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抑制星形胶质细胞的γ-氨基丁酸转氨酶可增强紧张性抑制并削弱海马体空间记忆。

Suppressing astrocytic GABA transaminase enhances tonic inhibition and weakens hippocampal spatial memory.

作者信息

Park Mingu Gordon, Lim Jiwoon, Kim Daeun, Lee Won-Seok, Yoon Bo-Eun, Lee C Justin

机构信息

Center for Cognition and Sociality, Life Science Institute, Institute for Basic Science, Daejeon, South Korea.

IBS School, University of Science and Technology, Daejeon, South Korea.

出版信息

Exp Mol Med. 2025 Feb;57(2):379-389. doi: 10.1038/s12276-025-01398-0. Epub 2025 Feb 3.

Abstract

Pharmacological suppression of γ-aminobutyric acid (GABA) transaminase (GABA-T), the sole GABA-degrading enzyme and a potential therapeutic target for treating brain disorders such as epilepsy, increases not only phasic inhibition but also tonic inhibition. However, the specific cellular source, neuromodulatory effects and potential therapeutic benefits of this enhanced tonic inhibition remain unexplored due to the lack of cell-type-specific gene manipulation studies. Here we report that the increase in tonic GABA currents observed after GABA-T suppression is predominantly due to increased tonic GABA release from astrocytes rather than action-potential-dependent synaptic GABA spillover. General GABA-T knockdown (KD) by a short hairpin RNA considerably increased tonic GABA currents in dentate granule cells, thereby enhancing tonic inhibition. An astrocyte-specific rescue of GABA-T following general GABA-T KD normalized the elevated tonic GABA currents to near control levels. Tetrodotoxin-insensitive tonic GABA currents were significantly increased after general GABA-T KD, whereas tetrodotoxin-sensitive tonic GABA currents showed no significant increase, suggesting that this enhanced tonic inhibition is primarily action-potential independent. General GABA-T KD reduced the spike probability of granule cells and impaired dorsal hippocampus-dependent spatial memory, which were fully reversed by astrocyte-specific GABA-T rescue. These findings suggest that suppressing astrocytic GABA-T may be sufficient to influence the excitatory/inhibitory balance in the brain and associated behaviors. Our study implies that the therapeutic benefits of pharmacological GABA-T suppression may be largely attributed to the modulation of astrocytic GABA-T and its impact on tonic GABA release from astrocytes. Here, we report distinct effects of GABA-T suppression depending on cell type; suppressing GABA-T in astrocytes enhances tonic inhibition, while its suppression in GABAergic neurons augments phasic inhibition. Our findings demonstrate that targeted suppression of astrocytic GABA-T not only enhances tonic GABA release from astrocytes but also significantly influences the excitation/inhibition balance in the brain, with consequential effects on behavior. This suggests that astrocytic GABA-T modulation holds promising potential for developing novel therapeutic strategies aimed at treating cognitive and neurological disorders through the regulation of astrocytic GABA metabolism. GAD glutamate decarboxylase, MAO-B monoamine oxidase B, BEST1 bestrophin 1, GABA-T GABA transaminase, GAT GABA transporter, DG dentate gyrus, SSA succinic semialdehyde.

摘要

γ-氨基丁酸(GABA)转氨酶(GABA-T)是唯一的GABA降解酶,也是治疗癫痫等脑部疾病的潜在治疗靶点,对其进行药理抑制不仅会增加相位抑制,还会增加强直抑制。然而,由于缺乏细胞类型特异性基因操作研究,这种增强的强直抑制的具体细胞来源、神经调节作用和潜在治疗益处仍未得到探索。在此,我们报告,在抑制GABA-T后观察到的强直GABA电流增加主要是由于星形胶质细胞的强直GABA释放增加,而不是动作电位依赖性突触GABA溢出。通过短发夹RNA进行的一般GABA-T基因敲低(KD)显著增加了齿状颗粒细胞中的强直GABA电流,从而增强了强直抑制。在一般GABA-T KD后对GABA-T进行星形胶质细胞特异性挽救,可使升高的强直GABA电流恢复到接近对照水平。一般GABA-T KD后,河豚毒素不敏感的强直GABA电流显著增加,而河豚毒素敏感的强直GABA电流没有显著增加,这表明这种增强的强直抑制主要与动作电位无关。一般GABA-T KD降低了颗粒细胞的放电概率,并损害了背侧海马依赖性空间记忆,而星形胶质细胞特异性GABA-T挽救可完全逆转这些情况。这些发现表明,抑制星形胶质细胞的GABA-T可能足以影响大脑中的兴奋/抑制平衡及相关行为。我们的研究表明,药理抑制GABA-T的治疗益处可能在很大程度上归因于对星形胶质细胞GABA-T的调节及其对星形胶质细胞强直GABA释放的影响。在此,我们报告了根据细胞类型不同,抑制GABA-T会产生不同的效果;抑制星形胶质细胞中的GABA-T会增强强直抑制,而抑制GABA能神经元中的GABA-T则会增强相位抑制。我们的研究结果表明,靶向抑制星形胶质细胞的GABA-T不仅会增加星形胶质细胞的强直GABA释放,还会显著影响大脑中的兴奋/抑制平衡,进而影响行为。这表明,调节星形胶质细胞的GABA-T代谢对于开发旨在通过调节星形胶质细胞GABA代谢来治疗认知和神经疾病的新型治疗策略具有广阔的潜力。GAD谷氨酸脱羧酶,MAO-B单胺氧化酶B,BEST1 Bestrophin 1,GABA-T GABA转氨酶,GAT GABA转运体,DG齿状回,SSA琥珀酸半醛

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d6dc/11873293/135f4604d070/12276_2025_1398_Figa_HTML.jpg

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