首页> 外文期刊>PLoS Computational Biology >Activation of Parallel Fiber Feedback by Spatially Diffuse Stimuli Reduces Signal and Noise Correlations via Independent Mechanisms in a Cerebellum-Like Structure
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Activation of Parallel Fiber Feedback by Spatially Diffuse Stimuli Reduces Signal and Noise Correlations via Independent Mechanisms in a Cerebellum-Like Structure

机译:通过空间扩散刺激激活并行光纤反馈可通过小脑样结构中的独立机制降低信号和噪声相关性。

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Correlations between the activities of neighboring neurons are observed ubiquitously across systems and species and are dynamically regulated by several factors such as the stimulus' spatiotemporal extent as well as by the brain's internal state. Using the electrosensory system of gymnotiform weakly electric fish, we recorded the activities of pyramidal cell pairs within the electrosensory lateral line lobe (ELL) under spatially localized and diffuse stimulation. We found that both signal and noise correlations were markedly reduced (>40%) under the latter stimulation. Through a network model incorporating key anatomical features of the ELL, we reveal how activation of diffuse parallel fiber feedback from granule cells by spatially diffuse stimulation can explain both the reduction in signal as well as the reduction in noise correlations seen experimentally through independent mechanisms. First, we show that burst-timing dependent plasticity, which leads to a negative image of the stimulus and thereby reduces single neuron responses, decreases signal but not noise correlations. Second, we show trial-to-trial variability in the responses of single granule cells to sensory input reduces noise but not signal correlations. Thus, our model predicts that the same feedback pathway can simultaneously reduce both signal and noise correlations through independent mechanisms. To test this prediction experimentally, we pharmacologically inactivated parallel fiber feedback onto ELL pyramidal cells. In agreement with modeling predictions, we found that inactivation increased both signal and noise correlations but that there was no significant relationship between magnitude of the increase in signal correlations and the magnitude of the increase in noise correlations. The mechanisms reported in this study are expected to be generally applicable to the cerebellum as well as other cerebellum-like structures. We further discuss the implications of such decorrelation on the neural coding strategies used by the electrosensory and by other systems to process natural stimuli.
机译:在整个系统和物种中普遍观察到相邻神经元活动之间的相关性,并受多种因素(例如刺激的时空范围以及大脑的内部状态)动态调节。使用裸not形弱电鱼的电感应系统,我们记录了在空间局部和扩散刺激下电感应侧线叶(ELL)中锥体细胞对的活动。我们发现,在后一种刺激下,信号和噪声的相关性均显着降低(> 40%)。通过包含ELL关键解剖特征的网络模型,我们揭示了如何通过空间弥散刺激激活来自颗粒细胞的弥散平行纤维反馈,从而可以解释信号的减少以及通过独立机制实验观察到的噪声相关性的减少。首先,我们证明了与突发时序有关的可塑性,它导致了刺激的负像,从而减少了单个神经元的反应,减少了信号,但没有降低噪音的相关性。其次,我们显示出单个颗粒细胞对感觉输入的反应中的试验间差异可以减少噪声,但不能降低信号相关性。因此,我们的模型预测,相同的反馈路径可以通过独立的机制同时降低信号和噪声的相关性。为了通过实验测试该预测,我们在药理学上使平行纤维反馈失活到ELL锥体细胞上。与建模预测一致,我们发现灭活增加了信号和噪声的相关性,但是信号相关性的增加幅度和噪声相关性的增加幅度之间没有显着的关系。预期该研究中报道的机制普遍适用于小脑以及其他小脑样结构。我们进一步讨论了这种去相关对电传感和其他系统处理自然刺激所使用的神经编码策略的影响。

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