Effects of semaglutide on metabolism and gut microbiota in high-fat diet-induced obese mice

被引:0
作者
Sun, Luyan [1 ]
Shang, Bingqing [1 ]
Lv, Suyuan [1 ]
Liu, Guolong [1 ]
Wu, Qiu [1 ]
Geng, Yue [1 ]
机构
[1] Shandong Normal Univ, Coll Life Sci, Key Lab Food Nutr & Safety SDNU, Prov Key Lab Anim Resistant Biol, Jinan, Peoples R China
关键词
obesity; semaglutide; gut microbiota; metabolomics; fecal microbiota transplantation; GLUCAGON-LIKE PEPTIDE-1; BODY-MASS INDEX; AKKERMANSIA-MUCINIPHILA; INSULIN SENSITIVITY; DAILY LIRAGLUTIDE; HEALTH; OVERWEIGHT; GLUCOSE; ATHEROSCLEROSIS; LIPOGENESIS;
D O I
10.3389/fphar.2025.1562896
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Background The purpose of this study was to explore how semaglutide, a GLP-1RA, regulates serum metabolism and gut microbiota to improve obesity in mice and whether fecal microbiota transplantation (FMT) can transmit the beneficial effects of semaglutide to recipient mice. Methods Male C57BL/6J mice were given standard diet (ND), high-fat diet (HFD), or high-fat diet with semaglutide (SHF, 100 mu g/kg). Fecal microbiota transplantation was used to transplant the fecal suspension supernatant (MT) and bacteria (FMT) from SHF group mice to antibiotic-induced pseudo-germ-free mice. Results Results showed that semaglutide significantly reduced the body weight, body fat, FBG, and insulin levels induced by high-fat diet, and improved insulin resistance and sensitivity damage (p < 0.05). This was achieved by regulating the expression of genes related to lipid metabolism such as Ppar alpha, Ppar gamma, Cpt1a, and Pgc1 alpha in the liver and adipose tissue, as well as the appetite-related genes Leptin, Agrp, Npy, and Pomc in the hypothalamus. After stopping semaglutide intervention 4 weeks, the body weight of the mice rebounded significantly. Fecal microbiota transplantation could transmit the beneficial effects of semaglutide to recipient mice. Semaglutide and fecal microbiota transplantation affected metabolic pathways such as serum amino acid metabolism and pyrimidine metabolism in obese mice, and reshaped the composition and proportion of fecal gut microbiota in obese mice. Conclusion In summary, semaglutide could inhibit food intake and improve obesity, regulate serum metabolism and the composition of gut microbiota in mice. Bacterial transplantation is key to transmitting the improvement brought about by fecal microbiota transplantation of semaglutide to recipient mice.
引用
收藏
页数:19
相关论文
共 91 条
[1]   Gut Microbiota Regulation of Tryptophan Metabolism in Health and Disease [J].
Agus, Allison ;
Planchais, Julien ;
Sokol, Harry .
CELL HOST & MICROBE, 2018, 23 (06) :716-724
[2]   Obesity-Related Metabolomic Profiles and Discrimination of Metabolically Unhealthy Obesity [J].
Bagheri, Minoo ;
Farzadfar, Farshad ;
Qi, Lu ;
Yekaninejad, Mir Saeed ;
Chamari, Maryam ;
Zeleznik, Oana A. ;
Kalantar, Zahra ;
Ebrahimi, Zarin ;
Sheidaie, Ali ;
Koletzko, Berthold ;
Uhl, Olaf ;
Djazayery, Abolghasem .
JOURNAL OF PROTEOME RESEARCH, 2018, 17 (04) :1452-1462
[3]   Microbes inside-from diversity to function: the case of Akkermansia [J].
Belzer, Clara ;
de Vos, Willem M. .
ISME JOURNAL, 2012, 6 (08) :1449-1458
[4]   Functionally distinct POMC-expressing neuron subpopulations in hypothalamus revealed by intersectional targeting [J].
Biglari, Nasim ;
Gaziano, Isabella ;
Schumacher, Jonas ;
Radermacher, Jan ;
Paeger, Lars ;
Klemm, Paul ;
Chen, Weiyi ;
Corneliussen, Svenja ;
Wunderlich, Claudia M. ;
Sue, Michael ;
Vollmar, Stefan ;
Kloeckener, Tim ;
Sotelo-Hitschfeld, Tamara ;
Abbasloo, Amin ;
Edenhofer, Frank ;
Reimann, Frank ;
Gribble, Fiona M. ;
Fenselau, Henning ;
Kloppenburg, Peter ;
Wunderlich, Frank T. ;
Bruening, Jens C. .
NATURE NEUROSCIENCE, 2021, 24 (07) :913-929
[5]   Safety of Novel Microbes for Human Consumption: Practical Examples of Assessment in the European Union [J].
Brodmann, Theodor ;
Endo, Akihito ;
Gueimonde, Miguel ;
Vinderola, Gabriel ;
Kneifel, Wolfgang ;
de Vos, Willem M. ;
Salminen, Seppo ;
Gomez-Gallego, Carlos .
FRONTIERS IN MICROBIOLOGY, 2017, 8
[6]   Glucagon-Like Peptide-1: New Regulator in Lipid Metabolism [J].
Bu, Tong ;
Sun, Ziyan ;
Pan, Yi ;
Deng, Xia ;
Yuan, Guoyue .
DIABETES & METABOLISM JOURNAL, 2024, 48 (03) :354-372
[7]   Gut microbial metabolites in obesity, NAFLD and T2DM [J].
Canfora, Emanuel E. ;
Meex, Ruth C. R. ;
Venema, Koen ;
Blaak, Ellen E. .
NATURE REVIEWS ENDOCRINOLOGY, 2019, 15 (05) :261-273
[8]   Transcriptional Regulation of Metabolic Pathways via Lipid-Sensing Nuclear Receptors PPARs, FXR, and LXR in NASH [J].
Cariello, Marica ;
Piccinin, Elena ;
Moschetta, Antonio .
CELLULAR AND MOLECULAR GASTROENTEROLOGY AND HEPATOLOGY, 2021, 11 (05) :1519-1539
[9]   Aromatic Amino Acids Promote Lipid Metabolism Disorders by Increasing Hepatic Bile Acid Synthesis [J].
Chen, Jiayi ;
Qin, Yingjie ;
Li, Zhongyu ;
Shan, Anshan ;
Ma, Qingquan .
JOURNAL OF NUTRITION, 2024, 154 (04) :1321-1332
[10]   Dipeptidyl peptidase IV resistant analogues of glucagon-like peptide-1 which have extended metabolic stability and improved biological activity [J].
Deacon, CF ;
Knudsen, LB ;
Madsen, K ;
Wiberg, FC ;
Jacobsen, O ;
Holst, JJ .
DIABETOLOGIA, 1998, 41 (03) :271-278