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电耦合抑制性网络对局部神经元对皮层内微刺激反应的影响。

Effects of electrically coupled inhibitory networks on local neuronal responses to intracortical microstimulation.

作者信息

Butovas Sergejus, Hormuzdi Sheriar G, Monyer Hannah, Schwarz Cornelius

机构信息

Hertie-Institute for Clinical Brain Research, Department of Cognitive Neurology, University Tübingen, Otfried Müller Str. 27, 72076 Tübingen, Germany.

出版信息

J Neurophysiol. 2006 Sep;96(3):1227-36. doi: 10.1152/jn.01170.2005. Epub 2006 Jul 12.

Abstract

Using in vivo multielectrode electrophysiology in mice, we investigated the underpinnings of a local, long-lasting firing rate suppression evoked by intracortical microstimulation. Synaptic inhibition contributes to this suppression as it was reduced by pharmacological blockade of gamma-aminobutyric acid type B (GABAB) receptors. Blockade of GABAB receptors also abolished the known sublinear addition of inhibitory response duration after repetitive electrical stimulation. Furthermore, evoked inhibition was weaker and longer in connexin 36 knockout (KO) mice that feature decoupled cortical inhibitory networks. In supragranular layers of KO mice even an unusually long excitatory response (< or = 50 ms) appeared that was never observed in wild-type (WT) mice. Furthermore, the spread and duration of very fast oscillations (> 200 Hz) evoked by microstimulation at a short latency were strongly enhanced in KO mice. In the spatial domain, lack of connexin 36 unmasked a strong anisotropy of inhibitory spread. Although its reach along layers was almost the same as that in WT mice, the spread across cortical depth was severely hampered. In summary, the present data suggest that connexin 36-coupled networks significantly shape the electrically evoked cortical inhibitory response. Electrical coupling renders evoked cortical inhibition more precise and strong and ensures a uniform spread along the two cardinal axes of neocortical geometry.

摘要

利用小鼠体内多电极电生理学技术,我们研究了皮层内微刺激诱发的局部、持久放电率抑制的潜在机制。突触抑制参与了这种抑制作用,因为通过对γ-氨基丁酸B型(GABAB)受体的药理学阻断,这种抑制作用减弱了。GABAB受体的阻断还消除了重复电刺激后已知的抑制反应持续时间的亚线性相加。此外,在具有解耦皮层抑制网络的连接蛋白36基因敲除(KO)小鼠中,诱发的抑制作用更弱且持续时间更长。在KO小鼠的颗粒上层,甚至出现了野生型(WT)小鼠中从未观察到的异常长的兴奋性反应(≤50毫秒)。此外,在KO小鼠中,微刺激在短潜伏期诱发的极快振荡(>200赫兹)的传播和持续时间显著增强。在空间域中,连接蛋白36的缺失揭示了抑制性传播的强烈各向异性。尽管其沿层的范围与WT小鼠几乎相同,但跨皮层深度的传播严重受阻。总之,目前的数据表明,连接蛋白36耦合网络显著塑造了电诱发的皮层抑制反应。电耦合使诱发的皮层抑制更精确、更强,并确保沿新皮层几何结构的两个主轴均匀传播。

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