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Hippocampal CA1 Circuitry Dynamically Gates Direct Cortical Inputs Preferentially at Theta Frequencies

机译:海马CA1电路优先以Theta频率动态门控直接皮质输入

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摘要

Hippocampal CA1 pyramidal neurons receive intrahippocampal and extrahipppocampal inputs during theta cycle, whose relative timing and magnitude regulate the probability of CA1 pyramidal cell spiking. Extrahippocampal inputs, giving rise to the primary theta dipole in CA1 stratum lacunosum moleculare, are conveyed by the temporoammonic pathway. The temporoammonic pathway impinging onto the CA1 distal apical dendritic tuft is the most electrotonically distant from the perisomatic region yet is critical in regulating CA1 place cell activity during theta cycles. How does local hippocampal circuitry regulate the integration of this essential, but electrotonically distant, input within the theta period? Using whole-cell somatic recording and voltage-sensitive dye imaging with simultaneous dendritic recording of CA1 pyramidal cell responses, we demonstrate that temporoammonic EPSPs are normally compartmentalized to the apical dendritic tuft by feedforward inhibition. However, when this input is preceded at a one-half theta cycle interval by proximally targeted Schaffer collateral activity, temporoammonic EPSPs propagate to the soma through a joint, codependent mechanism involving activation of Schaffer-specific NMDA receptors and presynaptic inhibition of GABAergic terminals. These afferent interactions, tuned for synaptic inputs arriving one-half theta interval apart, are in turn modulated by feedback inhibition initiated via axon collaterals of pyramidal cells. Therefore, CA1 circuit integration of excitatory inputs endows the CA1 principal cell with a novel property: the ability to function as a temporally specific “AND” gate that provides for sequence-dependent readout of distal inputs.
机译:海马CA1锥体神经元在theta周期内接受海马内和海马外输入,它们的相对时间和大小调节着CA1锥体细胞突增的可能性。海马海马输入通过颞氨途径传递,导致CA1腔层分子中的初级θ偶极子发生。撞击到CA1远端根尖状树突簇的颞氨通道与周边区域的距离最大,但在调节theta周期中CA1位置细胞的活性方面至关重要。在theta周期内,局部海马电路如何调节这种必不可少的但电声远的输入的整合?使用全细胞体细胞记录和电压敏感染料成像与CA1锥体细胞反应的同时树突状记录,我们证明,通过前馈抑制,颞腺EPSP通常分隔到顶端树突状簇。但是,当此输入以近端靶向的Schaffer侧支活动在一个theta周期间隔的一半开始时,临时氨性EPSP通过关节的共同依赖性机制传播到躯体,该机制涉及Schaffer特异性NMDA受体的激活和GABA能末梢的突触前抑制。这些传入的相互作用,针对突触输入进行了调整,间隔达到了一半的theta间隔,进而通过经由锥体细胞轴突侧支引发的反馈抑制来调节。因此,兴奋性输入的CA1电路集成赋予CA1主电池一种新颖的特性:能够作为时间特定的“与”门起作用,从而提供了与序列有关的远侧输入读数。

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