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Neocortical Network Activity In Vivo Is Generated through a Dynamic Balance of Excitation and Inhibition

机译:体内新皮质网络的活动是通过激发与抑制的动态平衡产生的

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摘要

The recurrent excitatory and inhibitory connections between and within layers of the cerebral cortex are fundamental to the operation of local cortical circuits. Models of cortical function often assume that recurrent excitation and inhibition are balanced, and we recently demonstrated that spontaneous network activity in vitro contains a precise balance of excitation and inhibition; however, the existence of a balance between excitation and inhibition in the intact and spontaneously active cerebral cortex has not been directly tested. We examined this hypothesis in the prefrontal cortex in vivo, during the slow (<1 Hz) oscillation in ketamine–xylazine-anesthetized ferrets. We measured persistent network activity (Up states) with extracellular multiple unit and local field potential recording, while simultaneously recording synaptic currents in nearby cells. We determined the reversal potential and conductance change over time during Up states and found that the body of Up state activity exhibited a steady reversal potential (−37 mV on average) for hundreds of milliseconds, even during substantial (21 nS on average) changes in membrane conductance. Furthermore, we found that both the initial and final segments of the Up state were characterized by significantly more depolarized reversal potentials and concomitant increases in excitatory conductance, compared with the stable middle portions of Up states. This ongoing temporal evolution between excitation and inhibition, which exhibits remarkable proportionality within and across neurons in active local networks, may allow for rapid transitions between relatively stable network states, permitting the modulation of neuronal responsiveness in a behaviorally relevant manner.
机译:大脑皮层各层之间和内部的反复兴奋性和抑制性连接是局部皮质回路操作的基础。皮层功能模型通常假定反复的激发和抑制是平衡的,最近我们证明了体外的自发网络活动包含了激发和抑制的精确平衡。然而,尚未直接测试完整和自发活动的大脑皮层中兴奋与抑制之间的平衡。我们在氯胺酮-甲苯噻嗪麻醉的雪貂缓慢振荡(<1 Hz)期间,在体内前额叶皮层中检查了这一假设。我们用细胞外多个单位和局部场电位记录来测量持续的网络活动(Up状态),同时在附近的细胞中记录突触电流。我们确定了Up状态期间的反向电势和电导随时间的变化,发现Up状态活动的主体在数百毫秒内表现出稳定的反向电势(平均-37 mV),即使在显着变化(平均21 nS)期间也是如此。膜电导。此外,我们发现,与Up状态的稳定中间部分相比,Up状态的初始和最终阶段都具有明显更多的去极化逆转电位和伴随的兴奋性电导增加的特征。这种在激发和抑制之间持续的时间演变,在活跃的本地网络中的神经元内和跨神经元表现出显着的比例关系,可以允许相对稳定的网络状态之间快速过渡,从而允许以行为相关的方式调节神经元反应性。

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