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Published on: December 7, 2017
Microglial activation and hypothalamic structural plasticity in HFD obesity: insights from semaglutide and
Xi Rong1, Fang Wei2, Yuqi Jiang3
1Department of Endocrinology and Metabolism, Shunde Hospital of Southern Medical University (The First People's Hospital of Shunde Foshan), Foshan, Guangdong Province, China; Department of Geriatric Endocrinology, The First Affiliated Hospital of Guangxi Medical University, Nanning, Guangxi Zhuang Autonomous Region, China.
Abstract:
High-fat diet (HFD)-induced microglial activation contributes to hypothalamic inflammation and obesity, but the mechanisms linking microglia to structural changes remain unclear. This study explored the role of microglia in impairing hypothalamic synaptic plasticity in diet-induced obesity mice and evaluated the therapeutic potential of semaglutide (Sema) and minocycline (MI). Six-week-old C57BL/6J mice were divided into low-fat diet and HFD groups. At week 30, the HFD-fed mice were treated daily with Sema or MI for six weeks. Confocal microscopy assessed hypothalamic dendritic spines, synaptic organization, and microglia-synapse interactions. We also analyzed microglial morphology, CD68/CD11b colocalization with Iba-1, synaptic marker expression, and phagocytosis-related pathways (C1q, C3, CD11b). BV2 microglia were used to examine the direct effects of Sema or MI on microglia and validate the in vivo findings. HFD feeding induced microglial activation, as indicated by increased colocalization of CD68 or synaptophysin and CD11b with Iba-1, along with elevated C1q, C3, and CD11b expression, signaling enhanced synaptic phagocytosis. This was accompanied by reduced hypothalamic dendritic spines, decreased synaptic marker expression, and disrupted excitatory/inhibitory synaptic organization in the melanocortin system, as well as impaired glucose metabolism, disrupted leptin-ghrelin balance, and increased food intake and body weight. Sema and MI treatments reversed the pathological changes of microglial activation and restored hypothalamic synaptic structure, although their effects on synaptic organization and metabolic outcomes differed. Our findings highlight the key role of microglial activation in hypothalamic synaptic impairment in diet-induced obesity models, with Sema and MI possibly offering distinct therapeutic pathways to mitigate these impairments.
Insights
High-fat diets activate brain microglia, impairing hypothalamic synapses and leading to obesity. Treatments with semaglutide and minocycline reversed these effects, offering potential therapeutic strategies for diet-induced obesity.
Area of Science:
- Neuroscience
- Metabolic Disorders
- Immunology
Background:
- High-fat diet (HFD)-induced microglial activation is linked to hypothalamic inflammation and obesity.
- The precise mechanisms by which microglia influence structural changes in the hypothalamus remain poorly understood.
Purpose of the Study:
- To investigate the role of microglia in hypothalamic synaptic plasticity impairment in diet-induced obesity.
- To evaluate the therapeutic potential of semaglutide (Sema) and minocycline (MI) in mitigating these effects.
Main Methods:
- Mice were fed either a low-fat diet or HFD, with HFD-fed mice receiving Sema or MI treatment.
- Confocal microscopy, Western blotting, and analysis of microglial morphology and phagocytosis markers were employed.
- In vitro studies using BV2 microglia validated in vivo findings.
Main Results:
- HFD induced microglial activation, increased synaptic phagocytosis (indicated by C1q, C3, CD11b expression), and reduced hypothalamic dendritic spines.
- Synaptic organization, glucose metabolism, and leptin-ghrelin balance were disrupted in HFD-fed mice.
- Sema and MI treatments reversed microglial activation and restored hypothalamic synaptic structure, with differing impacts on synaptic organization and metabolic outcomes.
Conclusions:
- Microglial activation plays a critical role in hypothalamic synaptic impairment associated with diet-induced obesity.
- Semaglutide and minocycline demonstrate therapeutic potential, possibly through distinct pathways, to address these impairments.

