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PMID: 40105055 Published · ppublish English Journal Article

In Silico Analysis of Pulsatile Flow Veno-Arterial Extracorporeal Membrane Oxygenation on Human Aorta Model.

ASAIO journal (American Society for Artificial Internal Organs : 1992) ·Vol. 71 ·No. 10 ·2025-10-01 ·页码 814-822

Kanagarajan D, Heinsar S, Dau VT, Pauls JP, Tansley GD, Fraser JF

Abstract

Electrocardiogram (ECG)-synchronized pulsatile veno-arterial extracorporeal membrane oxygenation (V-A ECMO) is a recent development in extracorporeal therapy for patients with severe cardiogenic shock. Although preclinical studies have shown benefits of pulsatile flow relative to continuous ECMO flow, none have explored the effects of the timing of ECMO pulses with respect to the cardiac cycle and its possible implications on ECMO complications. This study aimed to develop a computational fluid dynamics (CFD) model of V-A ECMO in a patient-specific human aorta and evaluate the effect of ECMO timing on cardiac unloading, surplus hemodynamic energy delivery, and mixing zone position. Using direct flow measurements from cardiogenic shock patients and an ECMO device, the model revealed that maximal left ventricular (LV) unloading occurred when the ECMO pulse was in early diastole (35-40% from LV peak systolic flow). Maximum surplus hemodynamic energy transmission to aortic branches occurred at 20% from LV peak systolic flow. This indicates a trade-off between heart afterload and hemodynamic energy delivery in selecting ECMO pulse timing. The mixing zone was primarily located in the aortic arch across timing configurations. Therefore, selecting ECMO pulse timing is crucial to maximizing the benefits of pulsatile flow in V-A ECMO treatment.

Keywords
LV unloading V-A ECMO computational fluid dynamics hemodynamic energy mixing zone pulsatile flow
MeSH 主题词
Humans Extracorporeal Membrane Oxygenation/methods Pulsatile Flow/physiology Aorta/physiology,physiopathology Computer Simulation Hemodynamics Models, Cardiovascular Shock, Cardiogenic/therapy,physiopathology Hydrodynamics
作者与单位
共 6 位作者,点击展开单位 / ORCID
Kanagarajan Dhayananth ORCID
From the School of Engineering and Built Environment, Griffith University, Gold Coast, Queensland, Australia. | Innovative Cardiovascular Engineering and Technology Laboratory, Critical Care Research Group, The Prince Charles Hospital, Brisbane, Queensland, Australia.
Heinsar Silver ORCID
Innovative Cardiovascular Engineering and Technology Laboratory, Critical Care Research Group, The Prince Charles Hospital, Brisbane, Queensland, Australia. | Faculty of Medicine, University of Queensland, Brisbane, Queensland, Australia. | Department of Intensive Care, North Estonia Medical Centre, Tallinn, Estonia.
Dau Van Thanh ORCID
From the School of Engineering and Built Environment, Griffith University, Gold Coast, Queensland, Australia.
Pauls Jo P ORCID
From the School of Engineering and Built Environment, Griffith University, Gold Coast, Queensland, Australia.
Tansley Geoffrey D
From the School of Engineering and Built Environment, Griffith University, Gold Coast, Queensland, Australia. | Innovative Cardiovascular Engineering and Technology Laboratory, Critical Care Research Group, The Prince Charles Hospital, Brisbane, Queensland, Australia.
Fraser John F ORCID
Innovative Cardiovascular Engineering and Technology Laboratory, Critical Care Research Group, The Prince Charles Hospital, Brisbane, Queensland, Australia. | Faculty of Medicine, University of Queensland, Brisbane, Queensland, Australia. | School of Medicine, Griffith University, Gold Coast, Queensland, Australia.
Article Info
Journal
ASAIO journal (American Society for Artificial Internal Organs : 1992)
Abbr.
ASAIO J
ISSN
1538-943X
Published
2025-10-01
电子出版
2025-00-29
页码
814-822
Language
English
Country/Region
United States
NLM ID
9204109
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