默里定律与动脉粥样硬化风险的关联:动脉树一般标度定律的数值验证。

IF 6.3 2区 医学 Q1 BIOLOGY Computers in biology and medicine Pub Date : 2025-03-01 Epub Date: 2025-01-27 DOI:10.1016/j.compbiomed.2025.109741
Mohammad Shumal, Mohsen Saghafian, Ebrahim Shirani, Mahdi Nili-AhmadAbadi
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引用次数: 0

摘要

主动脉、冠状动脉等大中型血管易发生动脉粥样硬化,在这些血管中,血流动力学应力是至关重要的。低和振荡壁剪切应力有助于内皮功能障碍和炎症。默里定律最小化了血管网络的能量消耗,适用于小动脉。然而,它的假设不能解释较大的、易发生动脉粥样硬化的动脉中血液流动的脉动性。本研究旨在数值验证一种新的通用标度律,该标度律扩展Murray定律以纳入脉动流效应,并展示其在血管健康和人工移植物设计中的应用。所提出的标度律建立了动脉分叉特征与脉动血流动力学之间的最佳关系,适用于整个血管系统。这项工作考察了偏离默里定律与冠状动脉和腹主动脉分叉动脉粥样硬化发展之间的关系,解释了在这些区域观察到的偏离默里定律的现象。应用有限体积法评估冠状动脉和主动脉髂分叉的血流模式,结合体内脉动流入和平均出口压力。结果表明:与Murray定律相比,该标度律增强了壁面剪应力分布,其特征是壁面剪应力增大,振荡剪切指数减小;这些发现表明,遵循这种结垢规律的血管不易发生动脉粥样硬化。此外,结果与临床形态学数据一致,强调了所提出的缩放定律在优化血管移植物设计,促进良好的血流动力学模式和最小化临床应用中的闭塞风险方面的潜力。
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Association of Murray's law with atherosclerosis risk: Numerical validation of a general scaling law of arterial tree.

Atherogenesis is prone in medium and large-sized vessels, such as the aorta and coronary arteries, where hemodynamic stress is critical. Low and oscillatory wall shear stress contributes significantly to endothelial dysfunction and inflammation. Murray's law minimizes energy expenditure in vascular networks and applies to small arteries. However, its assumptions fail to account for the pulsatile nature of blood flow in larger, atherosclerosis-prone arteries. This study aims to numerically validate a novel general scaling law that extends Murray's law to incorporate pulsatile flow effects and demonstrate its applications in vascular health and artificial graft design. The proposed scaling law establishes an optimal relationship between arterial bifurcation characteristics and pulsatile flow dynamics, applicable throughout the vascular system. This work examines the relationship between deviations from Murray's law and the development of atherosclerosis in both coronary arteries and abdominal aorta bifurcations, explaining observed deviations from Murray's law in these regions. A finite volume method is applied to evaluate flow patterns in coronary arteries and aortoiliac bifurcations, incorporating in vivo pulsatile inflow and average outlet pressure. The results indicate that the proposed scaling law enhances wall shear stress distribution compared to Murray's law, which is characterized by higher wall shear stress and reduced oscillatory shear index. These findings suggest that vessels adhering to this scaling law are less susceptible to atherosclerosis. Furthermore, the results are consistent with clinical morphometric data, underscoring the potential of the proposed scaling law to optimize vascular graft designs, promoting favorable hemodynamic patterns and minimizing the occlusion risk in clinical applications.

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来源期刊
Computers in biology and medicine
Computers in biology and medicine 工程技术-工程:生物医学
CiteScore
11.70
自引率
10.40%
发文量
1086
审稿时长
74 days
期刊介绍: Computers in Biology and Medicine is an international forum for sharing groundbreaking advancements in the use of computers in bioscience and medicine. This journal serves as a medium for communicating essential research, instruction, ideas, and information regarding the rapidly evolving field of computer applications in these domains. By encouraging the exchange of knowledge, we aim to facilitate progress and innovation in the utilization of computers in biology and medicine.
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