Xiong Yanlei, Qu Zhuan, Chen Nan, Gong Hui, Song Mintao, Chen Xuequn, Du Jizeng, Xu Chengli
Department of Pathophysiology, Institute of Basic Medical Sciences, Chinese Academy of Medical Sciences (CAMS), School of Basic Medicine, Peking Union Medical College (PUMC), Beijing, People's Republic of China.
Division of Neurobiology and Physiology, Department of Basic Medical Sciences, School of Medicine, Key Laboratory of Medical Neurobiology of the Ministry of Health, Zhejiang University, Hangzhou, People's Republic of China.
Mol Cell Endocrinol. 2014 Jul 5;392(1-2):106-14. doi: 10.1016/j.mce.2014.05.012. Epub 2014 May 22.
Our objective was to investigate the mechanisms by which the endogenous CRHR2 in white adipose tissue (WAT) regulates metabolic activities associated with lipogenesis and lipolysis under continuous exposure to hypoxia. We found that hypobaric hypoxia at a simulated altitude of 5000 m significantly reduced the body weight, food intake, and WAT mass of rats. Hypoxia also accelerated lipolysis and suppressed lipogenesis in WAT. Pretreatment with astressin 2B, a selective CRHR2 antagonist, partly but significantly attenuated the hypoxia-induced reductions in body weight and WAT mass by blocking the cAMP-protein kinase A (PKA)-hormone-sensitive lipase (HSL)/perilipin signalling pathway. Astressin 2B treatment failed to attenuate hypoxia induced lipogenic inhibition. In conclusion, activation of endogenous WAT Ucn2/3 autocrine/paracrine pathway was involved in hypoxia induced lipolysis via CRHR2 - cAMP-PKA signalling pathway. This study provides the novel understanding of local CRHR2 signaling pathway playing important role in WAT loss and lipid metabolism under hypoxia.
我们的目的是研究白色脂肪组织(WAT)中的内源性促肾上腺皮质激素释放激素受体2(CRHR2)在持续暴露于低氧环境下调节与脂肪生成和脂肪分解相关的代谢活动的机制。我们发现,模拟海拔5000米的低压低氧显著降低了大鼠的体重、食物摄入量和WAT质量。低氧还加速了WAT中的脂肪分解并抑制了脂肪生成。用选择性CRHR2拮抗剂阿斯特辛2B预处理,通过阻断环磷酸腺苷-蛋白激酶A(PKA)-激素敏感性脂肪酶(HSL)/围脂滴蛋白信号通路,部分但显著减轻了低氧诱导的体重和WAT质量的降低。阿斯特辛2B处理未能减轻低氧诱导的脂肪生成抑制。总之,内源性WAT促肾上腺皮质激素释放激素2/3自分泌/旁分泌途径的激活通过CRHR2 - 环磷酸腺苷-PKA信号通路参与了低氧诱导的脂肪分解。本研究为局部CRHR2信号通路在低氧条件下对WAT丢失和脂质代谢起重要作用提供了新的认识。