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伏隔核组胺信号作用于离散的中间神经元微电路。

Accumbal Histamine Signaling Engages Discrete Interneuron Microcircuits.

机构信息

Medical Scientist Training Program, Vanderbilt University, Nashville, Tennessee; Vanderbilt Brain Institute, Vanderbilt University, Nashville, Tennessee; Department of Anesthesiology, Vanderbilt University Medical Center, Nashville, Tennessee.

Department of Pharmacology, Vanderbilt University, Nashville, Tennessee.

出版信息

Biol Psychiatry. 2023 Jun 1;93(11):1041-1052. doi: 10.1016/j.biopsych.2021.10.004. Epub 2021 Oct 16.

Abstract

BACKGROUND

Central histamine (HA) signaling modulates diverse cortical and subcortical circuits throughout the brain, including the nucleus accumbens (NAc). The NAc, a key striatal subregion directing reward-related behavior, expresses diverse HA receptor subtypes that elicit cellular and synaptic plasticity. However, the neuromodulatory capacity of HA within interneuron microcircuits in the NAc remains unknown.

METHODS

We combined electrophysiology, pharmacology, voltammetry, and optogenetics in male transgenic reporter mice to determine how HA influences microcircuit motifs controlled by parvalbumin-expressing fast-spiking interneurons (PV-INs) and tonically active cholinergic interneurons (CINs) in the NAc shell.

RESULTS

HA enhanced CIN output through an H receptor (HR)-dependent effector pathway requiring Ca-activated small-conductance K channels, with a small but discernible contribution from HRs and synaptic HRs. While PV-IN excitability was unaffected by HA, presynaptic HRs decreased feedforward drive onto PV-INs via AC-cAMP-PKA (adenylyl cyclase-cyclic adenosine monophosphate-protein kinase A) signaling. HR-dependent plasticity was differentially expressed at mediodorsal thalamus and prefrontal cortex synapses onto PV-INs, with mediodorsal thalamus synapses undergoing HA-induced long-term depression. These effects triggered downstream shifts in PV-IN- and CIN-controlled microcircuits, including near-complete collapse of mediodorsal thalamus-evoked feedforward inhibition and increased mesoaccumbens dopamine release.

CONCLUSIONS

HA targets HR, HR, and HRs in the NAc shell to engage synapse- and cell type-specific mechanisms that bidirectionally regulate PV-IN and CIN microcircuit activity. These findings extend the current conceptual framework of HA signaling and offer critical insight into the modulatory potential of HA in the brain.

摘要

背景

中枢组胺(HA)信号调节大脑中的各种皮质和皮质下回路,包括伏隔核(NAc)。NAc 是指导与奖励相关行为的关键纹状体亚区,表达多种 HA 受体亚型,引发细胞和突触可塑性。然而,HA 在 NAc 中间神经元微电路中的神经调制能力尚不清楚。

方法

我们结合了电生理学、药理学、伏安法和光遗传学,在雄性转基因报告小鼠中确定了 HA 如何影响由表达 Parvalbumin 的快速放电中间神经元(PV-INs)和持续活跃的胆碱能中间神经元(CINs)控制的 NAc 壳微电路模式。

结果

HA 通过 H 受体(HR)依赖性效应途径增强 CIN 输出,该途径需要 Ca 激活的小电导钾通道,HR 和突触 HR 有较小但可识别的贡献。虽然 HA 对 PV-IN 兴奋性没有影响,但 HR 通过 AC-cAMP-PKA(腺苷酸环化酶-环磷酸腺苷-蛋白激酶 A)信号降低了对 PV-IN 的前馈驱动。HR 依赖性可塑性在中脑背侧丘脑和前额叶皮质到 PV-IN 的突触上差异表达,中脑背侧丘脑突触经历 HA 诱导的长时程抑制。这些效应触发了 PV-IN 和 CIN 控制的微电路的下游转移,包括中脑背侧丘脑诱发的前馈抑制的几乎完全崩溃和中脑伏隔核多巴胺释放的增加。

结论

HA 靶向 NAc 壳中的 HR、HR 和 HR,以参与突触和细胞类型特异性机制,这些机制可双向调节 PV-IN 和 CIN 微电路活动。这些发现扩展了 HA 信号的当前概念框架,并为 HA 在大脑中的调节潜力提供了关键的见解。

相似文献

1
Accumbal Histamine Signaling Engages Discrete Interneuron Microcircuits.伏隔核组胺信号作用于离散的中间神经元微电路。
Biol Psychiatry. 2023 Jun 1;93(11):1041-1052. doi: 10.1016/j.biopsych.2021.10.004. Epub 2021 Oct 16.
2
Histamine H Receptor Function Biases Excitatory Gain in the Nucleus Accumbens.组胺 H 受体功能偏倚伏隔核中的兴奋性增益。
Biol Psychiatry. 2021 Mar 15;89(6):588-599. doi: 10.1016/j.biopsych.2020.07.023. Epub 2020 Aug 6.

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