首页> 美国卫生研究院文献>The Journal of Neuroscience >Balanced Excitatory and Inhibitory Inputs to Cortical Neurons Decouple Firing Irregularity from Rate Modulations
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Balanced Excitatory and Inhibitory Inputs to Cortical Neurons Decouple Firing Irregularity from Rate Modulations

机译:大脑皮层神经元的平衡兴奋性和抑制性输入消除了速率调节对射击不规则性的影响

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摘要

In vivo cortical neurons are known to exhibit highly irregular spike patterns. Because the intervals between successive spikes fluctuate greatly, irregular neuronal firing makes it difficult to estimate instantaneous firing rates accurately. If, however, the irregularity of spike timing is decoupled from rate modulations, the estimate of firing rate can be improved. Here, we introduce a novel coding scheme to make the firing irregularity orthogonal to the firing rate in information representation. The scheme is valid if an interspike interval distribution can be well fitted by the gamma distribution and the firing irregularity is constant over time. We investigated in a computational model whether fluctuating external inputs may generate gamma process-like spike outputs, and whether the two quantities are actually decoupled. Whole-cell patch-clamp recordings of cortical neurons were performed to confirm the predictions of the model. The output spikes were well fitted by the gamma distribution. The firing irregularity remained approximately constant regardless of the firing rate when we injected a balanced input, in which excitatory and inhibitory synapses are activated concurrently while keeping their conductance ratio fixed. The degree of irregular firing depended on the effective reversal potential set by the balance between excitation and inhibition. In contrast, when we modulated conductances out of balance, the irregularity varied with the firing rate. These results indicate that the balanced input may improve the efficiency of neural coding by clamping the firing irregularity of cortical neurons. We demonstrate how this novel coding scheme facilitates stimulus decoding.
机译:已知体内皮质神经元表现出高度不规则的尖峰模式。由于连续峰值之间的间隔波动很大,因此不规则的神经元放电会导致难以准确估算瞬时放电率。但是,如果将尖峰定时的不规则性与速率调制分离开,则可以提高点火速率的估计值。在这里,我们介绍一种新颖的编码方案,使信息表示中的发射不规则性与发射速率正交。如果可以通过伽马分布很好地拟合尖峰间的时间间隔分布,并且发射不规则性随时间恒定,则该方案有效。我们在计算模型中调查了波动的外部输入是否会生成类似伽马过程的尖峰输出,以及这两个量是否实际解耦。进行了皮质神经元的全细胞膜片钳记录,以证实该模型的预测。输出尖峰通过伽马分布很好地拟合。当我们注入平衡的输入时,无论发射速率如何,发射不规则都大致保持恒定,其中兴奋性和抑制性突触同时激活,同时保持电导率固定。不规则点火的程度取决于激发和抑制之间的平衡所设定的有效反转电位。相反,当我们调节电导失衡时,不规则性随发射速率而变化。这些结果表明,平衡输入可以通过限制皮质神经元的放电不规则性来提高神经编码的效率。我们演示了这种新颖的编码方案如何促进激励解码。

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