Ernst Strüngmann Institute (ESI) for Neuroscience in Cooperation with Max Planck Society, Frankfurt am Main 60528, Germany
Ernst Strüngmann Institute (ESI) for Neuroscience in Cooperation with Max Planck Society, Frankfurt am Main 60528, Germany.
J Neurosci. 2024 Mar 6;44(10):e1236232023. doi: 10.1523/JNEUROSCI.1236-23.2023.
Neural oscillations are associated with diverse computations in the mammalian brain. The waveform shape of oscillatory activity measured in the cortex relates to local physiology and can be informative about aberrant or dynamically changing states. However, how waveform shape differs across distant yet functionally and anatomically related cortical regions is largely unknown. In this study, we capitalize on simultaneous recordings of local field potentials (LFPs) in the auditory and frontal cortices of awake, male bats to examine, on a cycle-by-cycle basis, waveform shape differences across cortical regions. We find that waveform shape differs markedly in the fronto-auditory circuit even for temporally correlated rhythmic activity in comparable frequency ranges (i.e., in the delta and gamma bands) during spontaneous activity. In addition, we report consistent differences between areas in the variability of waveform shape across individual cycles. A conceptual model predicts higher spike-spike and spike-LFP correlations in regions with more asymmetric shapes, a phenomenon that was observed in the data: spike-spike and spike-LFP correlations were higher in the frontal cortex. The model suggests a relationship between waveform shape differences and differences in spike correlations across cortical areas. Altogether, these results indicate that oscillatory activity in the frontal and auditory cortex possesses distinct dynamics related to the anatomical and functional diversity of the fronto-auditory circuit.
神经振荡与哺乳动物大脑中的各种计算有关。在皮层中测量的振荡活动的波形形状与局部生理学有关,可以提供关于异常或动态变化状态的信息。然而,在功能和解剖上相关的皮质区域之间,波形形状如何存在差异,在很大程度上尚不清楚。在这项研究中,我们利用清醒雄性蝙蝠听觉和额叶皮层的局部场电位 (LFP) 的同步记录,来检查皮质区域之间的波形形状差异,逐周期进行检查。我们发现,即使在自发活动期间,在可比频率范围内(即在 delta 和 gamma 波段)存在时间上相关的节律性活动,在前额叶回路中,波形形状差异也非常明显。此外,我们报告了在单个周期内,波形形状的变异性在各个区域之间存在一致的差异。一个概念模型预测,具有更不对称形状的区域中,尖峰-尖峰和尖峰-LFP 的相关性更高,这一现象在数据中得到了观察:在前额叶皮层中,尖峰-尖峰和尖峰-LFP 的相关性更高。该模型表明,波形形状差异与皮质区域之间的尖峰相关性差异之间存在关系。总之,这些结果表明,额叶和听觉皮层中的振荡活动具有与前听觉回路的解剖和功能多样性相关的独特动态。