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较弱的前馈抑制导致小鼠与大鼠桶状皮层中丘脑皮质反应转换不明显。

Weaker feedforward inhibition accounts for less pronounced thalamocortical response transformation in mouse vs. rat barrels.

机构信息

Department of Neurobiology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania.

出版信息

J Neurophysiol. 2013 Nov;110(10):2378-92. doi: 10.1152/jn.00574.2012. Epub 2013 Aug 21.

Abstract

Feedforward inhibition is a common motif of thalamocortical circuits. Strong engagement of inhibitory neurons by thalamic inputs enhances response differentials between preferred and nonpreferred stimuli. In rat whisker-barrel cortex, robustly driven inhibitory barrel neurons establish a brief epoch during which synchronous or near-synchronous thalamic firing produces larger responses to preferred stimuli, such as high-velocity deflections of the principal whisker in a preferred direction. Present experiments in mice show that barrel neuron responses to preferred vs. nonpreferred stimuli differ less than in rats. In addition, fast-spike units, thought to be inhibitory barrel neurons, fire less robustly to whisker stimuli in mice than in rats. Analyses of real and simulated data indicate that mouse barrel circuitry integrates thalamic inputs over a broad temporal window, and that, as a consequence, responses of barrel neurons are largely similar to those of thalamic neurons. Results are consistent with weaker feedforward inhibition in mouse barrels. Differences in thalamocortical circuitry between mice and rats may reflect mechanical properties of the whiskers themselves.

摘要

前馈抑制是丘脑皮质回路的常见模式。强烈的丘脑输入对抑制性神经元的作用增强了对优先和非优先刺激的反应差异。在大鼠胡须-桶状皮层中,受强烈驱动的抑制性桶状神经元在短暂的时期内建立了同步或近乎同步的丘脑放电,从而对优先刺激(例如主胡须在优先方向上的高速偏斜)产生更大的反应。目前在小鼠中的实验表明,与大鼠相比,桶状神经元对优先和非优先刺激的反应差异较小。此外,快速尖峰单位,被认为是抑制性桶状神经元,在小鼠中对胡须刺激的反应不如大鼠强烈。对真实和模拟数据的分析表明,小鼠桶状回路在广泛的时间窗口内整合丘脑输入,因此,桶状神经元的反应在很大程度上与丘脑神经元的反应相似。结果与小鼠桶状中较弱的前馈抑制一致。小鼠和大鼠之间的丘脑皮质回路差异可能反映了胡须本身的机械特性。

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Behavioral study of whisker-mediated vibration sensation in rats.大鼠胡须介导的振动感觉行为研究。
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Synchrony in sensation.感觉同步。
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