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多样化的共激活神经元对刺激驱动和刺激无关的变量进行编码。

Diverse coactive neurons encode stimulus-driven and stimulus-independent variables.

机构信息

Department of Physics, Washington University in St. Louis, St. Louis, Missouri.

Neuroscience Research Institute, University of California, Santa Barbara, California.

出版信息

J Neurophysiol. 2020 Nov 1;124(5):1505-1517. doi: 10.1152/jn.00431.2020. Epub 2020 Sep 23.

Abstract

Both experimenter-controlled stimuli and stimulus-independent variables impact cortical neural activity. A major hurdle to understanding neural representation is distinguishing between qualitatively different causes of the fluctuating population activity. We applied an unsupervised low-rank tensor decomposition analysis to the recorded population activity in the visual cortex of awake mice in response to repeated presentations of naturalistic visual stimuli. We found that neurons covaried largely independently of individual neuron stimulus response reliability and thus encoded both stimulus-driven and stimulus-independent variables. Importantly, a neuron's response reliability and the neuronal coactivation patterns substantially reorganized for different external visual inputs. Analysis of recurrent balanced neural network models revealed that both the stimulus specificity and the mixed encoding of qualitatively different variables can arise from clustered external inputs. These results establish that coactive neurons with diverse response reliability mediate a mixed representation of stimulus-driven and stimulus-independent variables in the visual cortex. V1 neurons covary largely independently of individual neuron's response reliability. A single neuron's response reliability imposes only a weak constraint on its encoding capabilities. Visual stimulus instructs a neuron's reliability and coactivation pattern. Network models revealed using clustered external inputs.

摘要

实验者控制的刺激和刺激无关变量都会影响皮质神经活动。理解神经表示的一个主要障碍是区分波动的群体活动的不同性质的原因。我们将无监督的低秩张量分解分析应用于清醒小鼠视觉皮层中对自然视觉刺激的重复呈现的记录的群体活动。我们发现神经元的共变很大程度上独立于单个神经元的刺激反应可靠性,因此编码了刺激驱动和刺激无关的变量。重要的是,神经元的反应可靠性和神经元的共激活模式对于不同的外部视觉输入会发生实质性的重新组织。对递归平衡神经网络模型的分析表明,刺激特异性和不同性质变量的混合编码都可以来自聚类的外部输入。这些结果表明,具有不同反应可靠性的共激活神经元介导了视觉皮层中刺激驱动和刺激无关变量的混合表示。V1 神经元的共变很大程度上独立于单个神经元的反应可靠性。单个神经元的反应可靠性对其编码能力只有较弱的限制。视觉刺激指导神经元的可靠性和共激活模式。网络模型揭示了使用聚类的外部输入。

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