INSERM, U1193, Paul-Brousse University Hospital, Hepatobiliary Centre, Villejuif, 94800, France.
Université Paris-Saclay, Faculté de Médecine Le Kremlin-Bicêtre, Le Kremlin-Bicêtre, 94270, France.
Commun Biol. 2023 Mar 15;6(1):269. doi: 10.1038/s42003-023-04616-5.
Innate immune mediators of pathogen clearance, including the secreted C-type lectins REG3 of the antimicrobial peptide (AMP) family, are known to be involved in the regulation of tissue repair and homeostasis. Their role in metabolic homeostasis remains unknown. Here we show that an increase in human REG3A improves glucose and lipid homeostasis in nutritional and genetic mouse models of obesity and type 2 diabetes. Mice overexpressing REG3A in the liver show improved glucose homeostasis, which is reflected in better insulin sensitivity in normal weight and obese states. Delivery of recombinant REG3A protein to leptin-deficient ob/ob mice or wild-type mice on a high-fat diet also improves glucose homeostasis. This is accompanied by reduced oxidative protein damage, increased AMPK phosphorylation and insulin-stimulated glucose uptake in skeletal muscle tissue. Oxidative damage in differentiated C2C12 myotubes is greatly attenuated by REG3A, as is the increase in gp130-mediated AMPK activation. In contrast, Akt-mediated insulin action, which is impaired by oxidative stress, is not restored by REG3A. These data highlight the importance of REG3A in controlling oxidative protein damage involved in energy and metabolic pathways during obesity and diabetes, and provide additional insight into the dual function of host-immune defense and metabolic regulation for AMP.
先天免疫病原体清除介质,包括抗菌肽 (AMP) 家族的分泌型 C 型凝集素 REG3,已知参与组织修复和稳态的调节。它们在代谢稳态中的作用尚不清楚。在这里,我们表明人 REG3A 的增加可改善肥胖和 2 型糖尿病的营养和遗传小鼠模型中的葡萄糖和脂质稳态。在肝脏中过表达 REG3A 的小鼠表现出改善的葡萄糖稳态,这反映在正常体重和肥胖状态下胰岛素敏感性更好。向瘦素缺乏的 ob/ob 小鼠或高脂肪饮食的野生型小鼠递送重组 REG3A 蛋白也可改善葡萄糖稳态。这伴随着骨骼肌组织中氧化蛋白损伤减少、AMPK 磷酸化增加和胰岛素刺激的葡萄糖摄取增加。REG3A 大大减弱了分化的 C2C12 肌管中的氧化损伤,同时也减弱了 gp130 介导的 AMPK 激活的增加。相比之下,氧化应激会损害 Akt 介导的胰岛素作用,而 REG3A 并不能恢复这种作用。这些数据强调了 REG3A 在控制肥胖和糖尿病期间涉及能量和代谢途径的氧化蛋白损伤中的重要性,并为 AMP 的宿主免疫防御和代谢调节的双重功能提供了更多的见解。