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Upregulation of excitatory neurons and downregulation of inhibitory neurons in barrel cortex are associated with loss of whisker inputs

机译:桶状皮层中兴奋性神经元的上调和抑制性神经元的下调与晶须输入的减少有关

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Loss of a sensory input causes the hypersensitivity in other modalities. In addition to cross-modal plasticity, the sensory cortices without receiving inputs undergo the plastic changes. It is not clear how the different types of neurons and synapses in the sensory cortex coordinately change after input deficits in order to prevent loss of their functions and to be used for other modalities. We studied this subject in the barrel cortices from whiskers-trimmed mice vs. controls. After whisker trimming for a week, the intrinsic properties of pyramidal neurons and the transmission of excitatory synapses were upregulated in the barrel cortex, but inhibitory neurons and GABAergic synapses were downregulated. The morphological analyses indicated that the number of processes and spines in pyramidal neurons increased, whereas the processes of GABAergic neurons decreased in the barrel cortex. The upregulation of excitatory neurons and the downregulation of inhibitory neurons boost the activity of network neurons in the barrel cortex to be high levels, which prevent the loss of their functions and enhances their sensitivity to sensory inputs. These changes may prepare for attracting the innervations from sensory cortices and/or peripheral nerves for other modalities during cross-modal plasticity.
机译:感觉输入的丧失导致其他方式的超敏反应。除了交叉模态可塑性外,未接受输入的感觉皮质也会发生塑性变化。尚不清楚输入缺陷后,感觉皮层中不同类型的神经元和突触如何协调变化,以防止其功能丧失并用于其他方式。我们研究了用胡须修剪小鼠与对照小鼠的桶状皮质中的这个对象。晶须修剪一周后,桶状皮质的锥体神经元的内在特性和兴奋性突触的传递被上调,而抑制性神经元和GABA能突触被下调。形态学分析表明,在桶状皮质中,锥体神经元的过程和棘的数目增加,而GABA能神经元的过程减少。兴奋性神经元的上调和抑制性神经元的下调将桶状皮质中的网络神经元的活性提高到高水平,从而防止了它们的功能丧失并增强了它们对感觉输入的敏感性。这些变化可以为在跨模态可塑性过程中的其他模态吸引来自感觉皮质和/或周围神经的神经支配做准备。

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