Epilepsy Development and Cognition Group, Department of Neurological Sciences, University of Vermont, Larner College of Medicine, Burlington 05405, VT.
Epilepsy Development and Cognition Group, Department of Neurological Sciences, University of Vermont, Larner College of Medicine, Burlington 05405, VT
eNeuro. 2022 Apr 21;9(2). doi: 10.1523/ENEURO.0414-21.2022. Print 2022 Mar-Apr.
θ-Scale coordination of prelimbic medial prefrontal cortex (mPFC) local field potentials (LFPs) and its influence via direct or indirect projections to the ventral hippocampus (vHC) and dorsal hippocampus (dHC) during spatial learning remains poorly understood. We hypothesized that θ frequency coordination dynamics within and between the mPFC, dHC, and vHC would be predetermined by the level of connectivity rather than reflecting differing circuit throughput relationships depending on cognitive demands. Moreover, we hypothesized that coherence levels would not change during learning of a complex spatial avoidance task. Adult male rats were bilaterally implanted with EEG electrodes and LFPs recorded in each structure. Contrary to predictions, θ coherence averaged across "Early" or "Late" training sessions in the mPFC-HC, mPFC-mPFC, and HC-HC increased as a function of task learning. Coherence levels were also highest between the indirectly connected mPFC-dHC circuit, particularly during early training. Although mPFC postacquisition coherence remained higher with dHC than vHC, dynamic mPFC coherence patterns with both hippocampal poles across avoidance epochs were similar. In the 3 s before avoidance, a regional temporal sequence of transitory coherence peaks emerged between the mPFC-mPFC, the mPFC-HC, and then dHC-dHC. During this sequence, coherence within θ bandwidth fluctuated between epochs at distinct subfrequencies, suggesting frequency-specific roles for the propagation of task-relevant processing. On a second timescale, coherence frequency within and between the mPFC and hippocampal septotemporal axis change as a function of avoidance learning and cognitive demand. The results support a role for θ coherence subbandwidths, and specifically an 8- to 9-Hz mPFC θ signal, for generating and processing qualitatively different types of information in the organization of spatial avoidance behavior in the mPFC-HC circuit.
θ 频段协调前额皮质(mPFC)局部场电位(LFPs),以及通过直接或间接投射到腹侧海马体(vHC)和背侧海马体(dHC)对其的影响,在空间学习中仍知之甚少。我们假设,mPFC、dHC 和 vHC 内部和之间的θ 频段协调动力学将由连接水平预先决定,而不是反映根据认知需求的不同电路吞吐量关系。此外,我们假设,在复杂空间回避任务的学习过程中,相干水平不会发生变化。成年雄性大鼠双侧植入 EEG 电极并记录每个结构中的 LFPs。与预测相反,在 mPFC-HC、mPFC-mPFC 和 HC-HC 的“早期”或“晚期”训练期间,θ 相干性平均值随着任务学习而增加。相干性水平在间接连接的 mPFC-dHC 电路中也最高,特别是在早期训练期间。尽管 mPFC 习得后的相干性与 dHC 相比仍高于 vHC,但在回避期间,mPFC 与两个海马极之间的动态 mPFC 相干模式相似。在回避前 3 秒,mPFC-mPFC 之间出现了短暂相干峰值的区域时间序列,然后是 mPFC-HC 和 dHC-dHC。在此序列中,θ 带宽内的相干性在不同的子频带之间在不同的时期波动,这表明任务相关处理的传播具有频率特异性作用。在第二个时间尺度上,mPFC 和海马隔颞轴内和之间的相干频率随着回避学习和认知需求而变化。结果支持θ 相干子带宽的作用,特别是 8-9Hz 的 mPFC θ 信号,在 mPFC-HC 电路中生成和处理空间回避行为组织中不同类型的定性信息。