A real-time patient-specific treatment strategy for enhanced external counterpulsation

IF 2.2 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Bao Li, Youjun Liu, Guangfei Li, Zhe Zhang, Yue Feng, Boyan Mao
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引用次数: 0

Abstract

Diastolic/systolic blood pressure ratio (D/S) ≥ 1.2 is the gold standard of enhanced external counterpulsation (EECP) treatment, but it does not show a clear clinical correspondence with the configuration of the EECP mode. As such, a single target results in different treatment effects in different individuals. The local haemodynamic effect (wall shear stress, WSS) of EECP on vascular endothelial cells is conducive to promote the growth of collateral circulation vessels and restore the blood supply distal to the stenosis lesion. Considering the haemodynamic effects of WSS on human arteries, this study developed a real-time patient-specific treatment strategy of EECP for patients with cardio-cerebrovascular diseases. Based on patient-specific haemodynamic data from 113 individuals, an optimization algorithm was developed to achieve the individualization of a 0D lumped-parameter model of the human circulatory system, thereby simulating the patient-specific global haemodynamic effects. 0D/3D coupled cardio-cerebrovascular models of two subjects were established to simulate the local WSS. We then established statistical models to evaluate clinically unmeasurable WSS based on measurable global haemodynamic indicators. With the aim of attaining appropriate area- and time-averaged WSS (ATAWSS, 4–7 Pa), as evaluated by global haemodynamic indicators, a closed-loop feedback tuning method was developed to provide patient-specific EECP treatment strategies. Results showed that for clinical data collected from 113 individuals, the individualized 0D model can accurately simulate patient-specific global haemodynamic effects (average error <5%). Based on two subjects, the statistical models can be used to evaluate local ATAWSS (error <6%) for coronary arteries and for cerebral arteries. An EECP mode planned by the patient-specific treatment strategy can promote an appropriate ATAWSS within a 16 s calculation time. The real-time patient-specific treatment strategy of EECP is expected to improve the long-term outcome for each patient and have potential clinical significance.

Abstract Image

Abstract Image

增强型体外反搏的实时患者特异性治疗策略。
舒张压/收缩压比值(D/S)≥ 1.2 是增强体外反搏(EECP)治疗的黄金标准,但它与 EECP 模式的配置并没有明确的临床对应关系。因此,单一目标在不同个体身上会产生不同的治疗效果。EECP 对血管内皮细胞的局部血流动力学效应(壁切应力,WSS)有利于促进侧支循环血管的生长,恢复狭窄病变远端的血液供应。考虑到 WSS 对人体动脉的血流动力学效应,本研究为心脑血管疾病患者制定了针对患者的 EECP 实时治疗策略。根据 113 名患者的特异性血流动力学数据,开发了一种优化算法,以实现人体循环系统 0D 块状参数模型的个性化,从而模拟患者特异性的全局血流动力学效应。建立了两个受试者的 0D/3D 心脑血管耦合模型,以模拟局部 WSS。然后,我们建立了统计模型,根据可测量的整体血流动力学指标来评估临床上无法测量的 WSS。为了达到全球血液动力学指标评估的适当区域和时间平均 WSS(ATAWSS,4-7 Pa),我们开发了一种闭环反馈调整方法,以提供针对患者的 EECP 治疗策略。结果表明,对于从 113 名患者身上收集到的临床数据,个体化 0D 模型可以准确模拟患者特定的全局血流动力学效应(平均误差为 0.5%)。
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来源期刊
International Journal for Numerical Methods in Biomedical Engineering
International Journal for Numerical Methods in Biomedical Engineering ENGINEERING, BIOMEDICAL-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
4.50
自引率
9.50%
发文量
103
审稿时长
3 months
期刊介绍: All differential equation based models for biomedical applications and their novel solutions (using either established numerical methods such as finite difference, finite element and finite volume methods or new numerical methods) are within the scope of this journal. Manuscripts with experimental and analytical themes are also welcome if a component of the paper deals with numerical methods. Special cases that may not involve differential equations such as image processing, meshing and artificial intelligence are within the scope. Any research that is broadly linked to the wellbeing of the human body, either directly or indirectly, is also within the scope of this journal.
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