神经元通讯的同步性:一种能量效率方案

S. Ghavami, V. Rahmati, F. Lahouti, L. Schwabe
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引用次数: 4

摘要

我们感兴趣的是用第一性原理来理解注意过程的神经关联。在这里,我们应用了最近开发的第一原理方法,该方法使用以每焦耳比特为单位的传输信息来量化信息传输的能量效率,ISI代码可以通过突触前种群的同步进行调制。我们模拟了一个基于单室电导的模型神经元,由突触前群体的兴奋性和抑制性峰值驱动,其中突触前兴奋性群体的速率和同步性可能独立于平均速率而变化。我们发现,对于固定的输入率,突触后神经元的ISI分布取决于同步水平,并且在同步水平小于50%时可以用Gamma分布很好地描述。对于同步水平在15%到50%之间(由于技术原因受到限制),我们计算了使每单位能量的互信息最大化的最佳输入分布。这种最优分布表明,正如实验报道的那样,在注意力要求条件下,同步水平的提高降低了输入分布模式和突触后神经元的兴奋性阈值。这有助于更高效的神经元交流。
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Synchrony in neuronal communication: An energy efficient scheme
We are interested in understanding the neural correlates of attentional processes using first principles. Here we apply a recently developed first principles approach that uses transmitted information in bits per joule to quantify the energy efficiency of information transmission for an inter-spike-interval (ISI) code that can be modulated by means of the synchrony in the presynaptic population. We simulate a single compartment conductance-based model neuron driven by excitatory and inhibitory spikes from a presynaptic population, where the rate and synchrony in the presynaptic excitatory population may vary independently from the average rate. We find that for a fixed input rate, the ISI distribution of the post synaptic neuron depends on the level of synchrony and is well-described by a Gamma distribution for synchrony levels less than 50%. For levels of synchrony between 15% and 50% (restricted for technical reasons), we compute the optimum input distribution that maximizes the mutual information per unit energy. This optimum distribution shows that an increased level of synchrony, as it has been reported experimentally in attention-demanding conditions, reduces the mode of the input distribution and the excitability threshold of post synaptic neuron. This facilitates a more energy efficient neuronal communication.
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