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Theory of optimal balance predicts and explains the amplitude and decay time of synaptic inhibition

机译:最佳平衡理论预测并解释突触抑制的幅度和衰减时间

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摘要

Synaptic inhibition counterbalances excitation, but it is not known what constitutes optimal inhibition. We previously proposed that perfect balance is achieved when the peak of an excitatory postsynaptic potential (EPSP) is exactly at spike threshold, so that the slightest variation in excitation determines whether a spike is generated. Using simulations, we show that the optimal inhibitory postsynaptic conductance (IPSG) increases in amplitude and decay rate as synaptic excitation increases from 1 to 800 Hz. As further proposed by theory, we show that optimal IPSG parameters can be learned through anti-Hebbian rules. Finally, we compare our theoretical optima to published experimental data from 21 types of neurons, in which rates of synaptic excitation and IPSG decay times vary by factors of about 100 (5–600 Hz) and 50 (1–50 ms), respectively. From an infinite range of possible decay times, theory predicted experimental decay times within less than a factor of 2. Across a distinct set of 15 types of neuron recorded in vivo, theory predicted the amplitude of synaptic inhibition within a factor of 1.7. Thus, the theory can explain biophysical quantities from first principles.
机译:突触抑制平衡了兴奋,但尚不清楚什么构成最佳抑制。我们先前提出,当兴奋性突触后电位(EPSP)的峰值恰好在尖峰阈值时,可以实现完美的平衡,因此,最小的激励变化可以确定是否产生尖峰。使用模拟,我们显示最佳的抑制性突触后电导(IPSG)幅度和衰减率随着突触激发从1增加到800 Hz而增加。正如理论所进一步提出的,我们表明可以通过反希伯来规则学习最佳的IPSG参数。最后,我们将理论最优值与已发表的来自21种神经元的实验数据进行了比较,其中神经元的突触兴奋和IPSG衰减时间分别变化约100(5-600 Hz)和50(1-50–ms)倍。从可能的衰减时间的无限范围内,理论预测实验衰减时间在小于2的因子之内。在体内记录的15种神经元的不同集合中,理论预测突触抑制的幅度在1.7的因子之内。因此,该理论可以从第一原理解释生物物理量。

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