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PMID: 39946822 Published · ppublish English Journal Article

Growth in a two-dimensional model of coarctation of the aorta: A CFD-informed agent based model.

Journal of biomechanics ·Vol. 182 ·2025-03-00 ·Pages 112514

Hampwaye N, Wang J, Revell A, Manchester E, Aldersley T, Zuhlke L, Keavney B, Ngoepe M

Abstract

In the individualized treatment of a patient with Coarctation of the Aorta (CoA), a non-severe case which initially exhibits no symptoms, and thus requires no treatment, could potentially become severe over time. This progression can be attributed to insufficient growth at the coarctation site relative to the overall growth of the child. Therefore, an agent-based model (ABM) to predict the aortic growth of a CoA patient is introduced. The multi-scale approach combines Computational Fluid Dynamics (CFD) and ABM to study systems that are influenced by both mechanical stimuli and biochemical responses characteristic of growth. Our focus is on ABM development; thus, CFD insights were applied solely to enhance the ABM framework. Comparative medicine was leveraged to develop a species-specific ABM by considering the rat and porcine species commonly used in cardiovascular research together with data from healthy human toddlers. The ABM luminal radius prediction accuracy was observed to be 79% for rat, above 95% for porcine and 91. 6% for the healthy toddler; while that observed for the growth rate was 38.7%, 90% and 64.3% respectively. Given its performance, the ABM was adapted to a 2.5-year-old patient-specific CoA. Subsequently, the model predicted that by age 3, the condition would worsen, marked by persistent CoA enhanced by the predicted least growth compared to growth predicted in the rest of the aorta, hypertension, and increased turbulent flow; thus, increased vessel injury risk. The findings advise for incorporating vascular remodelling into the ABM to enhance its predictive capability for intervention planning.

Keywords
Agent-based model Coarctation Growth model Patient-specific aortic growth Species-specific agent-based model
MeSH 主题词
Aortic Coarctation/physiopathology,pathology Animals Humans Rats Swine Models, Cardiovascular Aorta/growth & development,physiopathology Hydrodynamics Child, Preschool Infant Computer Simulation Species Specificity
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Hampwaye Nasonkwe
Centre for Research in Computational and Applied Mechanics, University of Cape Town, South Africa; Mechanical Engineering Department, University of Cape Town, South Africa. Electronic address: [email protected].
Wang Jie
Mechanical, Aerospace & Civil Engineering, University of Manchester, United Kingdom. Electronic address: [email protected].
Revell Alistair
Mechanical, Aerospace & Civil Engineering, University of Manchester, United Kingdom. Electronic address: [email protected].
Manchester Emily
Mechanical, Aerospace & Civil Engineering, University of Manchester, United Kingdom. Electronic address: [email protected].
Aldersley Thomas
Children's Heart Disease Research Unit, Red Cross War Memorial Children's Hospital, Cape Town, South Africa. Electronic address: [email protected].
Zuhlke Liesl
Division of Paediatric Cardiology, Red Cross War Memorial Children's Hospital, Cape Town, South Africa. Electronic address: [email protected].
Keavney Bernard
Cardiovascular Medicine at the Institute of Cardiovascular Sciences, University of Manchester, United Kingdom. Electronic address: [email protected].
Ngoepe Malebogo
Centre for Research in Computational and Applied Mechanics, University of Cape Town, South Africa; Mechanical Engineering Department, University of Cape Town, South Africa. Electronic address: [email protected].
Article Info
Journal
Journal of biomechanics
Abbr.
J Biomech
ISSN
1873-2380
Published
2025-03-00
Epub
2025-00-04
Pages
112514
Language
English
Country/Region
United States
NLM ID
0157375
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