Dynamics and sources of response variability and its coordination in visual cortex.

IF 1.1 4区 医学 Q4 NEUROSCIENCES Visual Neuroscience Pub Date : 2019-12-16 DOI:10.1017/S0952523819000117
Mahmood S Hoseini, Nathaniel C Wright, Ji Xia, Wesley Clawson, Woodrow Shew, Ralf Wessel
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引用次数: 4

Abstract

The trial-to-trial response variability in sensory cortices and the extent to which this variability can be coordinated among cortical units have strong implications for cortical signal processing. Yet, little is known about the relative contributions and dynamics of defined sources to the cortical response variability and their correlations across cortical units. To fill this knowledge gap, here we obtained and analyzed multisite local field potential (LFP) recordings from visual cortex of turtles in response to repeated naturalistic movie clips and decomposed cortical across-trial LFP response variability into three defined sources, namely, input, network, and local fluctuations. We found that input fluctuations dominate cortical response variability immediately following stimulus onset, whereas network fluctuations dominate the response variability in the steady state during continued visual stimulation. Concurrently, we found that the network fluctuations dominate the correlations of the variability during the ongoing and steady-state epochs, but not immediately following stimulus onset. Furthermore, simulations of various model networks indicated that (i) synaptic time constants, leading to oscillatory activity, and (ii) synaptic clustering and synaptic depression, leading to spatially constrained pockets of coherent activity, are both essential features of cortical circuits to mediate the observed relative contributions and dynamics of input, network, and local fluctuations to the cortical LFP response variability and their correlations across recording sites. In conclusion, these results show how a mélange of multiscale thalamocortical circuit features mediate a complex stimulus-modulated cortical activity that, when naively related to the visual stimulus alone, appears disguised as high and coordinated across-trial response variability.

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视觉皮层反应变异性的动态、来源及其协调。
感觉皮层的反应可变性以及这种可变性在皮层单位之间的协调程度对皮层信号处理具有重要意义。然而,对于皮层反应变异性的相对贡献和定义源的动态以及它们在皮层单位之间的相关性,我们知之甚少。为了填补这一知识空白,本研究获得并分析了海龟视觉皮层对重复自然电影片段的多位点局部场电位(LFP)记录,并将皮层跨试验LFP反应可变性分解为三个定义的来源,即输入、网络和局部波动。我们发现输入波动在刺激开始后立即主导皮层反应变异性,而网络波动在持续视觉刺激的稳定状态下主导反应变异性。同时,我们发现,在持续和稳态时期,网络波动主导了变异性的相关性,但在刺激开始后不是立即。此外,各种模型网络的模拟表明,(i)突触时间常数导致振荡活动,(ii)突触聚类和突触抑制导致空间受限的相干活动,都是皮层回路的基本特征,可以调节输入、网络和局部波动对皮层LFP响应变异性的相对贡献和动态,以及它们在记录位点之间的相关性。综上所述,这些结果显示了多尺度丘脑皮层回路特征是如何介导复杂的刺激调节的皮层活动的,当单纯地与视觉刺激相关时,这种活动似乎被伪装成高度协调的跨试验反应变异性。
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来源期刊
Visual Neuroscience
Visual Neuroscience 医学-神经科学
CiteScore
2.20
自引率
5.30%
发文量
8
审稿时长
>12 weeks
期刊介绍: Visual Neuroscience is an international journal devoted to the publication of experimental and theoretical research on biological mechanisms of vision. A major goal of publication is to bring together in one journal a broad range of studies that reflect the diversity and originality of all aspects of neuroscience research relating to the visual system. Contributions may address molecular, cellular or systems-level processes in either vertebrate or invertebrate species. The journal publishes work based on a wide range of technical approaches, including molecular genetics, anatomy, physiology, psychophysics and imaging, and utilizing comparative, developmental, theoretical or computational approaches to understand the biology of vision and visuo-motor control. The journal also publishes research seeking to understand disorders of the visual system and strategies for restoring vision. Studies based exclusively on clinical, psychophysiological or behavioral data are welcomed, provided that they address questions concerning neural mechanisms of vision or provide insight into visual dysfunction.
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