Predicting the effects of surgically determined parameters on exercise tolerance in Fontan patients

IF 1.7 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Poom Kritpracha , Beatrice Riviere , Charles Puelz
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引用次数: 0

Abstract

The Fontan physiology is a surgically created circulation for patients with a single functioning ventricle. Patients with this circulation tend to have lower exercise tolerance compared to those with a normal circulation. Important computational and experimental work has been done to investigate this reduction in exercise tolerance. However, there are few systematic modeling studies that focus on the effect of several surgically determined parameters within the same framework. We propose a mathematical model to describe the Fontan circulation under exercise. We then formulate a heuristic based on clinical data from Fontan patients to estimate exercise tolerance. The model is used to investigate the effect of three important surgically determined parameters on exercise tolerance: the systemic arterial compliance, the systemic-venous to pulmonary-venous fenestration, and the resistance of the total cavopulmonary connection.

预测手术参数对丰坦患者运动耐量的影响
丰唐生理学是通过手术为单功能心室患者建立的循环。与正常循环的患者相比,有这种循环的患者运动耐量往往较低。为研究这种运动耐受性降低的情况,已经开展了重要的计算和实验工作。然而,很少有系统的建模研究在同一框架内关注几个由手术决定的参数的影响。我们提出了一个数学模型来描述运动时的丰坦循环。然后,我们根据丰坦患者的临床数据制定了一个启发式方法来估计运动耐量。该模型用于研究三个重要的手术参数对运动耐受性的影响:全身动脉顺应性、全身-静脉到肺-静脉的峡部以及整个腔肺连接的阻力。
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来源期刊
Medical Engineering & Physics
Medical Engineering & Physics 工程技术-工程:生物医学
CiteScore
4.30
自引率
4.50%
发文量
172
审稿时长
3.0 months
期刊介绍: Medical Engineering & Physics provides a forum for the publication of the latest developments in biomedical engineering, and reflects the essential multidisciplinary nature of the subject. The journal publishes in-depth critical reviews, scientific papers and technical notes. Our focus encompasses the application of the basic principles of physics and engineering to the development of medical devices and technology, with the ultimate aim of producing improvements in the quality of health care.Topics covered include biomechanics, biomaterials, mechanobiology, rehabilitation engineering, biomedical signal processing and medical device development. Medical Engineering & Physics aims to keep both engineers and clinicians abreast of the latest applications of technology to health care.
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