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Spatiotemporal Patterns of an Evoked Network Oscillation in Neocortical Slices: Coupled Local Oscillators

机译:在新皮层切片中诱发网络振荡的时空模式:耦合的本地振荡器。

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摘要

We have discovered an evoked network oscillation in rat neocortical slices and have examined its spatiotemporal patterns with voltage sensitive dye imaging. The slices (visual and auditory cortices) were prepared in a medium of low calcium, high magnesium and with sodium replaced by choline in order to reduce the excito-toxicity and sodium loading. After slicing, the choline was washed out while normal calcium, magnesium and sodium concentrations were restored. The oscillation was evoked by a single electrical shock to slices bathed in normal artificial cerebral spinal fluid (ACSF). The oscillation was organized as an all-or-none epoch containing 4 to 13 cycles at a central frequency around 25 Hz. The activity can be reversibly blocked by CNQX, APV and atropine, but not by bicuculline, indicating poly-synaptic excitatory mechanisms. Voltage sensitive dye imaging showed high amplitude oscillation signals in superficial and middle cortical layers. Spatiotemporally, the oscillations were organized as waves, propagating horizontally along cortical laminar. Each oscillation cycle was associated with one wave propagating in space. The waveforms were often different at different locations (e.g., extra cycles), suggesting the co-existence of multiple local oscillators. For different cycles, the waves often initiated at different locations, suggesting that local oscillators are competing to initiate each oscillation cycle. Overall our results suggest that this cortical network oscillation is organized at two levels: locally, oscillating neurons are tightly coupled to form local oscillators, and globally the coupling between local oscillators is weak, allowing abrupt spatial phase lags and propagating waves with multiple initiation sites.
机译:我们发现了大鼠新皮质切片中诱发的网络振荡,并用电压敏感染料成像检查了其时空模式。在低钙,高镁和钠被胆碱替代的培养基中制备切片(视觉和听觉皮层),以减少兴奋性毒性和钠负荷。切片后,将胆碱洗净,同时恢复正常的钙,镁和钠浓度。一次电击激起沐浴在正常人工脑脊髓液(ACSF)中的切片的振荡。振荡组织为一个全周期或全周期,在25 Hz左右的中心频率下包含4到13个周期。该活性可以被CNQX,APV和阿托品可逆地阻断,但不能被双小分子阻断,这表明了多突触的兴奋机制。电压敏感染料成像在表层和中层皮质中显示出高振幅振荡信号。时空上,振荡组织成波浪,沿皮质层流水平传播。每个振荡周期与在空间中传播的一个波有关。波形在不同的位置(例如,额外的周期)通常是不同的,这表明多个本地振荡器并存。对于不同的周期,电波通常在不同的位置启动,这表明本地振荡器正在竞争以启动每个振荡周期。总体而言,我们的研究结果表明,这种皮质网络的振荡分为两个层次:局部振荡的神经元紧密耦合以形成局部振荡器,局部振荡器之间的整体耦合较弱,从而允许空间相位滞后和具有多个起始位点的传播波。

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