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The Functional Consequences of Changes in the Strength and Duration of Synaptic Inputs to Oscillatory Neurons

机译:振荡神经元突触输入的强度和持续时间变化的功能后果

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摘要

We studied the effect of synaptic inputs of different amplitude and duration on neural oscillators by simulating synaptic conductance pulses in a bursting conductance-based pacemaker model and by injecting artificial synaptic conductance pulses into pyloric pacemaker neurons of the lobster stomatogastric ganglion using the dynamic clamp. In the model and the biological neuron, the change in burst period caused by inhibitory and excitatory inputs of increasing strength saturated, such that synaptic inputs above a certain strength all had the same effect on the firing pattern of the oscillatory neuron. In contrast, increasing the duration of the synaptic conductance pulses always led to changes in the burst period, indicating that neural oscillators are sensitive to changes in the duration of synaptic input but are not sensitive to changes in the strength of synaptic inputs above a certain conductance. This saturation of the response to progressively stronger synaptic inputs occurs not only in bursting neurons but also in tonically spiking neurons. We identified inward currents at hyperpolarized potentials as the cause of the saturation in the model neuron. Our findings imply that activity-dependent or modulator-induced changes in synaptic strength are not necessarily accompanied by changes in the functional impact of a synapse on the timing of postsynaptic spikes or bursts.
机译:我们通过模拟基于突发电导的起搏器模型中的突触电导脉冲并通过使用动态钳位将人造突触电导脉冲注入龙虾气孔胃神经节的幽门起搏器神经元中,研究了不同幅度和持续时间的突触输入对神经振荡器的影响。在模型和生物神经元中,由强度增加的抑制性输入和兴奋性输入引起的爆发周期变化饱和,因此高于某个强度的突触输入对振荡神经元的发射方式均具有相同的影响。相反,增加突触电导脉冲的持续时间总会导致猝发周期发生变化,这表明神经振荡器对突触输入持续时间的变化敏感,但对高于一定电导的突触输入强度的变化不敏感。 。对突触输入逐渐增强的响应的这种饱和不仅发生在爆发的神经元中,而且发生在尖峰的神经元中。我们确定了在超极化电位的内向电流是模型神经元饱和的原因。我们的发现表明,与活动有关或调节剂诱导的突触强度变化不一定伴随着突触对突触后突波或突波时间的功能影响的变化。

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