首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Spectrotemporal processing differences between auditory cortical fast-spiking and regular-spiking neurons.
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Spectrotemporal processing differences between auditory cortical fast-spiking and regular-spiking neurons.

机译:听觉皮层快速加标和规则加标的神经元之间的光谱时处理差异。

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Excitatory pyramidal neurons and inhibitory interneurons constitute the main elements of cortical circuitry and have distinctive morphologic and electrophysiological properties. Here, we differentiate them by analyzing the time course of their action potentials (APs) and characterizing their receptive field properties in auditory cortex. Pyramidal neurons have longer APs and discharge as regular-spiking units (RSUs), whereas basket and chandelier cells, which are inhibitory interneurons, have shorter APs and are fast-spiking units (FSUs). To compare these neuronal classes, we stimulated cat primary auditory cortex neurons with a dynamic moving ripple stimulus and constructed single-unit spectrotemporal receptive fields (STRFs) and their associated nonlinearities. FSUs had shorter latencies, broader spectral tuning, greater stimulus specificity, and higher temporal precision than RSUs. The STRF structure of FSUs was more separable, suggesting more independence between spectral and temporal processing regimens. The nonlinearities associated with the two cell classes were indicative of higher feature selectivity for FSUs. These global functional differences between RSUs and FSUs suggest fundamental distinctions between putative excitatory and inhibitory interneurons that shape auditory cortical processing.
机译:兴奋性锥体神经元和抑制​​性中间神经元构成皮层回路的主要元素,并具有独特的形态和电生理特性。在这里,我们通过分析其动作电位(AP)的时程并表征其在听觉皮层中的感受野特性来区分它们。金字塔形神经元具有更长的AP和作为常规加标单元(RSU)放电,而作为抑制性中间神经元的篮子和枝形吊灯细胞具有更短的AP和快速加标单元(FSU)。为了比较这些神经元类别,我们用动态移动波纹刺激来刺激猫原发性听觉皮层神经元,并构建了单个光谱时空感受野(STRF)及其相关的非线性。与RSU相比,FSU具有更短的等待时间,更宽的频谱调整,更大的刺激特异性和更高的时间精度。 FSU的STRF结构更可分离,表明频谱和时间处理方案之间的独立性更高。与这两种细胞类型相关的非线性表明FSU具有更高的特征选择性。 RSU和FSU之间的这些全局功能差异表明,在塑造听觉皮层加工的假定兴奋性和抑制性中间神经元之间存在根本区别。

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