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广泛的星形胶质细胞同步促进体内慢波活动中的神经元耦合。

Extensive astrocyte synchronization advances neuronal coupling in slow wave activity in vivo.

机构信息

Institute of Organic Chemistry, Research Centre for Natural Sciences, Hungarian Academy of Sciences, Magyar tudósok körútja 2, 1117, Budapest, Hungary.

Institute of Experimental Medicine, Hungarian Academy of Sciences, Szigony 43, 1083, Budapest, Hungary.

出版信息

Sci Rep. 2017 Jul 20;7(1):6018. doi: 10.1038/s41598-017-06073-7.

Abstract

Slow wave activity (SWA) is a characteristic brain oscillation in sleep and quiet wakefulness. Although the cell types contributing to SWA genesis are not yet identified, the principal role of neurons in the emergence of this essential cognitive mechanism has not been questioned. To address the possibility of astrocytic involvement in SWA, we used a transgenic rat line expressing a calcium sensitive fluorescent protein in both astrocytes and interneurons and simultaneously imaged astrocytic and neuronal activity in vivo. Here we demonstrate, for the first time, that the astrocyte network display synchronized recurrent activity in vivo coupled to UP states measured by field recording and neuronal calcium imaging. Furthermore, we present evidence that extensive synchronization of the astrocytic network precedes the spatial build-up of neuronal synchronization. The earlier extensive recruitment of astrocytes in the synchronized activity is reinforced by the observation that neurons surrounded by active astrocytes are more likely to join SWA, suggesting causality. Further supporting this notion, we demonstrate that blockade of astrocytic gap junctional communication or inhibition of astrocytic Ca transients reduces the ratio of both astrocytes and neurons involved in SWA. These in vivo findings conclusively suggest a causal role of the astrocytic syncytium in SWA generation.

摘要

慢波活动(SWA)是睡眠和安静觉醒时的特征性脑振荡。尽管尚未确定促成 SWA 产生的细胞类型,但神经元在这一基本认知机制出现中的主要作用尚未受到质疑。为了研究星形胶质细胞是否参与 SWA,我们使用了一种转基因大鼠系,该系在星形胶质细胞和中间神经元中表达钙敏荧光蛋白,并在体内同时对星形胶质细胞和神经元活性进行成像。在这里,我们首次证明,星形胶质细胞网络在体内显示出与通过场记录和神经元钙成像测量的 UP 状态同步的反复活性。此外,我们提供的证据表明,星形胶质细胞网络的广泛同步发生在神经元同步性的空间建立之前。观察到被活性星形胶质细胞包围的神经元更有可能加入 SWA,这进一步证实了星形胶质细胞网络的早期广泛募集。这一观点进一步得到支持,我们证明阻断星形胶质细胞缝隙连接通讯或抑制星形胶质细胞 Ca 瞬变会降低参与 SWA 的星形胶质细胞和神经元的比例。这些体内发现明确表明星形胶质细胞合胞体在 SWA 产生中具有因果作用。

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