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首页> 外文期刊>Journal of Neurophysiology >Properties of precise firing synchrony between synaptically coupled cortical interneurons depend on their mode of coupling
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Properties of precise firing synchrony between synaptically coupled cortical interneurons depend on their mode of coupling

机译:突触耦合的皮层神经元之间精确激发同步的性质取决于其耦合方式

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Precise spike synchrony has been widely reported in the central nervous system, but its functional role in encoding, processing, and transmitting information is yet unresolved. Of particular interest is firing synchrony between inhibitory cortical interneurons, thought to drive various cortical rhythms such as gamma oscillations, the hallmark of cognitive states. Precise synchrony can arise between two interneurons connected electrically, through gap junctions, chemically, through fast inhibitory synapses, or dually, through both types of connections, but the properties of synchrony generated by these different modes of connectivity have never been compared in the same data set. In the present study we recorded in vitro from 152 homotypic pairs of two major subtypes of mouse neocortical interneurons: parvalbumin containing, fast-spiking (FS) interneurons and somatostatin-containing (SOM) interneurons. We tested firing synchrony when the two neurons were driven to fire by long, depolarizing current steps and used a novel synchrony index to quantify the strength of synchrony, its temporal precision, and its dependence on firing rate. We found that SOM-SOM synchrony, driven solely by electrical coupling, was less precise than FS-FS synchrony, driven by inhibitory or dual coupling. Unlike SOM-SOM synchrony, FS-FS synchrony was strongly firing rate dependent and was not evident at the prototypical 40-Hz gamma frequency. Computer simulations reproduced these differences in synchrony without assuming any differences in intrinsic properties, suggesting that the mode of coupling is more important than the interneuron subtype. Our results provide novel insights into the mechanisms and properties of interneuron synchrony and point out important caveats in current models of cortical oscillations.
机译:精确的尖峰同步已在中枢神经系统中广泛报道,但在编码,处理和传输信息中的功能作用尚未得到解决。特别令人感兴趣的是激发抑制性皮层神经元之间的同步,这种神经元被认为会驱动各种皮层节律,例如伽马振荡,这是认知状态的标志。可以通过间隙连接,化学方式,通过快速抑制突触或通过两种类型的连接方式进行双向电连接的两个中间神经元之间可能会出现精确的同步,但是从未在同一数据中比较过这些不同的连接方式所产生的同步性。组。在本研究中,我们从小鼠新皮质中间神经元的两种主要亚型的152对同型对中体外记录:含小白蛋白,快速加标(FS)中性神经元和含生长抑素(SOM)的中神经元。当两个神经元被长时间去极化的当前电流驱动激发时,我们测试了激发同步性,并使用一种新颖的同步指数来量化同步强度,其时间精度及其对激发速率的依赖性。我们发现,仅由电耦合驱动的SOM-SOM同步不如由抑制耦合或双重耦合驱动的FS-FS同步精确。与SOM-SOM同步不同,FS-FS同步强烈依赖于发射速率,并且在典型的40 Hz伽马频率下并不明显。计算机模拟以同步方式重现了这些差异,而没有假设其内在特性有任何差异,这表明耦合方式比中间神经元亚型更为重要。我们的研究结果提供了对中间神经元同步机制和性质的新颖见解,并指出了当前皮质振荡模型中的重要警告。

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