Quantitative analysis of small intestinal microcirculation in the mouse.

S Massberg, S Eisenmenger, G Enders, F Krombach, K Messmer
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引用次数: 72

Abstract

Impairment of intestinal nutritive perfusion and accumulation of inflammatory cells in the intestinal microvasculature are well-known sequelae of mesenteric ischemia/reperfusion, sepsis, and shock. However, the molecular mechanisms underlying these alterations are still not fully understood. The mouse is particularly suitable for the study of these mechanisms since in this species the involvement of, for example, adhesion receptors or pro-/anti-adhesive mediators can be selectively investigated by the use of monoclonal antibodies or gene-targeted strains. The aim of our present study was, therefore, to establish a model to investigate the microcirculation in the mouse small intestine. Under anesthesia by inhalation of isoflurane-N2O, Balb/c mice (n = 16) were laparotomized, and a segment of the jejunum was exteriorized for intrvital fluorescence microscopy. Using FITC-dextran (MW 150,000) as a plasma marker, functional capillary density (FCD) of both the intestinal mucosa and muscle layer was analyzed. Nutritive perfusion was homogeneous in both compartments with values for FCD of 512 +/- 15 cm-1 in mucosa and 226 +/- 21 cm-1 in the muscle layer. No significant changes were observed throughout the observation period of 2 h (FCD values at the end of the observation period: 524 +/- 31 cm-1 and 207 +/- 7 cm-1 in mucosa and muscle, respectively). Besides capillary perfusion, leukocyte-endothelial cell interaction was analyzed in postcapillary venules of the intestinal submucosa using rhodamine-6G as an in vivo leukocyte stain. Under physiological conditions only a few white blood cells were found rolling along or firmly adherent to the microvascular endothelium (number of rolling leukocytes 1 +/- 0.2 cells/mm per second; number of adherent leukocytes: 18 +/- 7 cells/mm2). In a separate group rhodamine-6G-labeled syngeneic platelets were infused to analyze platelet-endothelial cell interactions quantitatively in vivo. Platelets rolled along or attached to the endothelium in a manner similar to leukocytes. However, in contrast to leukocytes the interactions were not restricted to venules, but were also observed in small arterioles. The newly established model allows for the visualization and quantitative assessment of both nutritive perfusion and platelet/leukocytendothelial cell interactions within the distinct layers of the mouse small intestine. Using this model in combination with gene-targeted mice or monoclonal antibodies it is possible to investigate the molecular mechanisms of intestinal inflammation reactions.

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小鼠小肠微循环定量分析。
肠系膜缺血/再灌注、败血症和休克的后遗症是肠营养灌注损伤和肠道微血管炎症细胞的积累。然而,这些变化背后的分子机制仍未被完全理解。小鼠特别适合研究这些机制,因为在该物种中,粘附受体或亲/抗粘附介质的参与可以通过使用单克隆抗体或基因靶向菌株进行选择性研究。因此,本研究的目的是建立小鼠小肠微循环模型。在吸入异氟烷- n2o麻醉下,将Balb/c小鼠(n = 16)剖腹,取出一段空肠进行肠内荧光显微镜观察。采用fitc -葡聚糖(m150000)作为血浆标志物,分析肠黏膜和肌层的功能毛细血管密度(FCD)。两室营养灌注均匀,粘膜FCD值为512 +/- 15 cm-1,肌肉层FCD值为226 +/- 21 cm-1。在2 h的观察期内未见明显变化(观察结束时粘膜和肌肉的FCD值分别为524 +/- 31 cm-1和207 +/- 7 cm-1)。除毛细血管灌注外,利用罗丹明- 6g作为体内白细胞染色,分析了肠道粘膜下层毛细血管后小静脉中白细胞与内皮细胞的相互作用。在生理条件下,只有少数白细胞沿微血管内皮滚动或牢固粘附(滚动白细胞数1 +/- 0.2个细胞/mm /秒;贴壁白细胞数:18 +/- 7细胞/mm2)。在另一组中,注射罗丹明- 6g标记的同基因血小板,定量分析血小板-内皮细胞在体内的相互作用。血小板以类似于白细胞的方式沿内皮细胞滚动或附着在内皮细胞上。然而,与白细胞不同的是,这种相互作用不仅局限于小静脉,而且在小动脉中也观察到。新建立的模型允许可视化和定量评估营养灌注和血小板/白细胞内皮细胞在小鼠小肠不同层内的相互作用。将该模型与基因靶向小鼠或单克隆抗体联合使用,可以研究肠道炎症反应的分子机制。
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