Noninvasive orthogonal polarization spectral imaging as applied to microvascular studies in mice.

P Nivoit, A M Chevrier, M Lagarde, C Renaudin, N Wiernsperger
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引用次数: 1

Abstract

In vivo observations of the mouse microcirculation can hardly be performed due to technical difficulties, limiting the knowledge that could be obtained from gene manipulated mice models. The aim of the present study was to check the applicability of a novel optical system, the orthogonal polarization spectral technology, to study the mouse microcirculation. In anaesthetized mice, the spinotrapezius muscle microcirculation was observed in situ. The diameter of precapillary arterioles was measured before and after a pharmacological or hormonal stimulation. High-contrast images of the muscle microcirculation were obtained and significant vasodilatation of arterioles was observed after topical applications of acetylcholine, sodium nitroprusside, and insulin. As compared to conventional techniques, orthogonal polarization spectral imaging makes it possible to assess and study microvascular beds in mice, which were inaccessible until now, allowing the use of gene manipulated mice to investigate, for example, the mechanisms involved in the development of diabetic microangiopathy.

无创正交偏振光谱成像在小鼠微血管研究中的应用。
由于技术上的困难,很难对小鼠微循环进行体内观察,从而限制了从基因操纵小鼠模型中获得的知识。本研究的目的是验证一种新的光学系统——正交偏振光谱技术在小鼠微循环研究中的适用性。麻醉小鼠斜方肌微循环原位观察。在药物或激素刺激前后分别测量毛细血管前小动脉直径。局部应用乙酰胆碱、硝普钠和胰岛素后,获得了肌肉微循环的高对比度图像,观察到小动脉明显扩张。与传统技术相比,正交偏振光谱成像技术使评估和研究小鼠微血管床成为可能,这在以前是无法实现的,允许使用基因操纵小鼠来研究,例如,糖尿病微血管病变的发展机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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