4.2 Article

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

期刊

EXPERIMENTAL NEUROBIOLOGY
卷 31, 期 3, 页码 147-157

出版社

KOREAN SOC BRAIN & NEURAL SCIENCE, KOREAN SOC NEURODEGENERATIVE DISEASE
DOI: 10.5607/en22014

关键词

Astrocyte,Arcuate nucleus; GABA transporter; High fat diet; Obesity; Tonic GABA

资金

  1. Institute for Basic Science (IBS), Center for Cognition and Sociality [IBS-R001-D2]

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This study found that chronic high-fat diet leads to increased reactivity and GABA-synthesizing enzyme expression in astrocytes of the hypothalamus in obese mice, however, tonic inhibition of GABA remains unaltered, which is due to GABA clearance by neuronal GAT1. These results suggest that GABA-related pathways in the hypothalamic ARC play a dynamic role in maintaining tonic inhibition.
The principal inhibitory transmitter, gamma-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 GABA(A) receptor a5 (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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