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影响反射式动脉光电容积脉搏波描记法现象的量化

Quantification of the Phenomena Affecting Reflective Arterial Photoplethysmography.

作者信息

Rovas Georgios, Bikia Vasiliki, Stergiopulos Nikolaos

机构信息

Laboratory of Hemodynamics and Cardiovascular Technology, Institute of Bioengineering, Swiss Federal Institute of Technology Lausanne, 1015 Lausanne, Switzerland.

出版信息

Bioengineering (Basel). 2023 Apr 10;10(4):460. doi: 10.3390/bioengineering10040460.

Abstract

Photoplethysmography (PPG) is a widely emerging method to assess vascular health in humans. The origins of the signal of reflective PPG on peripheral arteries have not been thoroughly investigated. We aimed to identify and quantify the optical and biomechanical processes that influence the reflective PPG signal. We developed a theoretical model to describe the dependence of reflected light on the pressure, flow rate, and the hemorheological properties of erythrocytes. To verify the theory, we designed a silicone model of a human radial artery, inserted it in a mock circulatory circuit filled with porcine blood, and imposed static and pulsatile flow conditions. We found a positive, linear relationship between the pressure and the PPG and a negative, non-linear relationship, of comparable magnitude, between the flow and the PPG. Additionally, we quantified the effects of the erythrocyte disorientation and aggregation. The theoretical model based on pressure and flow rate yielded more accurate predictions, compared to the model using pressure alone. Our results indicate that the PPG waveform is not a suitable surrogate for intraluminal pressure and that flow rate significantly affects PPG. Further validation of the proposed methodology in vivo could enable the non-invasive estimation of arterial pressure from PPG and increase the accuracy of health-monitoring devices.

摘要

光电容积脉搏波描记法(PPG)是一种广泛应用于评估人体血管健康的新兴方法。外周动脉反射式PPG信号的起源尚未得到充分研究。我们旨在识别和量化影响反射式PPG信号的光学和生物力学过程。我们开发了一个理论模型来描述反射光与压力、流速以及红细胞血液流变学特性之间的关系。为了验证该理论,我们设计了一个人体桡动脉的硅胶模型,将其插入充满猪血的模拟循环回路中,并施加静态和脉动血流条件。我们发现压力与PPG之间存在正线性关系,流速与PPG之间存在负非线性关系,且二者幅度相当。此外,我们还量化了红细胞取向紊乱和聚集的影响。与仅使用压力的模型相比,基于压力和流速的理论模型产生了更准确的预测。我们的结果表明,PPG波形不是管腔内压力的合适替代指标,流速对PPG有显著影响。在体内对所提出方法的进一步验证可以实现从PPG无创估计动脉压力,并提高健康监测设备的准确性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/60f4/10136360/cf155d170e62/bioengineering-10-00460-g001.jpg

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