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利用本征正交分解的计算流体动力学模型来评估冠状动脉生理学和壁面剪应力。

Computational fluid dynamics model utilizing proper orthogonal decomposition to assess coronary physiology and wall shear stress.

作者信息

Lotfi Amir, Caraeni Daniela, Haider Omar, Pervaiz Abdullah, Modarres-Sadeghi Yahya

机构信息

University of Massachusetts, Baystate Medical Center, Department of Cardiology, 759 Chestnut Street, Springfield, MA, 01199, USA.

Department of Mechanics and Industrial Engineering, University of Massachusetts, Amherst, MA, 01003, USA.

出版信息

Comput Biol Med. 2025 Apr;188:109840. doi: 10.1016/j.compbiomed.2025.109840. Epub 2025 Feb 25.

Abstract

BACKGROUND

Percutaneous coronary intervention (PCI) to alleviate symptoms and improve outcomes in patients with symptomatic coronary artery disease. However, conventional assessments like coronary angiography may not fully capture the hemodynamic significance of coronary lesions. This study explores the utility of Proper Orthogonal Decomposition (POD) in elucidating coronary flow dynamics pre- and post-stent placement.

OBJECTIVES

Through the utilization of POD modes, we aim to analyze the intricate geometries of individual patients, extracting dominant POD modes both pre- and post-PCI. By engaging these modes, our objective is to discern changes in velocity patterns and wall shear stress, offering insight into the physiological outcomes of stent interventions in coronary arteries.

METHODS

The POD method with QR-decomposition was employed to generate POD modes, decomposing the vector field of interest into spatial functions modulated by time coefficients. Patients with prior coronary artery bypass surgery, myocardial bridging, collateral arteries, or recent myocardial infarction within 48 h were excluded from the study.

RESULTS

Results demonstrated improved hemodynamic parameters post-PCI, with significant enhancements in coronary flow reserve and reduced wall shear stress. POD analysis revealed that the first five modes effectively characterized flow features, highlighting stenosis, stent deployment, and branch dynamics.

CONCLUSION

This exploratory study demonstrates POD's potential for real-time assessment of coronary lesion significance and post-intervention outcomes. Its efficiency in capturing key flow characteristics offers a promising tool for personalized decision-making in interventional cardiology, enhancing our understanding of coronary hemodynamics and optimizing treatment strategies.

摘要

背景

经皮冠状动脉介入治疗(PCI)旨在缓解有症状冠状动脉疾病患者的症状并改善其预后。然而,像冠状动脉造影这样的传统评估可能无法完全捕捉冠状动脉病变的血流动力学意义。本研究探讨了本征正交分解(POD)在阐明支架置入前后冠状动脉血流动力学方面的效用。

目的

通过利用POD模态,我们旨在分析个体患者的复杂几何结构,提取PCI术前和术后的主要POD模态。通过运用这些模态,我们的目标是辨别速度模式和壁面剪应力的变化,从而深入了解冠状动脉支架介入治疗的生理结果。

方法

采用具有QR分解的POD方法生成POD模态,将感兴趣的向量场分解为由时间系数调制的空间函数。曾接受冠状动脉搭桥手术、心肌桥、侧支动脉或在48小时内发生近期心肌梗死的患者被排除在本研究之外。

结果

结果显示PCI术后血流动力学参数得到改善,冠状动脉血流储备显著提高,壁面剪应力降低。POD分析表明,前五种模态有效地表征了血流特征,突出了狭窄、支架置入和分支动态。

结论

这项探索性研究证明了POD在实时评估冠状动脉病变意义和介入治疗后结果方面的潜力。它在捕捉关键血流特征方面的有效性为介入心脏病学中的个性化决策提供了一个有前景的工具,增强了我们对冠状动脉血流动力学的理解并优化了治疗策略。

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