Srienc Anja I, Kornfield Tess E, Mishra Anusha, Burian Michael A, Newman Eric A
Department of Neuroscience, University of Minnesota, Minneapolis, MN, USA.
Methods Mol Biol. 2012;814:499-514. doi: 10.1007/978-1-61779-452-0_33.
Glial cells, traditionally viewed as passive elements in the CNS, are now known to have many essential functions. Many of these functions have been revealed by work on retinal glial cells. This work has been conducted almost exclusively on ex vivo preparations and it is essential that retinal glial cell functions be characterized in vivo as well. To this end, we describe an in vivo rat preparation to assess the functions of retinal glial cells. The retina of anesthetized, paralyzed rats is viewed with confocal microscopy and laser speckle flowmetry to monitor glial cell responses and retinal blood flow. Retinal glial cells are labeled with the Ca(2+) indicator dye Oregon Green 488 BAPTA-1 and the caged Ca(2+) compound NP-EGTA by injection of the compounds into the vitreous humor. Glial cells are stimulated by photolysis of caged Ca(2+) and the activation state of the cells assessed by monitoring Ca(2+) indicator dye fluorescence. We find that, as in the ex vivo retina, retinal glial cells in vivo generate both spontaneous and evoked intercellular Ca(2+) waves. We also find that stimulation of glial cells leads to the dilation of neighboring retinal arterioles, supporting the hypothesis that glial cells regulate blood flow in the retina. This in vivo preparation holds great promise for assessing glial cell function in the healthy and pathological retina.
神经胶质细胞传统上被视为中枢神经系统中的被动成分,现在已知它们具有许多重要功能。其中许多功能已通过对视网膜神经胶质细胞的研究得以揭示。这项工作几乎完全是在离体标本上进行的,同样重要的是要在体内对视网膜神经胶质细胞的功能进行表征。为此,我们描述了一种用于评估视网膜神经胶质细胞功能的体内大鼠制备方法。通过共聚焦显微镜和激光散斑血流仪观察麻醉、瘫痪大鼠的视网膜,以监测神经胶质细胞反应和视网膜血流。通过将Ca(2+)指示剂染料 Oregon Green 488 BAPTA-1和笼锁Ca(2+)化合物NP-EGTA注入玻璃体液来标记视网膜神经胶质细胞。通过笼锁Ca(2+)的光解刺激神经胶质细胞,并通过监测Ca(2+)指示剂染料荧光来评估细胞的激活状态。我们发现,与离体视网膜一样,体内视网膜神经胶质细胞会产生自发的和诱发的细胞间Ca(2+)波。我们还发现,刺激神经胶质细胞会导致相邻视网膜小动脉扩张,支持神经胶质细胞调节视网膜血流的假说。这种体内制备方法在评估健康和病理视网膜中的神经胶质细胞功能方面具有很大的前景。