Department of Human Anatomy & Histoembryology, School of Basic Medical Sciences, Fudan University, Shanghai 200032, China.
Institutes of Brain Sciences, Fudan University, Shanghai 200032, China.
G3 (Bethesda). 2021 Aug 7;11(8). doi: 10.1093/g3journal/jkab090.
Intellectual disability is closely related to impaired GABA neurotransmission. Brpf1 was specifically expressed in medial ganglionic eminence (MGE), a developmental niche of GABAergic interneurons, and patients with BRPF1 mutations showed intellectual disability. To test its role in the development and function of MGE-derived GABAergic interneurons, we performed immunofluorescence staining, whole-cell patch-clamp, MGE transplantation, and mRNA-Seq to understand its effect on neuronal differentiation, dendritic morphology, electrophysiology, migration, and gene regulation, using mouse MGE-derived GABAergic interneurons infected with AAV-shBrpf1. The results showed that Brpf1 knockdown had a decreasing trend, although not significant, on the differentiation of GABAergic interneurons into parvalbumin+ interneurons. Moreover, increased firing threshold, decreased number of evoked action potentials, and a reduced amplitude of miniature inhibitory postsynaptic currents were observed before any significant change of MAP2+ dendritic morphology and in vivo migration ability appeared. Finally, mRNA-Seq analysis revealed that genes related to neurodevelopment and synaptic transmission such as Map2k7 were dysregulated. Our results demonstrated a key role of Brpf1 in inhibitory neurotransmission and related gene expression of GABAergic interneurons.
智力障碍与 GABA 神经递质传递受损密切相关。 Brpf1 特异性表达于神经节隆起内侧(MGE),这是 GABA 能中间神经元的发育小生境,BRPF1 突变患者表现出智力障碍。为了测试其在 MGE 衍生的 GABA 能中间神经元发育和功能中的作用,我们使用感染了 AAV-shBrpf1 的小鼠 MGE 衍生的 GABA 能中间神经元进行免疫荧光染色、全细胞膜片钳、MGE 移植和 mRNA-Seq,以了解其对神经元分化、树突形态、电生理学、迁移和基因调控的影响。结果表明,Brpf1 敲低对 GABA 能中间神经元分化为 PV+中间神经元的影响虽然没有统计学意义,但呈下降趋势。此外,在 MAP2+树突形态和体内迁移能力出现明显变化之前,观察到了触发阈值升高、诱发动作电位数量减少和抑制性突触后电流幅度减小。最后,mRNA-Seq 分析显示,与神经发育和突触传递相关的基因如 Map2k7 出现了失调。我们的研究结果表明 Brpf1 在 GABA 能中间神经元的抑制性神经传递和相关基因表达中起着关键作用。