Diacylglycerol kinase delta overexpression improves glucose clearance and protects against the development of obesity

Diacylglycerol kinase (DGK) isoforms catalyze an enzymatic reaction that removes diacylglycerol (DAG) and thereby terminates protein kinase C signaling by converting DAG to phosphatidic acid. DGKδ (type II isozyme) downregulation causes insulin resistance, metabolic inflexibility, and obesity. Here...

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Veröffentlicht in:Metabolism, clinical and experimental clinical and experimental, 2024-09, Vol.158, p.155939, Article 155939
Hauptverfasser: Jollet, Maxence, Tramontana, Flavia, Jiang, Lake Q., Borg, Melissa L., Savikj, Mladen, Kuefner, Michael S., Massart, Julie, de Castro Barbosa, Thais, Mannerås-Holm, Louise, Checa, Antonio, Pillon, Nicolas J., Chibalin, Alexander V., Björnholm, Marie, Zierath, Juleen R.
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Sprache:eng
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Zusammenfassung:Diacylglycerol kinase (DGK) isoforms catalyze an enzymatic reaction that removes diacylglycerol (DAG) and thereby terminates protein kinase C signaling by converting DAG to phosphatidic acid. DGKδ (type II isozyme) downregulation causes insulin resistance, metabolic inflexibility, and obesity. Here we determined whether DGKδ overexpression prevents these metabolic impairments. We generated a transgenic mouse model overexpressing human DGKδ2 under the myosin light chain promoter (DGKδ TG). We performed deep metabolic phenotyping of DGKδ TG mice and wild-type littermates fed chow or high-fat diet (HFD). Mice were also provided free access to running wheels to examine the effects of DGKδ overexpression on exercise-induced metabolic outcomes. DGKδ TG mice were leaner than wild-type littermates, with improved glucose tolerance and increased skeletal muscle glycogen content. DGKδ TG mice were protected against HFD-induced glucose intolerance and obesity. DGKδ TG mice had reduced epididymal fat and enhanced lipolysis. Strikingly, DGKδ overexpression recapitulated the beneficial effects of exercise on metabolic outcomes. DGKδ overexpression and exercise had a synergistic effect on body weight reduction. Microarray analysis of skeletal muscle revealed common gene ontology signatures of exercise and DGKδ overexpression that were related to lipid storage, extracellular matrix, and glycerophospholipids biosynthesis pathways. Overexpression of DGKδ induces adaptive changes in both skeletal muscle and adipose tissue, resulting in protection against HFD-induced obesity. DGKδ overexpression recapitulates exercise-induced adaptations on energy homeostasis and skeletal muscle gene expression profiles. •DGKδ overexpression protects against diet-induced glucose intolerance and obesity•DGKδ overexpression recapitulates exercise-induced improvements in energy homeostasis•Exercise and DGKδ overexpression have synergistic effects on body weight reduction and share similar skeletal muscle gene signatures•Lipid storage, extracellular matrix, and glycerophospholipids biosynthesis pathways are altered•DGKδ2 agonists may enhance energy homeostasis and exercise adaptations
ISSN:0026-0495
1532-8600
1532-8600
DOI:10.1016/j.metabol.2024.155939