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A theory about a role of the hyper direct pathway in pattern expression by the Basal Ganglia

机译:关于超直接通路在基底神经节表达模式中的作用的理论

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The Basal Ganglia (BG) are a group of nuclei, in the brain of mammalians and other vertebrates, strongly connected with the cerebral cortex, thalamus and other brain areas. The BG are associated with several brain functions including learning and motor control. When there is cortical activation, there is a strong synchronization between BG and cortex, i.e. when a given task is being executed or in the case of Parkinson disease[1], [2]. If we consider the internal segment of the Globus Pallidus (GPi) there is synchronism between GPi-cortex at frequencies as low as 3Hz to as high as 85Hz [1], [3]. In the other hand, in a delta sleep or in an anesthetized case, a very low frequency correlation is observed (1–10 Hz), but no high frequency correlation between GPi-cortex [1], [2], [3]. It is unknown why this decorrelation happens. But It is agreement that when there is no pattern to select, like in delta sleep or with an anesthetized model, the BG network would maintain the GPi and cortex decorrelated at high frequencies. Many thalamus-BG and thalamus-BG-cortex loops are modulators of the BG activity. Particularly there exists an anatomic thalamus-BG loop, formed by GPi, intralaminar thalamic nuclei (IL) and Subthalamic Nucleus (STN) [4]. Using a computational model, based on an “Integrate and Fire” neural network, we analyzed the IL nucleus as a modulator of the so-called hyper direct pathway. Our results show that, in an anesthetic case, this thalamic path could be relevant to allow a high frequency decorrelated state between the GPi and cortex.
机译:基底神经节(BG)是哺乳动物和其他脊椎动物的大脑中的一组核,与大脑皮层,丘脑和其他大脑区域紧密相连。 BG与几种大脑功能相关,包括学习和运动控制。当皮层激活时,BG和皮层之间有很强的同步性,即在执行给定任务时或在帕金森病[1],[2]的情况下。如果考虑Globus Pallidus(GPi)的内部部分,则在低至3Hz至高至85Hz的频率下,GPi皮质之间存在同步[1],[3]。另一方面,在三角洲睡眠或麻醉的情况下,观察到非常低的频率相关性(1-10 Hz),但是在GPi-皮质[1],[2],[3]之间没有发现高频率相关性。为何发生这种去相关是未知的。但是,可以达成共识的是,当没有选择模式时(如在三角睡眠或麻醉模型中),BG网络将在高频下保持GPi和皮质去相关。许多丘脑-BG和丘脑-BG-皮质环是BG活性的调节剂。特别是存在由GPi,层内丘脑核(IL)和丘脑下核(STN)形成的解剖性丘脑BG环[4]。使用基于“ Integrate and Fire”神经网络的计算模型,我们分析了IL核作为所谓的超直接途径的调节剂。我们的结果表明,在麻醉情况下,这种丘脑路径可能与允许GPi和皮层之间的高频去相关状态有关。

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