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基于模型的皮肤定量激光多普勒血流测量。

Model-based quantitative laser Doppler flowmetry in skin.

机构信息

Linköping University, Department of Biomedical Engineering, University Hospital, 581 85 Linköping, Sweden.

出版信息

J Biomed Opt. 2010 Sep-Oct;15(5):057002. doi: 10.1117/1.3484746.

Abstract

Laser Doppler flowmetry (LDF) can be used for assessing the microcirculatory perfusion. However, conventional LDF (cLDF) gives only a relative perfusion estimate for an unknown measurement volume, with no information about the blood flow speed distribution. To overcome these limitations, a model-based analysis method for quantitative LDF (qLDF) is proposed. The method uses inverse Monte Carlo technique with an adaptive three-layer skin model. By analyzing the optimal model where measured and simulated LDF spectra detected at two different source-detector separations match, the absolute microcirculatory perfusion for a specified speed region in a predefined volume is determined. qLDF displayed errors<12% when evaluated using simulations of physiologically relevant variations in the layer structure, in the optical properties of static tissue, and in blood absorption. Inhomogeneous models containing small blood vessels, hair, and sweat glands displayed errors<5%. Evaluation models containing single larger blood vessels displayed significant errors but could be dismissed by residual analysis. In vivo measurements using local heat provocation displayed a higher perfusion increase with qLDF than cLDF, due to nonlinear effects in the latter. The qLDF showed that the perfusion increase occurred due to an increased amount of red blood cells with a speed>1 mm∕s.

摘要

激光多普勒流量metry(LDF)可用于评估微循环灌注。然而,传统的 LDF(cLDF)仅给出未知测量体积的相对灌注估计值,而没有关于血流速度分布的信息。为了克服这些限制,提出了一种基于模型的定量 LDF(qLDF)分析方法。该方法使用具有自适应三层皮肤模型的逆蒙特卡罗技术。通过分析最佳模型,其中在两个不同的源-探测器分离处检测到的测量和模拟的 LDF 光谱相匹配,可以确定在预定义体积中指定速度区域的绝对微循环灌注。当使用在层结构、静态组织的光学特性和血液吸收中生理相关变化的模拟进行评估时,qLDF 的误差<12%。包含小血管、头发和汗腺的不均匀模型的误差<5%。包含单个较大血管的评估模型显示出显著的误差,但可以通过残差分析来排除。使用局部热激发进行的体内测量显示,qLDF 的灌注增加高于 cLDF,这是由于后者的非线性效应。qLDF 表明,灌注增加是由于速度>1mm/s 的红细胞数量增加所致。

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