Hemodynamic effects of pulsatile frequency of right ventricular assist device (RVAD) on pulmonary perfusion: a simulation study.

IF 2.6 4区 医学 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Medical & Biological Engineering & Computing Pub Date : 2024-12-01 Epub Date: 2024-07-25 DOI:10.1007/s11517-024-03174-0
Fan Meng, Yuanfei Zhu, Ming Yang
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Abstract

Right ventricular assist devices (RVADs) have been extensively used to provide hemodynamic support for patients with end-stage right heart (RV) failure. However, conventional in-parallel RVADs can lead to an elevation of pulmonary artery (PA) pressure, consequently increasing the right ventricular (RV) afterload, which is unfavorable for the relaxation of cardiac muscles and reduction of valve complications. The aim of this study is to investigate the hemodynamic effects of the pulsatile frequency of the RVAD on pulmonary artery. Firstly, a mathematical model incorporating heart, systemic circulation, pulmonary circulation, and RVAD is developed to simulate the cardiovascular system. Subsequently, the frequency characteristics of the pulmonary circulation system are analyzed, and the calculated results demonstrate that the pulsatile frequency of the RVAD has a substantive impact on the pulmonary artery pressure. Finally, to verify the analysis results, the hemodynamic effects of the pulsatile frequency of the RVAD on pulmonary artery are compared under diffident support modes. It is found that the pulmonary artery pressure decreases by approximately 6% when the pulsatile frequency changes from 1 to 3 Hz. The increased pulsatile frequency of RA-PA support mode may facilitate the opening of the pulmonary valve, while the RV-PA support mode can more effectively reduce the load of RV. This work provides a useful method to decrease the pulmonary artery pressure during the RVAD supports and may be beneficial for improving myocardial function in patients with end-stage right heart failure, especially those with pulmonary hypertension.

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右心室辅助装置 (RVAD) 脉动频率对肺灌注的血流动力学影响:一项模拟研究。
右心室辅助装置(RVAD)已被广泛用于为终末期右心衰竭患者提供血液动力学支持。然而,传统的并联右心室辅助器会导致肺动脉(PA)压力升高,从而增加右心室(RV)的后负荷,不利于心肌的放松和减少瓣膜并发症。本研究旨在探讨 RVAD 脉动频率对肺动脉的血流动力学影响。首先,建立一个包含心脏、全身循环、肺循环和 RVAD 的数学模型来模拟心血管系统。随后,分析了肺循环系统的频率特性,计算结果表明 RVAD 的脉动频率对肺动脉压力有实质性影响。最后,为了验证分析结果,比较了不同支持模式下 RVAD 脉动频率对肺动脉的血流动力学影响。结果发现,当脉动频率从 1 赫兹变为 3 赫兹时,肺动脉压力下降了约 6%。增加 RA-PA 支持模式的脉动频率可促进肺动脉瓣的开放,而 RV-PA 支持模式则能更有效地减轻 RV 的负荷。这项研究提供了一种在 RVAD 支持期间降低肺动脉压力的有效方法,可能有利于改善终末期右心衰竭患者,尤其是肺动脉高压患者的心肌功能。
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来源期刊
Medical & Biological Engineering & Computing
Medical & Biological Engineering & Computing 医学-工程:生物医学
CiteScore
6.00
自引率
3.10%
发文量
249
审稿时长
3.5 months
期刊介绍: Founded in 1963, Medical & Biological Engineering & Computing (MBEC) continues to serve the biomedical engineering community, covering the entire spectrum of biomedical and clinical engineering. The journal presents exciting and vital experimental and theoretical developments in biomedical science and technology, and reports on advances in computer-based methodologies in these multidisciplinary subjects. The journal also incorporates new and evolving technologies including cellular engineering and molecular imaging. MBEC publishes original research articles as well as reviews and technical notes. Its Rapid Communications category focuses on material of immediate value to the readership, while the Controversies section provides a forum to exchange views on selected issues, stimulating a vigorous and informed debate in this exciting and high profile field. MBEC is an official journal of the International Federation of Medical and Biological Engineering (IFMBE).
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