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使用时间序列吲哚菁绿荧光成像对后肢缺血进行多参数评估。

Multiparametric evaluation of hindlimb ischemia using time-series indocyanine green fluorescence imaging.

作者信息

Guang Huizhi, Cai Chuangjian, Zuo Simin, Cai Wenjuan, Zhang Jiulou, Luo Jianwen

机构信息

Department of Biomedical Engineering, School of Medicine, Tsinghua University, Beijing, 100084, China.

Department of Experimental Molecular Imaging, RWTH Aachen University Hospital, Aachen, 52074, Germany.

出版信息

J Biophotonics. 2017 Mar;10(3):456-464. doi: 10.1002/jbio.201600029. Epub 2016 May 2.

Abstract

Peripheral arterial disease (PAD) can further cause lower limb ischemia. Quantitative evaluation of the vascular perfusion in the ischemic limb contributes to diagnosis of PAD and preclinical development of new drug. In vivo time-series indocyanine green (ICG) fluorescence imaging can noninvasively monitor blood flow and has a deep tissue penetration. The perfusion rate estimated from the time-series ICG images is not enough for the evaluation of hindlimb ischemia. The information relevant to the vascular density is also important, because angiogenesis is an essential mechanism for post-ischemic recovery. In this paper, a multiparametric evaluation method is proposed for simultaneous estimation of multiple vascular perfusion parameters, including not only the perfusion rate but also the vascular perfusion density and the time-varying ICG concentration in veins. The target method is based on a mathematical model of ICG pharmacokinetics in the mouse hindlimb. The regression analysis performed on the time-series ICG images obtained from a dynamic reflectance fluorescence imaging system. The results demonstrate that the estimated multiple parameters are effective to quantitatively evaluate the vascular perfusion and distinguish hypo-perfused tissues from well-perfused tissues in the mouse hindlimb. The proposed multiparametric evaluation method could be useful for PAD diagnosis. The estimated perfusion rate and vascular perfusion density maps (left) and the time-varying ICG concentration in veins of the ankle region (right) of the normal and ischemic hindlimbs.

摘要

外周动脉疾病(PAD)可进一步导致下肢缺血。对缺血肢体的血管灌注进行定量评估有助于PAD的诊断和新药的临床前开发。体内时间序列吲哚菁绿(ICG)荧光成像可无创监测血流,且具有较深的组织穿透性。从时间序列ICG图像估计的灌注率不足以评估后肢缺血。与血管密度相关的信息也很重要,因为血管生成是缺血后恢复的重要机制。本文提出了一种多参数评估方法,用于同时估计多个血管灌注参数,不仅包括灌注率,还包括血管灌注密度和静脉中随时间变化的ICG浓度。该目标方法基于小鼠后肢ICG药代动力学的数学模型。对从动态反射荧光成像系统获得的时间序列ICG图像进行回归分析。结果表明,估计的多个参数对于定量评估血管灌注以及区分小鼠后肢灌注不足的组织和灌注良好的组织是有效的。所提出的多参数评估方法可能对PAD诊断有用。正常和缺血后肢的估计灌注率和血管灌注密度图(左)以及踝关节区域静脉中随时间变化的ICG浓度(右)。

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