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皮质视觉运动处理网络中赫布可塑性的通路和方向特异性

Pathway and directional specificity of Hebbian plasticity in the cortical visual motion processing network.

作者信息

Bevilacqua Michele, Huxlin Krystel R, Hummel Friedhelm C, Raffin Estelle

机构信息

Defitech Chair in Clinical Neuroengineering, Neuro-X Institute (NRX) and Brain Mind Institute, EPFL, Geneva, Switzerland.

Defitech Chair in Clinical Neuroengineering, Neuro-X Institute (NRX) and Brain Mind Institute, Clinique Romande de Readaptation (CRR), EPFL Valais, Sion, Switzerland.

出版信息

iScience. 2023 Jun 7;26(7):107064. doi: 10.1016/j.isci.2023.107064. eCollection 2023 Jul 21.

Abstract

Cortico-cortical paired associative stimulation (ccPAS), which repeatedly pairs single-pulse transcranial magnetic stimulation (TMS) over two distant brain regions, is thought to modulate synaptic plasticity. We explored its spatial selectivity (pathway and direction specificity) and its nature (oscillatory signature and perceptual consequences) when applied along the ascending () and descending () motion discrimination pathway. We found unspecific connectivity increases in bottom-up inputs in the low gamma band, probably reflecting visual task exposure. A clear distinction in information transfer occurred in the re-entrant alpha signals, which were only modulated by Backward-ccPAS, and predictive of visual improvements in healthy participants. These results suggest a causal involvement of the re-entrant MT-to-V1 low-frequency inputs in motion discrimination and integration in healthy participants. Modulating re-entrant input activity could provide single-subject prediction scenarios for visual recovery. Visual recovery might indeed partly rely on these residual inputs projecting to spared V1 neurons.

摘要

皮质-皮质配对联想刺激(ccPAS)通过在两个遥远的脑区重复配对单脉冲经颅磁刺激(TMS),被认为可调节突触可塑性。我们探讨了沿上行()和下行()运动辨别通路应用时其空间选择性(通路和方向特异性)及其性质(振荡特征和感知后果)。我们发现,在低伽马波段的自下而上输入中,非特异性连接性增加,这可能反映了视觉任务暴露。在折返性阿尔法信号中出现了信息传递的明显差异,该信号仅由反向ccPAS调节,并可预测健康参与者的视觉改善。这些结果表明,折返性从MT到V1的低频输入在健康参与者的运动辨别和整合中存在因果关系。调节折返性输入活动可为视觉恢复提供单受试者预测方案。视觉恢复可能确实部分依赖于投射到 spared V1 神经元的这些残余输入。 (注:原文中括号处内容缺失,翻译时保留原样)

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/46b1/10319215/95858a0a0819/fx1.jpg

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