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Cardiovascular mechanics in the early stages of pulmonary hypertension: a computational study

机译:肺动脉高压早期心血管力学:计算研究

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We formulate and study a new mathematical model of pulmonary hypertension. Based on principles of fluid and elastic dynamics, we introduce a model that quantifies the stiffening of pulmonary vasculature (arteries and arterioles) to reproduce the hemodynamics of the pulmonary system, including physiologically consistent dependence between compliance and resistance. This pulmonary model is embedded in a closed-loop network of the major vessels in the body, approximated as one-dimensional elastic tubes, and zero-dimensional models for the heart and other organs. Increasingly severe pulmonary hypertension is modeled in the context of two extreme scenarios: (1) no cardiac compensation and (2) compensation to achieve constant cardiac output. Simulations from the computational model are used to estimate cardiac workload, as well as pressure and flow traces at several locations. We also quantify the sensitivity of several diagnostic indicators to the progression of pulmonary arterial stiffening. Simulation results indicate that pulmonary pulse pressure, pulmonary vascular compliance, pulmonary RC time, luminal distensibility of the pulmonary artery, and pulmonary vascular impedance are much better suited to detect the early stages of pulmonary hypertension than mean pulmonary arterial pressure and pulmonary vascular resistance, which are conventionally employed as diagnostic indicators for this disease.
机译:我们制定和研究肺动脉高压的新数学模型。基于流体和弹性动力学的原理,我们介绍了一种模型,该模型量化了肺脉管系统(动脉和动脉瘤)的加强,以再现肺系统的血流动力学,包括在合规性和抗性之间生理上一致的依赖性。该肺模型嵌入在主体中的主要容器的闭环网络中,近似为一维弹性管,以及用于心脏和其他器官的零维模型。在两个极端情景的背景下模拟了越来越严重的肺动脉高血压:(1)没有心脏补偿和(2)补偿以实现恒定的心输出。计算模型的模拟用于估计心脏工作量,以及几个位置的压力和流动迹线。我们还量化了若干诊断指标对肺动脉加固进展的敏感性。仿真结果表明,肺动脉压力,肺动脉血管依从性,肺动脉肺动脉且肺动脉血管阻抗的肺部脉搏压力和肺血管阻抗更适合检测肺动脉高压和肺动脉压力和肺血管抗性的早期阶段通常是用作这种疾病的诊断指标。

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