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育亨宾恢复 PGC-1α 缺失小鼠中海马 I/E 比和回路功能的频率依赖性。

Bicuculline restores frequency-dependent hippocampal I/E ratio and circuit function in PGC-1ɑ null mice.

机构信息

Department of Neurobiology, Civitan International Research Center, and Evelyn F. McKnight Brain Institute, University of Alabama at Birmingham, 1825 University Blvd., Birmingham, AL, United States.

Department of Neurobiology, Civitan International Research Center, and Evelyn F. McKnight Brain Institute, University of Alabama at Birmingham, 1825 University Blvd., Birmingham, AL, United States.

出版信息

Neurosci Res. 2022 Nov;184:9-18. doi: 10.1016/j.neures.2022.07.003. Epub 2022 Jul 14.

Abstract

Altered inhibition/excitation (I/E) balance contributes to various brain disorders. Dysfunctional GABAergic interneurons enhance or reduce inhibition, resulting in I/E imbalances. Differences in short-term plasticity between excitation and inhibition cause frequency-dependence of the I/E ratio, which can be altered by GABAergic dysfunction. However, it is unknown whether I/E imbalances can be rescued pharmacologically using a single dose when the imbalance magnitude is frequency-dependent. Loss of PGC-1α (peroxisome proliferator activated receptor γ coactivator 1α) causes transcriptional dysregulation in hippocampal GABAergic interneurons. PGC-1α slices have enhanced baseline inhibition onto CA1 pyramidal cells, causing increased I/E ratio and impaired circuit function. High frequency stimulation reduces the I/E ratio and recovers circuit function in PGC-1α slices. Here we tested if using a low dose of bicuculline that can restore baseline I/E ratio can also rescue the frequency-dependent I/E imbalances in these mice. Remarkably, bicuculline did not reduce the I/E ratio below that of wild type during high frequency stimulation. Interestingly, bicuculline enhanced the paired-pulse ratio (PPR) of disynaptic inhibition without changing the monosynaptic inhibition PPR, suggesting that bicuculline modifies interneuron recruitment and not GABA release. Bicuculline improved CA1 output in PGC-1α slices, enhancing EPSP-spike coupling to wild type levels at high and low frequencies. Our results show that it is possible to rescue frequency-dependent I/E imbalances in an animal model of transcriptional dysregulation with a single treatment.

摘要

抑制/兴奋(I/E)平衡的改变导致各种脑部疾病。功能障碍的 GABA 能中间神经元增强或减少抑制,导致 I/E 失衡。兴奋和抑制之间的短期可塑性差异导致 I/E 比率的频率依赖性,GABA 能功能障碍可以改变这种频率依赖性。然而,当失衡幅度是频率依赖性时,是否可以通过单次给药在药理学上挽救 I/E 失衡尚不清楚。PGC-1α(过氧化物酶体增殖物激活受体 γ 共激活因子 1α)的缺失导致海马 GABA 能中间神经元的转录失调。PGC-1α 切片具有增强的 CA1 锥体神经元的基础抑制,导致 I/E 比率增加和电路功能受损。高频刺激降低 PGC-1α 切片中的 I/E 比率并恢复电路功能。在这里,我们测试了使用低剂量的印防己毒素是否可以恢复基础 I/E 比率,也可以挽救这些小鼠中频率依赖性的 I/E 失衡。值得注意的是,在高频刺激期间,印防己毒素不会将 I/E 比率降低到野生型以下。有趣的是,印防己毒素增强了双突触抑制的成对脉冲比(PPR),而不改变单突触抑制的 PPR,这表明印防己毒素改变了中间神经元的募集,而不是 GABA 的释放。印防己毒素改善了 PGC-1α 切片中的 CA1 输出,在高频和低频下增强 EPSP-尖峰耦合至野生型水平。我们的结果表明,在转录失调的动物模型中,单次治疗可能挽救频率依赖性的 I/E 失衡。

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