维水平上捕获弹性蛋白和胶原的机械行为。通过整合纤维分布,接合,弹性蛋白和胶原蛋白含量,获得了组织级ECM力学。考虑到三个主要ECM成分的结构和机械作用的多尺度本构模型,使我们可以直接合并从定量多光子成像和分析以及生化测定中获得的信息,以预测组织级的机械反应。此外,该模型显示了使用少量材料参数进行拟合和预测的希望,这具有物理意义,并且可能与ECM的结构有关。

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