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GABAergic Neurons in Ferret Visual Cortex Participate in Functionally Specific Networks.雪貂视觉皮层中的γ-氨基丁酸能神经元参与功能特异性网络。
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Cellular resolution circuit mapping with temporal-focused excitation of soma-targeted channelrhodopsin.利用针对胞体靶向的通道视紫红质的时聚焦激发进行细胞分辨率电路映射。
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A Computational Model of Innate Directional Selectivity Refined by Visual Experience.一种由视觉经验优化的先天性方向选择性计算模型。
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The stabilized supralinear network: a unifying circuit motif underlying multi-input integration in sensory cortex.稳定超线性网络:感觉皮层多输入整合的统一电路基元。
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The development of cortical circuits for motion discrimination.运动辨别皮质回路的发展。
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Inhibition facilitates direction selectivity in a noisy cortical environment.在嘈杂的皮质环境中,抑制作用有助于方向选择性。
J Comput Neurosci. 2015 Apr;38(2):235-48. doi: 10.1007/s10827-014-0538-0. Epub 2014 Nov 18.
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A proto-architecture for innate directionally selective visual maps.一种用于先天性方向选择性视觉图谱的原始架构。
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9
Cannabinoid-dependent potentiation of inhibition at eye opening in mouse V1.在睁眼时,大麻素依赖性增强了小鼠 V1 中的抑制作用。
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10
Emerging feed-forward inhibition allows the robust formation of direction selectivity in the developing ferret visual cortex.新兴的前馈抑制允许在发育中的雪貂视觉皮层中形成稳健的方向选择性。
J Neurophysiol. 2014 Jun 1;111(11):2355-73. doi: 10.1152/jn.00891.2013. Epub 2014 Mar 5.

选择性柱的经验依赖性发育和反应稀疏化的皮质放大模型。

Cortical amplification models of experience-dependent development of selective columns and response sparsification.

作者信息

Christie Ian K, Miller Paul, Van Hooser Stephen D

机构信息

Department of Biology, Brandeis University, Waltham, Massachusetts.

Volen National Center for Complex Systems, Brandeis University, Waltham, Massachusetts; and.

出版信息

J Neurophysiol. 2017 Aug 1;118(2):874-893. doi: 10.1152/jn.00177.2017. Epub 2017 May 17.

DOI:10.1152/jn.00177.2017
PMID:28515285
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5539461/
Abstract

The development of direction-selective cortical columns requires visual experience, but the neural circuits and plasticity mechanisms that are responsible for this developmental transition are unknown. To gain insight into the mechanisms that could underlie experience-dependent increases in selectivity, we explored families of cortical amplifier models that enhance weakly biased feedforward signals. Here we focused exclusively on possible contributions of cortico-cortical connections and took feedforward input to be constant. We modeled pairs of interconnected columns that received equal and oppositely biased inputs. In a single-element model of cortical columns, we found two ways that cortical columns could receive biased feedforward input and exhibit strong but unselective responses to stimuli: ) within-column recurrent excitatory connections could be strong enough to amplify both strong and weak feedforward input, or ) columns that received differently biased inputs could have strong excitatory cross-connections that destroy selectivity. A Hebbian plasticity rule combined with simulated experience with stimuli weakened these strong cross-connections across cortical columns, allowing the individual columns to respond selectively to their biased inputs. In a model that included both excitatory and inhibitory neurons in each column, an additional means of obtaining selectivity through the cortical circuit was uncovered: cross-column suppression of inhibition-stabilized networks. When each column operated as an inhibition-stabilized network, cross-column excitation onto inhibitory neurons forced competition between the columns but in a manner that did not involve strong null-direction inhibition, consistent with experimental measurements of direction selectivity in visual cortex. Experimental predictions of these possible contributions of cortical circuits are discussed. Sensory circuits are initially constructed via mechanisms that are independent of sensory experience, but later refinement requires experience. We constructed models of how circuits that receive biased feedforward inputs can be initially unselective and then be modified by experience and plasticity so that the resulting circuit exhibits increased selectivity. We propose that neighboring cortical columns may initially exhibit coupling that is too strong for selectivity. Experience-dependent mechanisms decrease this coupling so individual columns can exhibit selectivity.

摘要

方向选择性皮质柱的发育需要视觉经验,但负责这种发育转变的神经回路和可塑性机制尚不清楚。为了深入了解可能导致依赖经验的选择性增加的机制,我们探索了增强弱偏向前馈信号的皮质放大器模型家族。在这里,我们专门关注皮质-皮质连接的可能贡献,并将前馈输入视为恒定。我们对接收相等且相反偏向输入的相互连接的柱对进行建模。在皮质柱的单元素模型中,我们发现皮质柱可以通过两种方式接收偏向的前馈输入并对刺激表现出强烈但非选择性的反应:(1)柱内循环兴奋性连接可能足够强,能够放大强和弱的前馈输入;或者(2)接收不同偏向输入的柱可能具有强大的兴奋性交叉连接,从而破坏选择性。一种赫布可塑性规则与模拟的刺激经验相结合,削弱了跨皮质柱的这些强大交叉连接,使各个柱能够对其偏向输入进行选择性反应。在一个每个柱都包含兴奋性和抑制性神经元的模型中,发现了另一种通过皮质回路获得选择性的方法:抑制稳定网络的跨柱抑制。当每个柱作为抑制稳定网络运行时,对抑制性神经元的跨柱兴奋迫使柱之间相互竞争,但方式不涉及强烈的零方向抑制,这与视觉皮层中方向选择性的实验测量结果一致。讨论了这些皮质回路可能贡献的实验预测。感觉回路最初是通过独立于感觉经验的机制构建的,但后来的细化需要经验。我们构建了模型,说明接收偏向前馈输入的回路如何最初是非选择性的,然后通过经验和可塑性进行修改,以使最终的回路表现出增加的选择性。我们提出,相邻的皮质柱最初可能表现出对选择性来说过强的耦合。依赖经验的机制减少了这种耦合,从而使各个柱能够表现出选择性。