Akter Sharmin, Kawauchi Satoko, Sato Shunichi, Aosasa Suefumi, Yamamoto Junji, Nishidate Izumi
Graduate School of Bio-Applications & Systems Engineering, Tokyo University of Agriculture and Technology, 2-24-16 Naka-cho, Koganei, Tokyo 184-8588, Japan.
Division of Biomedical Information Sciences, National Defense Medical College Research Institute, 3-2 Namiki, Tokorozawa, Saitama 359-8513, Japan.
Biomed Opt Express. 2017 Jan 19;8(2):974-992. doi: 10.1364/BOE.8.000974. eCollection 2017 Feb 1.
A red-green-blue camera-based imaging method is proposed for estimating spatial maps of concentrations of oxyhemoglobin (), deoxyhemoglobin (), total hemoglobin (), tissue oxygen saturation (), and scattering power () in liver tissue. Hemodynamic responses to hepatic ischemia-reperfusion of rat liver tissues induced by portal triad occlusion were evaluated. Upon portal triad occlusion, this method yielded images of decreased , , , and , and increased followed by a progressive increase in and during reperfusion. Time courses of the changes in , , , and over different regions of interest (ROI) revealed that ischemia results in an abrupt significant (<0.05) reduction in , , and with a simultaneous increase in compared to the baseline level, indicative of the hemodynamic responses during hepatic ischemia-reperfusion. Upon reperfusion, there was a gradual increase in and , and decrease in . The change in average scattering power implies the presence of morphological alterations in the cellular and subcellular structures induced by ischemia or anoxia. This study shows the potential of monitoring spatiotemporal changes in hemodynamic parameters and morphological changes in studies of hepatic pathophysiology.
提出了一种基于红-绿-蓝相机的成像方法,用于估计肝组织中氧合血红蛋白( )、脱氧血红蛋白( )、总血红蛋白( )、组织氧饱和度( )和散射功率( )的浓度空间图。评估了门静脉三联阻断诱导的大鼠肝组织对肝缺血再灌注的血流动力学反应。门静脉三联阻断时,该方法产生了 、 、 和 降低以及 增加的图像,随后在再灌注期间 和 逐渐增加。在不同感兴趣区域(ROI)上 、 、 和 的变化时间过程表明,与基线水平相比,缺血导致 、 和 突然显著(<0.05)降低,同时 增加,这表明了肝缺血再灌注期间的血流动力学反应。再灌注时, 和 逐渐增加, 降低。平均散射功率 的变化意味着缺血或缺氧诱导的细胞和亚细胞结构形态改变的存在。本研究显示了在肝病理生理学研究中监测血流动力学参数时空变化和形态学变化的潜力。