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The dynamics of vein graft remodeling induced by hemodynamic forces: A mathematical model

机译:血流动力学力引起的静脉移植物重塑动力学:数学模型

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Although vein bypass grafting is one of the primary options for the treatment of arterial occlusive disease and provides satisfactory results at an early stage of the treatment, the patency is limited to a fewmonths in many patients. When the vein is implanted in the arterial system, it adapts to the high flow rate and high pressure of the arterial environment by changing the sizes of its layers, and this remodeling is believed to be a precursor of future graft failure. Hemodynamic forces, such as wall shear stress (WSS) and wall tension, have been recognized as major factors impacting vein graft remodeling. Although a wide range of experimental evidence relating hemodynamic forces to vein graft remodeling has been reported, a comprehensive mathematical model describing the relationship among WSS, wall tension, and the structural adaptation of each individual layer of the vein graft wall is lacking. The current manuscript presents a comprehensive and robust framework for treating the complex interaction between the WSS, wall tension, and the structural adaptation of each individual layer of the vein graft wall.We modeled the intimal and medial area and the radius of external elastic lamina, which in combination dictate luminal narrowing and the propensity for graft occlusion. Central to our model is a logistic relationship between independent and dependent variables to describe the initial increase and later decrease in the growth rate. The detailed understanding of the temporal changes in vein graft morphology that can be extracted from the current model is critical in identifying the dominant contributions to vein graft failure and the further development of strategies to improve their longevity.
机译:尽管静脉搭桥术是治疗动脉闭塞性疾病的主要选择之一,并且在治疗的早期阶段即可提供令人满意的结果,但许多患者的通畅性仅限于几个月。当静脉植入动脉系统时,它会通过改变其层的大小来适应高流速和动脉环境的高压,并且这种重塑被认为是未来移植失败的先兆。诸如壁切应力(WSS)和壁张力等血流动力学力已被认为是影响静脉移植物重塑的主要因素。尽管已经报道了将血液动力与静脉移植物重塑相关的大量实验证据,但缺乏描述WSS,壁张力和静脉移植物壁各层结构适应性之间关系的综合数学模型。当前的手稿提供了一个全面而强大的框架,用于处理WSS,壁张力和静脉移植壁各层的结构适应之间的复杂相互作用。我们对内膜和内膜区域以及外部弹性椎板的半径进行了建模,这些因素共同决定了管腔变窄和移植物闭塞的倾向。我们模型的核心是自变量和因变量之间的逻辑关系,以描述增长率的最初增加和之后减少。可以从当前模型中详细了解静脉移植物形态的时间变化,对于确定对静脉移植物衰竭的主要贡献以及提高其寿命的策略的进一步发展至关重要。

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