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通过含有 αβƐ 亚基的 GABA 受体的紧张性 GABA 能抑制作用,调节腹侧被盖区多巴胺神经元的兴奋性。

Tonic GABAergic inhibition, via GABA receptors containing αβƐ subunits, regulates excitability of ventral tegmental area dopamine neurons.

机构信息

MRC London Institute of Medical Sciences (LMS), London, UK.

Institute of Clinical Sciences (ICS), Faculty of Medicine, Imperial College London, London, UK.

出版信息

Eur J Neurosci. 2021 Mar;53(6):1722-1737. doi: 10.1111/ejn.15133. Epub 2021 Feb 14.

Abstract

The activity of midbrain dopamine neurons is strongly regulated by fast synaptic inhibitory γ-Aminobutyric acid (GABA)ergic inputs. There is growing evidence in other brain regions that low concentrations of ambient GABA can persistently activate certain subtypes of GABA receptor to generate a tonic current. However, evidence for a tonic GABAergic current in midbrain dopamine neurons is limited. To address this, we conducted whole-cell recordings from ventral tegmental area (VTA) dopamine neurons in brain slices from mice. We found that application of GABA receptor antagonists decreased the holding current, indicating the presence of a tonic GABAergic input. Global increases in GABA release, induced by either a nitric oxide donor or inhibition of GABA uptake, further increased this tonic current. Importantly, prolonged inhibition of the firing activity of local GABAergic neurons abolished the tonic current. A combination of pharmacology and immunohistochemistry experiments suggested that, unlike common examples of tonic inhibition, this current may be mediated by a relatively unusual combination of α4βƐ subunits. Lastly, we found that the tonic current reduced excitability in dopamine neurons suggesting a subtractive effect on firing activity.

摘要

中脑多巴胺神经元的活动受到快速突触抑制性γ-氨基丁酸(GABA)能输入的强烈调节。越来越多的证据表明,在其他脑区,低浓度的环境 GABA 可以持续激活某些特定类型的 GABA 受体,产生持续电流。然而,中脑多巴胺神经元存在持续 GABA 能电流的证据有限。为了解决这个问题,我们在来自小鼠脑切片的腹侧被盖区(VTA)多巴胺神经元中进行了全细胞膜片钳记录。我们发现 GABA 受体拮抗剂的应用降低了保持电流,表明存在持续的 GABA 能输入。一氧化氮供体或 GABA 摄取抑制引起的 GABA 释放的全面增加进一步增加了这种持续电流。重要的是,局部 GABA 能神经元放电活动的长时间抑制消除了持续电流。药理学和免疫组织化学实验的组合表明,与常见的持续抑制例子不同,这种电流可能是由相对不寻常的α4βƐ 亚基组合介导的。最后,我们发现持续电流降低了多巴胺神经元的兴奋性,这表明对放电活动有抑制作用。

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