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A goal function approach to remodeling of arteries uncovers mechanisms for growth instability

机译:目标函数方法重建动脉揭示了生长不稳定的机制

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摘要

A novel, goal function-based formulation for the growth dynamics of arteries is introduced and used for investigating the development of growth instability in blood vessels. Such instabilities would lead to abnormal growth of the vessel, reminiscent of an aneurysm. The blood vessel is modeled as a thin-walled cylindrical tube, and the constituents that form the vessel wall are assumed to deform together as a constrained mixture. The growth dynamics of the composite material of the vessel wall are described by an evolution equation, where the effective area of each constituent changes in the direction of steepest descent of a goal function. This goal function is formulated in such way that the constituents grow toward a target potential energy and a target composition. The convergence of the simulated response of the evolution equation toward a target homeostatic state is investigated for a range of isotropic and orthotropic material models. These simulations suggest that elastin-deficient vessels are more prone to growth instability. Increased stiffness of the vessel wall, on the other hand, gives a more stable growth process. Another important finding is that an increased rate of degradation of materials impairs growth stability.
机译:介绍了一种新颖的基于目标函数的动脉生长动力学制剂,并将其用于研究血管生长不稳定的发展。这种不稳定性会导致血管异常生长,使人联想起动脉瘤。血管被建模为薄壁圆柱管,并且假设形成血管壁的成分作为受约束的混合物一起变形。血管壁复合材料的生长动力学由演化方程描述,其中每种成分的有效面积沿目标函数的最速下降方向变化。以这样的方式制定该目标函数,以使成分向目标势能和目标组成增长。对于一系列各向同性和正交各向异性的材料模型,研究了演化方程对目标稳态的模拟响应的收敛性。这些模拟表明,缺乏弹性蛋白的血管更容易生长不稳定。另一方面,增加的血管壁刚度使生长过程更稳定。另一个重要发现是,材料降解速率的提高会损害生长稳定性。

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