Chever Oana, Lee Chun-Yao, Rouach Nathalie
Neuroglial Interactions in Cerebral Physiopathology, Center for Interdisciplinary Research in Biology, Collège de France, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7241, Institut National de la Santé et de la Recherche Médicale U1050, 75005 Paris, France.
Neuroglial Interactions in Cerebral Physiopathology, Center for Interdisciplinary Research in Biology, Collège de France, Centre National de la Recherche Scientifique, Unité Mixte de Recherche 7241, Institut National de la Santé et de la Recherche Médicale U1050, 75005 Paris, France
J Neurosci. 2014 Aug 20;34(34):11228-32. doi: 10.1523/JNEUROSCI.0015-14.2014.
Fast exchange of extracellular signals between neurons and astrocytes is crucial for synaptic function. Over the last few decades, different pathways of astroglial release of neuroactive substances have been proposed to modulate neurotransmission. However, their involvement in physiological conditions is highly debated. Connexins, the gap junction forming proteins, are highly expressed in astrocytes and have recently been shown to scale synaptic transmission and plasticity. Interestingly, in addition to gap junction channels, the most abundant connexin (Cx) in astrocytes, Cx43, also forms hemichannels. While such channels are mostly active in pathological conditions, they have recently been shown to regulate cognitive function. However, whether astroglial Cx43 hemichannels are active in resting conditions and regulate basal synaptic transmission is unknown. Here we show that in basal conditions Cx43 forms functional hemichannels in astrocytes from mouse hippocampal slices. We furthermore demonstrate that the activity of astroglial Cx43 hemichannels in resting states regulates basal excitatory synaptic transmission of hippocampal CA1 pyramidal cells through ATP signaling. These data reveal Cx43 hemichannels as a novel astroglial release pathway at play in basal conditions, which tunes the moment-to-moment glutamatergic synaptic transmission.
神经元与星形胶质细胞之间细胞外信号的快速交换对于突触功能至关重要。在过去几十年中,人们提出了星形胶质细胞释放神经活性物质的不同途径来调节神经传递。然而,它们在生理条件下的作用存在很大争议。连接蛋白是形成间隙连接的蛋白质,在星形胶质细胞中高度表达,最近已被证明可调节突触传递和可塑性。有趣的是,除了间隙连接通道外,星形胶质细胞中最丰富的连接蛋白(Cx),即Cx43,也形成半通道。虽然这些通道大多在病理条件下活跃,但最近已被证明可调节认知功能。然而,星形胶质细胞Cx43半通道在静息条件下是否活跃并调节基础突触传递尚不清楚。在这里,我们表明在基础条件下,Cx43在小鼠海马切片的星形胶质细胞中形成功能性半通道。我们进一步证明,静息状态下星形胶质细胞Cx43半通道的活性通过ATP信号调节海马CA1锥体细胞的基础兴奋性突触传递。这些数据揭示了Cx43半通道是基础条件下起作用的一种新的星形胶质细胞释放途径,它可调节瞬间的谷氨酸能突触传递。