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通过流固相互作用建模对中心血压进行无创估计。

Noninvasive estimation of central blood pressure through fluid-structure interaction modeling.

作者信息

Wu Peishuo, Zhu Chi

机构信息

Department of Mechanics and Engineering Science, State Key Laboratory for Turbulence and Complex Systems, Peking University, Beijing, 100871, China.

Nanchang Innovation Institute, Peking University, Nanchang, 330008, China.

出版信息

Biomech Model Mechanobiol. 2025 Apr;24(2):423-439. doi: 10.1007/s10237-024-01916-5. Epub 2024 Dec 20.

Abstract

Central blood pressure (cBP) is considered a superior indicator of cardiovascular fitness than brachial blood pressure (bBP). Even though bBP is easy to measure noninvasively, it is usually higher than cBP due to pulse wave amplification, characterized by the gradual increase in peak systolic pressure during pulse wave propagation. In this study, we aim to develop an individualized transfer function that can accurately estimate cBP from bBP. We first construct a three-dimensional, patient-specific model of the upper limb arterial system using fluid-structure interaction simulations, incorporating variable material properties and complex boundary conditions. Then, we develop an analytical brachial-aortic transfer function based on novel solutions for compliant vessels. The accuracy of this transfer function is successfully validated against numerical simulation results, which effectively reproduce pulse wave propagation and amplification, with key hemodynamic parameters falling within the range of clinical measurements. Further analysis of the transfer function reveals that cBP is a linear combination of bBP and aortic flow rate in the frequency domain, with the coefficients determined by vessel geometry, material properties, and boundary conditions. Additionally, bBP primarily contributes to the steady component of cBP, while the aortic flow rate is responsible for the pulsatile component. Furthermore, local sensitivity analysis indicates that the lumen radius is the most influential parameter in accurately estimating cBP. Although not directly applicable clinically, the proposed transfer function enhances understanding of the underlying physics-highlighting the importance of aortic flow and lumen radius-and can guide the development of more practical transfer functions.

摘要

中心血压(cBP)被认为是比肱动脉血压(bBP)更能反映心血管健康状况的指标。尽管肱动脉血压易于无创测量,但由于脉搏波放大作用,其通常高于中心血压,脉搏波放大的特征是在脉搏波传播过程中收缩压峰值逐渐升高。在本研究中,我们旨在开发一种个性化的传递函数,能够从肱动脉血压准确估计中心血压。我们首先使用流固相互作用模拟构建上肢动脉系统的三维、患者特异性模型,纳入可变材料特性和复杂边界条件。然后,我们基于顺应性血管的新解开发了一种解析肱动脉 - 主动脉传递函数。该传递函数的准确性已通过数值模拟结果成功验证,数值模拟有效再现了脉搏波传播和放大,关键血流动力学参数落在临床测量范围内。对传递函数的进一步分析表明,在频域中,中心血压是肱动脉血压和主动脉流速的线性组合,系数由血管几何形状、材料特性和边界条件决定。此外,肱动脉血压主要对中心血压的稳定成分有贡献,而主动脉流速则决定脉动成分。此外,局部敏感性分析表明,管腔半径是准确估计中心血压最具影响力的参数。尽管所提出的传递函数在临床上不能直接应用,但它增强了对潜在物理原理的理解——突出了主动脉流速和管腔半径的重要性——并可为更实用的传递函数的开发提供指导。

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