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Robustness variability phase dependence and longevity of individual synaptic input effects on spike timing during fluctuating synaptic backgrounds: A modeling study of globus pallidus neuron phase response properties

机译:波动突触背景期间峰值定时的个体突触输入效应的鲁棒性可变性相位依赖性和寿命:Globus pallidus neuron阶段反应性能的建模研究

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摘要

A neuron’s phase response curve (PRC) shows how inputs arriving at different times during the spike cycle differentially affect the timing of subsequent spikes. Using a full morphological model of a globus pallidus (GP) neuron, we previously demonstrated that dendritic conductances shape the PRC in a spike frequency dependent manner, suggesting different functional roles of perisomatic and distal dendritic synapses in the control of patterned network activity. In the present study we extend this analysis to examine the impact of physiologically realistic high conductance states on somatic and dendritic PRCs and the time course of spike train perturbations. First, we found that average somatic and dendritic PRCs preserved their shapes and spike frequency dependence when the model was driven by spatially-distributed, stochastic conductance inputs rather than tonic somatic current. However, responses to inputs during specific synaptic backgrounds often deviated substantially from the average PRC. Therefore, we analyzed the interactions of PRC stimuli with transient fluctuations in the synaptic background on a trial-by-trial basis. We found that the variability in responses to PRC stimuli and the incidence of stimulus-evoked added or skipped spikes were stimulus-phase-dependent and reflected the profile of the average PRC, suggesting commonality in the underlying mechanisms. Clear differences in the relation between the phase of input and variability of spike response between dendritic and somatic inputs indicate that theses regions generally represent distinct dynamical subsystems of synaptic integration with respect to influencing the stability of spike time attractors generated by the overall synaptic conductance.
机译:神经元的阶段响应曲线(PRC)示出了在尖峰周期期间到达不同时间的输入差异地影响后续尖峰的定时。使用Globus pallidus(GP)神经元的全形貌模型,我们之前证明树枝状导电以尖峰频率依赖性方式形状,表明在控制图案化网络活动中的横向和远端树突突触的不同功能作用。在本研究中,我们延长了这种分析,以检查生理学上现实的高电导状态对体细胞和树突扰动的影响和钉火车扰动的时间。首先,我们发现,当通过空间分布的随机电导输入而不是助剂体液电流时,平均体细胞和树突PRC保留了它们的形状和尖峰频率依赖性。然而,在特定突触背景期间对输入的反应通常偏离平均PRC。因此,我们在试验基础上分析了PRC刺激与突触背景中的瞬态波动的相互作用。我们发现,对中国刺激的反应和刺激诱发的尖峰的发生率是刺激相位依赖性的,并反映了平均PRC的概况,表明潜在机制的共性。在树突和体细胞输入之间的峰值响应的输入和变异性之间的关系的清晰差异表明,对于影响通过整个突触电导产生的尖峰时间吸引子的稳定性,这些区域通常代表突触积分的明显动态子系统。

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