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白质星形胶质细胞中ATP和谷氨酸介导的钙信号传导机制。

Mechanisms of ATP- and glutamate-mediated calcium signaling in white matter astrocytes.

作者信息

Hamilton Nicola, Vayro Steven, Kirchhoff Frank, Verkhratsky Alexej, Robbins Jon, Gorecki Dariuz C, Butt Arthur M

机构信息

Department of Physiology, University College London, London, United Kingdom.

出版信息

Glia. 2008 May;56(7):734-49. doi: 10.1002/glia.20649.

Abstract

Neurotransmitters released at synapses mediate Ca2+ signaling in astrocytes in CNS grey matter. Here, we show that ATP and glutamate evoke these Ca2+ signals in white matter astrocytes of the mouse optic nerve, a tract that contains neither neuronal cell bodies nor synapses. We further demonstrate that action potentials along white matter axons trigger the release of ATP and the intercellular propagation of astroglial Ca2+ signals. These mechanisms were studied in astrocytes in intact optic nerves isolated from transgenic mice expressing enhanced green fluorescent protein (EGFP) under control of the human glial fibrillary acidic protein promoter (GFAP) by Fura-2 ratiometric Ca2+ imaging. ATP evoked astroglial Ca2+ signals predominantly via metabotropic P2Y1 and ionotropic P2X7 purinoceptors. Glutamate acted on both AMPA- and NMDA-type receptors, as well as on group I mGlu receptors to induce an increase in astroglial [Ca2+]i. The direct Ca2+ signal evoked by glutamate was small, and the main action of glutamate was to trigger the release of the "gliotransmitter" ATP by a mechanism involving P2X7 receptors; propagation of the glutamate-mediated Ca2+ signal was significantly reduced in P2X7 knock-out mice. Furthermore, axonal action potentials and mechanical stimulation of astrocytes both induced the release of ATP, to propagate Ca2+ signals in astrocytes and neighboring EGFP-negative glia. Our data provide a model of multiphase axon-glial signaling in the optic nerve as follows: action potentials trigger axonal release of ATP, which evokes further release of ATP from astrocytes, and this acts by amplifying the initiating signal and by transmitting an intercellular Ca2+ wave to neighboring glia.

摘要

在中枢神经系统灰质中,突触释放的神经递质介导星形胶质细胞中的Ca2+信号传导。在此,我们表明ATP和谷氨酸能在小鼠视神经的白质星形胶质细胞中引发这些Ca2+信号,而视神经束既不包含神经元细胞体也没有突触。我们进一步证明,沿白质轴突的动作电位触发ATP的释放以及星形胶质细胞Ca2+信号的细胞间传播。通过Fura-2比率Ca2+成像,在从人胶质纤维酸性蛋白启动子(GFAP)控制下表达增强型绿色荧光蛋白(EGFP)的转基因小鼠分离出的完整视神经中的星形胶质细胞中研究了这些机制。ATP主要通过代谢型P2Y1和离子型P2X7嘌呤受体引发星形胶质细胞Ca2+信号。谷氨酸作用于AMPA型和NMDA型受体以及I组代谢型谷氨酸受体,以诱导星形胶质细胞[Ca2+]i增加。谷氨酸直接引发的Ca2+信号很小,谷氨酸的主要作用是通过涉及P2X7受体的机制触发“胶质递质”ATP的释放;在P2X7基因敲除小鼠中,谷氨酸介导的Ca2+信号的传播显著减少。此外,轴突动作电位和对星形胶质细胞的机械刺激均诱导ATP的释放,从而在星形胶质细胞和邻近的EGFP阴性神经胶质细胞中传播Ca2+信号。我们的数据提供了一种视神经中多相轴突-神经胶质信号传导模型,如下:动作电位触发轴突释放ATP,ATP又从星形胶质细胞引发进一步的ATP释放,这通过放大起始信号并将细胞间Ca2+波传递给邻近神经胶质细胞来发挥作用。

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