Unaltered Tonic Inhibition in the Arcuate Nucleus of Diet-induced Obese Mice.

IF 1.8 4区 医学 Q3 MEDICINE, RESEARCH & EXPERIMENTAL Experimental Neurobiology Pub Date : 2022-06-30 DOI:10.5607/en22014
Moonsun Sa, Jung Moo Lee, Mingu Gordon Park, Jiwoon Lim, Jong Min Joseph Kim, Wuhyun Koh, Bo-Eun Yoon, C Justin Lee
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引用次数: 2

Abstract

The principal inhibitory transmitter, γ-aminobutyric acid (GABA), is critical for maintaining hypothalamic homeostasis and released from neurons phasically, as well as from astrocytes tonically. Although astrocytes in the arcuate nucleus (ARC) of the hypothalamus are shown to transform into reactive astrocytes, the tonic inhibition by astrocytic GABA has not been adequately investigated in diet-induced obesity (DIO). Here, we investigated the expression of monoamine oxidase-B (MAOB), a GABA-synthesizing enzyme, in reactive astrocytes in obese mice. We observed that a chronic high-fat diet (HFD) significantly increased astrocytic MAOB and cellular GABA content, along with enhanced hypertrophy of astrocytes in the ARC. Unexpectedly, we found that the level of tonic GABA was unaltered in chronic HFD mice using whole-cell patch-clamp recordings in the ARC. Furthermore, the GABA-induced current was increased with elevated GABAA receptor α5 (GABRA5) expression. Surprisingly, we found that a nonselective GABA transporter (GAT) inhibitor, nipecotic acid (NPA)-induced current was significantly increased in chronic HFD mice. We observed that GAT1 inhibitor, NO711-induced current was significantly increased, whereas GAT3 inhibitor, SNAP5114-induced current was not altered. The unexpected unaltered tonic inhibition was due to an increase of GABA clearance in the ARC by neuronal GAT1 rather than astrocytic GAT3. These results imply that increased astrocytic GABA synthesis and neuronal GABAA receptor were compensated by GABA clearance, resulting in unaltered tonic GABA inhibition in the ARC of the hypothalamus in obese mice. Taken together, GABA-related molecular pathways in the ARC dynamically regulate the tonic inhibition to maintain hypothalamic homeostasis against the HFD challenge.

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饮食诱导肥胖小鼠弓形核不变的强直抑制。
主要的抑制性递质γ-氨基丁酸(GABA)对维持下丘脑稳态至关重要,并从神经元和星形胶质细胞中周期性释放。虽然下丘脑弓状核(ARC)中的星形胶质细胞被证明可以转化为反应性星形胶质细胞,但星形胶质细胞GABA对饮食性肥胖(DIO)的强直抑制作用尚未得到充分研究。在这里,我们研究了单胺氧化酶- b(一种gaba合成酶)在肥胖小鼠反应性星形胶质细胞中的表达。我们观察到,慢性高脂肪饮食(HFD)显著增加星形胶质细胞MAOB和细胞GABA含量,同时增强ARC中星形胶质细胞的肥大。出乎意料的是,我们在ARC中使用全细胞膜片钳记录发现慢性HFD小鼠的强直性GABA水平没有改变。gaba诱导电流升高,GABAA受体α5 (GABRA5)表达升高。令人惊讶的是,我们发现非选择性GABA转运体(GAT)抑制剂nipecotic acid (NPA)诱导电流在慢性HFD小鼠中显著增加。我们观察到GAT1抑制剂no711的感应电流显著增加,而GAT3抑制剂snap5114的感应电流没有改变。意想不到的未改变的强直抑制是由于神经元GAT1而不是星形胶质细胞GAT3增加了ARC中GABA的清除。这些结果表明,星形胶质细胞GABA合成和神经元GABAA受体的增加通过GABA清除来补偿,导致肥胖小鼠下丘脑ARC的强直性GABA抑制不变。综上所述,ARC中与gaba相关的分子通路动态调节强直抑制,以维持下丘脑对抗HFD挑战的内稳态。
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来源期刊
Experimental Neurobiology
Experimental Neurobiology Neuroscience-Cellular and Molecular Neuroscience
CiteScore
4.30
自引率
4.20%
发文量
29
期刊介绍: Experimental Neurobiology is an international forum for interdisciplinary investigations of the nervous system. The journal aims to publish papers that present novel observations in all fields of neuroscience, encompassing cellular & molecular neuroscience, development/differentiation/plasticity, neurobiology of disease, systems/cognitive/behavioral neuroscience, drug development & industrial application, brain-machine interface, methodologies/tools, and clinical neuroscience. It should be of interest to a broad scientific audience working on the biochemical, molecular biological, cell biological, pharmacological, physiological, psychophysical, clinical, anatomical, cognitive, and biotechnological aspects of neuroscience. The journal publishes both original research articles and review articles. Experimental Neurobiology is an open access, peer-reviewed online journal. The journal is published jointly by The Korean Society for Brain and Neural Sciences & The Korean Society for Neurodegenerative Disease.
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