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Astrocytic Coverage of Dendritic Spines Dendritic Shafts and Axonal Boutons in Hippocampal Neuropil

机译:海马Neuropil树突棘树突轴和轴突boutons的星形胶质细胞覆盖。

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摘要

Distal astrocytic processes have a complex morphology, reminiscent of branchlets and leaflets. Astrocytic branchlets are rod-like processes containing mitochondria and endoplasmic reticulum, capable of generating inositol-3-phosphate (IP3)-dependent Ca2+ signals. Leaflets are small and flat processes that protrude from branchlets and fill the space between synapses. Here we use three-dimensional (3D) reconstructions from serial section electron microscopy (EM) of rat CA1 hippocampal neuropil to determine the astrocytic coverage of dendritic spines, shafts and axonal boutons. The distance to the maximum of the astrocyte volume fraction (VF) correlated with the size of the spine when calculated from the center of mass of the postsynaptic density (PSD) or from the edge of the PSD, but not from the spine surface. This suggests that the astrocytic coverage of small and larger spines is similar in hippocampal neuropil. Diffusion simulations showed that such synaptic microenvironment favors glutamate spillover and extrasynaptic receptor activation at smaller spines. We used complexity and entropy measures to characterize astrocytic branchlets and leaflets. The 2D projections of astrocytic branchlets had smaller spatial complexity and entropy than leaflets, consistent with the higher structural complexity and less organized distribution of leaflets. The VF of astrocytic leaflets was highest around dendritic spines, lower around axonal boutons and lowest around dendritic shafts. In contrast, the VF of astrocytic branchlets was similarly low around these three neuronal compartments. Taken together, these results suggest that astrocytic leaflets preferentially contact synapses as opposed to the dendritic shaft, an arrangement that might favor neurotransmitter spillover and extrasynaptic receptor activation along dendritic shafts.
机译:星形细胞的远端过程具有复杂的形态,让人联想到小枝和小叶。星形细胞小枝是杆状过程,包含线粒体和内质网,能够产生肌醇-3-磷酸酯(IP3)依赖性的Ca 2 + 信号。小叶是小而扁平的过程,从小枝伸出并充满突触之间的空间。在这里,我们使用大鼠CA1海马神经丛的连续切片电子显微镜(EM)进行的三维(3D)重建,以确定树突棘,轴和轴突的星形胶质细胞覆盖。从突触后密度(PSD)的质心或PSD的边缘而不是从脊柱表面算起,到星形胶质细胞体积分数(VF)最大值的距离与脊柱的大小相关。这表明在海马神经绒毛中,小刺和大刺的星形细胞覆盖相似。扩散模拟表明,这种突触微环境有利于谷氨酸外溢和较小棘突处的突触外受体活化。我们使用复杂性和熵测度来表征星形细胞小叶和小叶。星形细胞小枝的二维投影比小叶具有更小的空间复杂性和熵,这与小叶的较高的结构复杂性和较少的组织分布相一致。星形胶质细胞小叶的VF在树突棘周围最高,在轴突bou绕周围较低,在树突干周围最低。相反,在这三个神经元区室周围,星形细胞小分支的VF相似地低。综上所述,这些结果表明,与树突状干相反,星形细胞小叶优先接触突触,这种排列可能有利于神经递质的溢出和沿树突状干的突触外受体活化。

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