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A Computational Pipeline to Investigate Longitudinal Blood Flow Changes in the Circle of Willis of Patients with Stable and Growing Aneurysms

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Journal Ann Biomed Eng
Date 2024 Apr 14
PMID 38616236
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Abstract

Changes in cerebral blood flow are often associated with the initiation and development of different life-threatening medical conditions including aneurysm rupture and ischemic stroke. Nevertheless, it is not fully clear how haemodynamic changes in time across the Circle of Willis (CoW) are related with intracranial aneurysm (IA) growth. In this work, we introduced a novel reduced-order modelling strategy for the systematic quantification of longitudinal blood flow changes across the whole CoW in patients with stable and unstable/growing aneurysm. Magnetic Resonance Angiography (MRA) images were converted into one-dimensional (1-D) vessel networks through a semi-automated procedure, with a level of geometric reconstruction accuracy controlled by user-dependent parameters. The proposed pipeline was used to systematically analyse longitudinal haemodynamic changes in seven different clinical cases. Our preliminary simulation results indicate that growing aneurysms are not necessarily associated with significant changes in mean flow over time. A concise sensitivity analysis also shed light on which modelling aspects need to be further characterized to have reliable patient-specific predictions. This study poses the basis for investigating how time-dependent changes in the vasculature affect the haemodynamics across the whole CoW in patients with stable and growing aneurysms.

References
1.
Reymond P, Merenda F, Perren F, Rufenacht D, Stergiopulos N . Validation of a one-dimensional model of the systemic arterial tree. Am J Physiol Heart Circ Physiol. 2009; 297(1):H208-22. DOI: 10.1152/ajpheart.00037.2009. View

2.
Frosen J, Cebral J, Robertson A, Aoki T . Flow-induced, inflammation-mediated arterial wall remodeling in the formation and progression of intracranial aneurysms. Neurosurg Focus. 2019; 47(1):E21. PMC: 7193287. DOI: 10.3171/2019.5.FOCUS19234. View

3.
Stergiopulos N, Young D, Rogge T . Computer simulation of arterial flow with applications to arterial and aortic stenoses. J Biomech. 1992; 25(12):1477-88. DOI: 10.1016/0021-9290(92)90060-e. View

4.
Robertson A, Duan X, Aziz K, Hill M, Watkins S, Cebral J . Diversity in the Strength and Structure of Unruptured Cerebral Aneurysms. Ann Biomed Eng. 2015; 43(7):1502-15. PMC: 4497939. DOI: 10.1007/s10439-015-1252-4. View

5.
Bhardwaj S, Craven B, Sever J, Costanzo F, Simon S, Manning K . Modeling flow in an anatomical cerebrovascular model with experimental validation. Front Med Technol. 2023; 5():1130201. PMC: 9996037. DOI: 10.3389/fmedt.2023.1130201. View