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细胞适应促进感觉通路中稀疏而可靠的编码。

Cellular adaptation facilitates sparse and reliable coding in sensory pathways.

机构信息

Neuroinformatics & Theoretical Neuroscience, Freie Universität Berlin, and Bernstein Center for Computational Neuroscience Berlin, Berlin, Germany.

出版信息

PLoS Comput Biol. 2013;9(10):e1003251. doi: 10.1371/journal.pcbi.1003251. Epub 2013 Oct 3.

Abstract

Most neurons in peripheral sensory pathways initially respond vigorously when a preferred stimulus is presented, but adapt as stimulation continues. It is unclear how this phenomenon affects stimulus coding in the later stages of sensory processing. Here, we show that a temporally sparse and reliable stimulus representation develops naturally in sequential stages of a sensory network with adapting neurons. As a modeling framework we employ a mean-field approach together with an adaptive population density treatment, accompanied by numerical simulations of spiking neural networks. We find that cellular adaptation plays a critical role in the dynamic reduction of the trial-by-trial variability of cortical spike responses by transiently suppressing self-generated fast fluctuations in the cortical balanced network. This provides an explanation for a widespread cortical phenomenon by a simple mechanism. We further show that in the insect olfactory system cellular adaptation is sufficient to explain the emergence of the temporally sparse and reliable stimulus representation in the mushroom body. Our results reveal a generic, biophysically plausible mechanism that can explain the emergence of a temporally sparse and reliable stimulus representation within a sequential processing architecture.

摘要

外周感觉通路中的大多数神经元在呈现首选刺激时最初会强烈反应,但随着刺激的持续,它们会适应。目前尚不清楚这种现象如何影响感觉处理后期阶段的刺激编码。在这里,我们表明,在具有适应神经元的感觉网络的连续阶段中,自然会出现时间稀疏且可靠的刺激表示。作为建模框架,我们采用了平均场方法和自适应群体密度处理方法,并对尖峰神经网络进行了数值模拟。我们发现,细胞适应通过暂时抑制皮质平衡网络中自我产生的快速波动,在皮质尖峰反应的逐次试验变异性的动态降低中起着关键作用。这通过简单的机制解释了一种广泛的皮质现象。我们进一步表明,在昆虫嗅觉系统中,细胞适应足以解释蘑菇体中时间稀疏且可靠的刺激表示的出现。我们的结果揭示了一种通用的、具有生物物理可能性的机制,可以解释在顺序处理架构中出现时间稀疏且可靠的刺激表示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b17/3789775/c5544034c4ea/pcbi.1003251.g001.jpg

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