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首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >Fos expression and task-related neuronal activity in rat cerebral cortex after instrumental learning.
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Fos expression and task-related neuronal activity in rat cerebral cortex after instrumental learning.

机译:工具学习后大鼠大脑皮层的Fos表达和与任务相关的神经元活动。

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Learning has been shown to induce changes in neuronal gene expression and to produce development of task-specific neuronal activity. The connection between these two features of neuronal plasticity remains of a great interest. To address this issue we compared distribution of c-Fos expressing and task-related neurons in the rat cerebral cortex following instrumental learning of appetitive lever-press task. The number of Fos-positive neurons was determined immunohistochemically in the retrosplenial and the motor cortex of naive ("control" group), newly trained ("acquisition" group) and overtrained ("performance" group) animals. A significant activation of c-Fos expression was observed in the neurons of the retrosplenial but not motor cortex in the "acquisition" group rats, as compared with the "control" and "performance" groups. In accordance with this c-Fos expression difference, the retrosplenial cortex of the trained animals contained significantly more neurons with lever-press-related activity than the motor cortex. Therefore, the two examined cortical areas showed a parallel between experience-dependent induction of c-Fos and development of task-related neuronal activity. These data support a notion that learning-induced activation of c-Fos is associated with long-term neurophysiological changes produced by training.
机译:研究表明,学习可以诱导神经元基因表达的变化,并产生特定于任务的神经元活动。这两个神经元可塑性特征之间的联系仍然引起人们极大的兴趣。为了解决这个问题,我们比较了通过工具学习有竞争性的杠杆按压任务后,大鼠大脑皮层中c-Fos表达和任务相关神经元的分布。在幼稚的脾后和运动皮层(“对照组”),新训练的(“习性”组)和训练过度的(“表现”组)动物中,通过免疫组织化学方法确定了Fos阳性神经元的数量。与“对照组”和“表现”组相比,在“获得”组大鼠的脾后神经元中观察到了c-Fos表达的显着活化,而在运动皮层中未观察到。根据这种c-Fos表达差异,受过训练的动物的脾后皮质比运动皮质包含更多具有杠杆压入相关活性的神经元。因此,两个检查的皮质区域显示经验依赖的c-Fos诱导与任务相关的神经元活动的发展之间的平行。这些数据支持这样一种观念,即学习诱导的c-Fos激活与训练产生的长期神经生理学改变有关。

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