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The GIP receptor activates futile calcium cycling in white adipose tissue to increase energy expenditure and drive weight loss in mice

GSE276975 Mus musculus Expression profiling by high throughput sequencing 6 samples Submitted 2025/01/07 Platform GPL19057
Summary
Obesity is a chronic disease that contributes to the development of insulin resistance, type 2 diabetes (T2D), and cardiovascular risk. GIP receptor (GIPR) and GLP-1 receptor (GLP-1R) co-agonism provide an improved therapeutic profile in individuals with T2D and obesity when compared with selective GLP-1R agonism. While the metabolic benefits of GLP-1R agonism are established, whether GIPR activation impacts weight loss through peripheral mechanisms is yet to be fully defined. Here, we generated a mouse model of GIPR induction exclusively in the adipocyte. We show that GIPR induction in the fat cell protects mice from diet-induced obesity and triggers profound weight loss (~35%) in an obese setting. Adipose GIPR further increases lipid oxidation, thermogenesis and energy expenditure. Mechanistically, we demonstrate that GIPR induction activates SERCA-mediated futile calcium cycling in the adipocyte. GIPR activation further triggers a metabolic memory effect, which maintains weight loss after the transgene has been switched off, highlighting a unique aspect in adipocyte biology. Collectively, we present a mechanism of peripheral GIPR action in adipose tissue, which exerts beneficial metabolic effects on body weight and energy balance.
Published in
The GIP receptor activates futile calcium cycling in white adipose tissue to increase energy expenditure and drive weight loss in mice
Yu X, Chen S, Funcke JB et al. · Cell metabolism 2025 · PMID 39642881 · doi:10.1016/j.cmet.2024.11.003
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Also filed as BioProject PRJNA1159864 and SRA study SRP532155. Searching any of these in the dataset finder brings you back here.

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