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Tonically Active Inhibition Selectively Controls Feedforward Circuits in Mouse Barrel Cortex

机译:抑制性有效抑制小鼠桶状皮质中的前馈电路。

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摘要

Tonic inhibition mediated by extrasynaptic γ-aminobutyric acid type A (GABAA) receptors is a powerful conductance that controls cell excitability. Throughout the CNS, tonic inhibition is expressed at varying degrees across different cell types. Despite a rich history of cortical interneuron diversity, little is known about tonic inhibition in the different classes of cells in the cerebral cortex. We therefore examined the cell-type specificity and functional significance of tonic inhibition in layer 4 of the mouse somatosensory barrel cortex. In situ hybridization and immunocytochemistry showed moderate δ-subunit expression across the barrel structures. Whole cell patch-clamp recordings additionally indicated that significant levels of tonic inhibition can be found across cell types, with differences in the magnitude of inhibition between cell types. To activate tonic currents, we used 4,5,6,7-tetrahydroisoxazolo[5,4-c]pyridin-3-ol (THIP, a superagonist at δ-subunit–containing GABAA receptors) at a concentration that did not affect synaptic decay kinetics. THIP produced greater shifts in baseline holding current in inhibitory cells (low-threshold spiking [LTS], 109 ± 17 pA; fast spiking [FS], 111 ± 15 pA) than in excitatory cells (39 ± 10 pA; P < 0.001). In addition to these differences across cell types, there was also variability within inhibitory cells. FS cells with faster action potentials had larger baseline shifts. Because FS cells are known mediators of feedforward inhibition, we tested whether THIP-induced tonic conductance selectively controls feedforward circuits. THIP application resulted in the abolishment of the inhibitory postsynaptic potential in thalamic-evoked disynaptic responses in a subset of excitatory neurons. These data suggest multiple feedforward circuits can be differentiated by the inhibitory control of the presynaptic inhibitory neuron.
机译:由突触外γ-氨基丁酸A型(GABAA)受体介导的强直抑制作用是控制细胞兴奋性的强大电导。在整个CNS中,进补抑制在不同细胞类型中以不同程度表达。尽管皮层神经元的多样性已有很长的历史,但对大脑皮层中不同细胞类别的强直抑制作用知之甚少。因此,我们检查了小鼠体感桶状皮质的第4层中的滋补抑制的细胞类型特异性和功能意义。原位杂交和免疫细胞化学显示桶形结构中有适度的δ亚基表达。全细胞膜片钳记录还表明,在各种细胞类型中都可以发现明显的滋补抑制作用,并且细胞类型之间的抑制程度也有所不同。为了激活补品电流,我们使用了不影响突触的浓度的4,5,6,7-四氢异恶唑并[5,4-c]吡啶-3-醇(THIP,δ-亚基的GABAA受体的超激动剂)。衰减动力学。与抑制性细胞(39±10 pA; P <0.001)相比,THIP在抑制细胞(低阈值峰值[LTS],109±17 pA;快速峰值[FS],111±15 pA)中产生的基线保持电流变化更大。 。除了跨细胞类型的这些差异外,抑制性细胞内也存在差异。具有较快动作电位的FS细胞具有较大的基线漂移。因为FS细胞是前馈抑制的已知介体,所以我们测试了THIP诱导的补品电导是否选择性地控制前馈电路。 THIP的应用导致了在兴奋性神经元子集的丘脑诱发的突触反应中抑制性突触后电位的消失。这些数据表明可以通过突触前抑制神经元的抑制控制来区分多个前馈电路。

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