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丘脑皮质光谱传递依赖于平衡的输入强度。

Thalamocortical Spectral Transmission Relies on Balanced Input Strengths.

机构信息

The Biorobotics Institute, Department of Excellence in Robotics and AI, Sant'Anna School of Advanced Studies, Viale Rinaldo Piaggio 34, 56025, Pontedera, IT, Italy.

Dipartimento di Fisica "E. Fermi", Largo Bruno Pontecorvo 3, 56127, Pisa, IT, Italy.

出版信息

Brain Topogr. 2022 Jan;35(1):4-18. doi: 10.1007/s10548-021-00851-3. Epub 2021 Jun 4.

Abstract

The thalamus is a key element of sensory transmission in the brain, as it gates and selects sensory streams through a modulation of its internal activity. A preponderant role in these functions is played by its internal activity in the alpha range ([8-14] Hz), but the mechanism underlying this process is not completely understood. In particular, how do thalamocortical connections convey stimulus driven information selectively over the back-ground of thalamic internally generated activity? Here we investigate this issue with a spiking network model of feedforward connectivity between thalamus and primary sensory cortex reproducing the local field potential of both areas. We found that in a feedforward network, thalamic oscillations in the alpha range do not entrain cortical activity for two reasons: (i) alpha range oscillations are weaker in neurons projecting to the cortex, (ii) the gamma resonance dynamics of cortical networks hampers oscillations over the 10-20 Hz range thus weakening alpha range oscillations. This latter mechanism depends on the balance of the strength of thalamocortical connections toward excitatory and inhibitory neurons in the cortex. Our results highlight the relevance of corticothalamic feedback to sustain alpha range oscillations and pave the way toward an integrated understanding of the sensory streams traveling between the periphery and the cortex.

摘要

丘脑是大脑中感觉传递的关键要素,因为它通过调节内部活动来门控和选择感觉流。其内部活动在 alpha 频段 ([8-14] Hz) 中起着主导作用,但这一过程的机制尚不完全清楚。特别是,丘脑皮质连接如何在丘脑内部产生的活动背景下选择性地传递刺激驱动的信息?在这里,我们使用丘脑和初级感觉皮层之间前馈连接的尖峰网络模型来研究这个问题,该模型再现了这两个区域的局部场电位。我们发现,在一个前馈网络中,alpha 频段的丘脑振荡不会使皮质活动同步化,原因有二:(i)投射到皮质的神经元中的 alpha 频段振荡较弱,(ii)皮质网络的 gamma 共振动力学阻碍了 10-20 Hz 范围内的振荡,从而削弱了 alpha 频段振荡。后一种机制取决于皮质丘脑连接对皮质中兴奋性和抑制性神经元的强度平衡。我们的结果强调了皮质反馈对维持 alpha 频段振荡的重要性,并为理解在周围和皮质之间传递的感觉流提供了一种综合的理解方式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1acd/8813837/1e38af2791f6/10548_2021_851_Fig1_HTML.jpg

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