Kennedy Jack P, Zhou Yuchen, Qin Yu, Lovett Sarah D, Cooper Tara, Sheremet Alex, Burke Sara N, Maurer Andrew P
Department of Neuroscience, College of Medicine, McKnight Brain Institute, University of Florida, Gainesville, FL, United States.
Department of Psychiatry, School of Medicine, Yale University, New Haven, CT, United States.
Front Cell Neurosci. 2023 Jun 20;17:1144260. doi: 10.3389/fncel.2023.1144260. eCollection 2023.
Theta oscillations in the primary visual cortex (VC) have been observed during running tasks, but the mechanism behind their generation is not well understood. Some studies have suggested that theta in the VC is locally generated, while others have proposed that it is volume conducted from the hippocampus. The present study aimed to investigate the relationship between hippocampal and VC LFP dynamics. Analysis of power spectral density revealed that LFP in the VC was similar to that in the hippocampus, but with lower overall magnitude. As running velocity increased, both the power and frequency of theta and its harmonics increased in the VC, similarly to what is observed in the hippocampus. Current source density analysis triggered to theta did not identify distinct current sources and sinks in the VC, supporting the idea that theta in the VC is conducted from the adjacent hippocampus. Phase coupling between theta, its harmonics, and gamma is a notable feature in the hippocampus, particularly in the lacunosum moleculare. While some evidence of coupling between theta and its harmonics in the VC was found, bicoherence estimates did not reveal significant phase coupling between theta and gamma. Similar results were seen in the cross-region bicoherence analysis, where theta showed strong coupling with its harmonics with increasing velocity. Thus, theta oscillations observed in the VC during running tasks are likely due to volume conduction from the hippocampus.
在跑步任务期间,初级视觉皮层(VC)中观察到了θ振荡,但其产生背后的机制尚未得到充分理解。一些研究表明,VC中的θ振荡是局部产生的,而另一些研究则提出它是从海马体进行容积传导的。本研究旨在探讨海马体与VC局部场电位(LFP)动态之间的关系。功率谱密度分析显示,VC中的LFP与海马体中的相似,但总体幅度较低。随着跑步速度增加,VC中θ振荡及其谐波的功率和频率均增加,这与在海马体中观察到的情况类似。对θ振荡触发的电流源密度分析未在VC中识别出明显的电流源和电流汇,支持了VC中的θ振荡是从相邻海马体传导而来的观点。θ振荡及其谐波与γ振荡之间的相位耦合是海马体中的一个显著特征,特别是在分子层空洞区。虽然在VC中发现了一些θ振荡与其谐波之间耦合的证据,但双相干估计未揭示θ振荡与γ振荡之间存在显著的相位耦合。在跨区域双相干分析中也观察到了类似结果,即随着速度增加,θ振荡与其谐波表现出强耦合。因此,在跑步任务期间VC中观察到的θ振荡可能是由于海马体的容积传导所致。