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PMID: 39232449 Published · ppublish English Journal Article

Patient-specific compliant simulation framework informed by 4DMRI-extracted pulse wave Velocity: Application post-TEVAR.

Journal of biomechanics ·Vol. 175 ·2024-10-00 ·页码 112266

Girardin L, Lind N, von Tengg-Kobligk H, Balabani S, Díaz-Zuccarini V

Abstract

We introduce a new computational framework that utilises Pulse Wave Velocity (PWV) extracted directly from 4D flow MRI (4DMRI) to inform patient-specific compliant computational fluid dynamics (CFD) simulations of a Type-B aortic dissection (TBAD), post-thoracic endovascular aortic repair (TEVAR). The thoracic aortic geometry, a 3D inlet velocity profile (IVP) and dynamic outlet boundary conditions are derived from 4DMRI and brachial pressure patient data. A moving boundary method (MBM) is applied to simulate aortic wall displacement. The aortic wall stiffness is estimated through two methods: one relying on area-based distensibility and the other utilising regional pulse wave velocity (RPWV) distensibility, further fine-tuned to align with in vivo values. Predicted pressures and outlet flow rates were within 2.3 % of target values. RPWV-based simulations were more accurate in replicating in vivo hemodynamics than the area-based ones. RPWVs were closely predicted in most regions, except the endograft. Systolic flow reversal ratios (SFRR) were accurately captured, while differences above 60 % in in-plane rotational flow (IRF) between the simulations were observed. Significant disparities in predicted wall shear stress (WSS)-based indices were observed between the two approaches, especially the endothelial cell activation potential (ECAP). At the isthmus, the RPWV-driven simulation indicated a mean ECAP>1.4 Pa-1 (critical threshold), indicating areas potentially prone to thrombosis, not captured by the area-based simulation. RPWV-driven simulation results agree well with 4DMRI measurements, validating the proposed pipeline and facilitating a comprehensive assessment of surgical decision-making scenarios and potential complications, such as thrombosis and aortic growth.

Keywords
4DMRI CFD Compliant Simulation Pulse Wave Velocity Type-B Aortic Dissection
MeSH 主题词
Humans Pulse Wave Analysis/methods Models, Cardiovascular Endovascular Procedures/methods Aortic Dissection/physiopathology,surgery Computer Simulation Aorta, Thoracic/surgery,physiology,physiopathology,diagnostic imaging Magnetic Resonance Imaging/methods Blood Flow Velocity/physiology Hemodynamics/physiology Endovascular Aneurysm Repair
作者与单位
共 5 位作者,点击展开单位 / ORCID
Girardin Louis
University College London, Department of Mechanical Engineering, Torrington Place, London WC1E7JE, UK; Welcome/ESPRC Centre for Interventional and Surgical Sciences (WEISS), 43-45 Foley Street, London W1W7TS, UK. Electronic address: [email protected].
Lind Niklas
Department of Diagnostic of Interventional and Pediatric Radiology, Inselspital, Bern 3010, Switzerland. Electronic address: [email protected].
von Tengg-Kobligk Hendrik
Department of Diagnostic of Interventional and Pediatric Radiology, Inselspital, Bern 3010, Switzerland. Electronic address: [email protected].
Balabani Stavroula
University College London, Department of Mechanical Engineering, Torrington Place, London WC1E7JE, UK; Welcome/ESPRC Centre for Interventional and Surgical Sciences (WEISS), 43-45 Foley Street, London W1W7TS, UK. Electronic address: [email protected].
Díaz-Zuccarini Vanessa
University College London, Department of Mechanical Engineering, Torrington Place, London WC1E7JE, UK; Welcome/ESPRC Centre for Interventional and Surgical Sciences (WEISS), 43-45 Foley Street, London W1W7TS, UK. Electronic address: [email protected].
Article Info
Journal
Journal of biomechanics
Abbr.
J Biomech
ISSN
1873-2380
Published
2024-10-00
电子出版
2024-00-22
页码
112266
Language
English
Country/Region
United States
NLM ID
0157375
基金资助
British Heart Foundation · NH/20/1/34705 · United Kingdom
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