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皮层下抑制对桶状皮层感受野的影响。

Influence of subcortical inhibition on barrel cortex receptive fields.

作者信息

Hirata Akio, Aguilar Juan, Castro-Alamancos Manuel A

机构信息

Department of Neurobiology and Anatomy, Drexel University College of Medicine, 2900 Queen Ln., Philadelphia, PA 19129, USA.

出版信息

J Neurophysiol. 2009 Jul;102(1):437-50. doi: 10.1152/jn.00277.2009. Epub 2009 Apr 29.

Abstract

Influence of subcortical inhibition on barrel cortex receptive fields. By the time neural responses driven by vibrissa stimuli reach the barrel cortex, they have undergone significant spatial and temporal transformations within subcortical relays. A major regulator of these transformations is thought to be subcortical GABA-mediated inhibition, but the actual degree of this influence is unknown. We used disinhibition produced by GABA receptor antagonists to unmask the excitatory sensory responses that are normally suppressed by inhibition in the main subcortical sensory relays to barrel cortex; principal trigeminal (Pr5) and primary thalamic (VPM) nuclei. We found that, within subcortical relays, inhibition only slightly suppresses short-latency receptive field responses, but robustly suppresses long-latency center and surround receptive field responses. However, the long-latency subcortical effects of inhibition are mostly not reflected in the barrel cortex. The most robust effect of subcortical inhibition on barrel cortex responses is to transiently suppress the receptive field responses of high-frequency sensory stimuli. This transient adaptation caused by subcortical inhibition recovers within a few stimuli and gives way to a steady-state adaptation that is independent of subcortical inhibition.

摘要

皮层下抑制对桶状皮层感受野的影响。当触须刺激驱动的神经反应到达桶状皮层时,它们在皮层下中继区内经历了显著的空间和时间转换。这些转换的一个主要调节因子被认为是皮层下γ-氨基丁酸(GABA)介导的抑制作用,但这种影响的实际程度尚不清楚。我们使用GABA受体拮抗剂产生的去抑制作用来揭示在通向桶状皮层的主要皮层下感觉中继区(即主要三叉神经核(Pr5)和丘脑腹后内侧核(VPM))中通常被抑制作用所抑制的兴奋性感觉反应。我们发现,在皮层下中继区内,抑制作用仅轻微抑制短潜伏期感受野反应,但强烈抑制长潜伏期中心和周边感受野反应。然而,抑制作用的长潜伏期皮层下效应大多未在桶状皮层中体现出来。皮层下抑制对桶状皮层反应最显著的影响是短暂抑制高频感觉刺激的感受野反应。这种由皮层下抑制引起的短暂适应性在几次刺激后恢复,并让位于一种与皮层下抑制无关的稳态适应性。

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