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Computational Simulation of the Adaptive Capacity of Vein Grafts in Response to Increased Pressure

机译:静脉压力对静脉移植物适应能力的计算模拟

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摘要

Vein maladaptation, leading to poor long-term patency, is a serious clinical problem in patients receiving coronary artery bypass grafts (CABGs) or undergoing related clinical procedures that subject veins to elevated blood flow and pressure. We propose a computational model of venous adaptation to altered pressure based on a constrained mixture theory of growth and remodeling (G&R). We identify constitutive parameters that optimally match biaxial data from a mouse vena cava, then numerically subject the vein to altered pressure conditions and quantify the extent of adaptation for a biologically reasonable set of bounds for G&R parameters. We identify conditions under which a vein graft can adapt optimally and explore physiological constraints that lead to maladaptation. Finally, we test the hypothesis that a gradual, rather than a step, change in pressure will reduce maladaptation. Optimization is used to accelerate parameter identification and numerically evaluate hypotheses of vein remodeling.
机译:对于接受冠状动脉旁路移植术(CABG)或正在接受使静脉血流和压力升高的相关临床程序的患者来说,静脉不适应症(导致长期通畅性差)是一个严重的临床问题。我们提出了一种基于生长和重构的约束混合理论(G&R)的静脉适应压力变化的计算模型。我们确定与小鼠腔静脉双轴数据最佳匹配的本构参数,然后对静脉进行数字化处理以适应改变的压力条件,并量化G&R参数生物学上合理范围的适应程度。我们确定了静脉移植物可以最佳适应的条件,并探讨了导致适应不良的生理约束。最后,我们检验了以下假设:压力的逐渐变化而不是逐步变化会减少适应不良。优化用于加速参数识别并在数值上评估静脉重构的假设。

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