Transcriptome Analysis Reveals the Molecular Basis of Overfeeding-Induced Diabetes in Zebrafish

被引:2
作者
Ge, Guodong [1 ]
Ren, Jing [1 ]
Song, Guili [2 ]
Li, Qing [2 ]
Cui, Zongbin [1 ]
机构
[1] Guangdong Acad Sci, Inst Microbiol, Guangdong Prov Key Lab Microbial Culture Collect &, State Key Lab Appl Microbiol Southern China, Guangzhou 510070, Peoples R China
[2] Chinese Acad Sci, Inst Hydrobiol, State Key Lab Freshwater Ecol & Biotechnol, Wuhan 430072, Peoples R China
基金
中国国家自然科学基金;
关键词
diabetes mellitus; zebrafish; liver; RNA-seq; signaling pathway; SELECTIVE INSULIN-RESISTANCE; SUGAR-SWEETENED BEVERAGES; GLUCOSE-METABOLISM; LIPID DROPLETS; TYPE-2; DISEASE; OBESITY; HYPERGLYCEMIA; MODEL; PATHOPHYSIOLOGY;
D O I
10.3390/ijms241511994
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Diabetes has gradually become a serious disease that threatens human health. It can induce various complications, and the pathogenesis of diabetes is quite complex and not yet fully elucidated. The zebrafish has been widely acknowledged as a useful model for investigating the mechanisms underlying the pathogenesis and therapeutic interventions of diabetes. However, the molecular basis of zebrafish diabetes induced by overfeeding remains unknown. In this study, a zebrafish diabetes model was established by overfeeding, and the molecular basis of zebrafish diabetes induced by overfeeding was explored. Compared with the control group, the body length, body weight, and condition factor index of zebrafish increased significantly after four weeks of overfeeding. There was a significant elevation in the fasting blood glucose level, accompanied by a large number of lipid droplets accumulated within the liver. The levels of triglycerides and cholesterol in both the serum and liver exhibited a statistically significant increase. Transcriptome sequencing was employed to investigate changes in the livers of overfed zebrafish. The number of up-regulated and down-regulated differentially expressed genes (DEGs) was 1582 and 2404, respectively, in the livers of overfed zebrafish. The DEGs were subjected to KEGG and GO enrichment analyses, and the hub signaling pathways and hub DEGs were identified. The results demonstrate that sixteen genes within the signal pathway associated with fatty acid metabolism were found to be significantly up-regulated. Specifically, these genes were found to mainly participate in fatty acid transport, fatty acid oxidation, and ketogenesis. Furthermore, thirteen genes that play a crucial role in glucose metabolism, particularly in the pathways of glycolysis and glycogenesis, were significantly down-regulated in the livers of overfed zebrafish. These results indicate insulin resistance and inhibition of glucose entry into liver cells in the livers of overfed zebrafish. These findings elucidate the underlying molecular basis of zebrafish diabetes induced by overfeeding and provide a model for further investigation of the pathogenesis and therapeutics of diabetes.
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页数:19
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共 77 条
[41]   Triglyceride is independently correlated with insulin resistance and islet beta cell function: a study in population with different glucose and lipid metabolism states [J].
Ma, Minglei ;
Liu, Haibin ;
Yu, Jie ;
He, Shuli ;
Li, Pingping ;
Ma, Chunxiao ;
Zhang, Huabing ;
Xu, Lingling ;
Ping, Fan ;
Li, Wei ;
Sun, Qi ;
Li, Yuxiu .
LIPIDS IN HEALTH AND DISEASE, 2020, 19 (01)
[42]   Sugar-Sweetened Beverages and Risk of Metabolic Syndrome and Type 2 Diabetes [J].
Malik, Vasanti S. ;
Popkin, Barry M. ;
Bray, George A. ;
Despres, Jean-Pierre ;
Willett, Walter C. ;
Hu, Frank B. .
DIABETES CARE, 2010, 33 (11) :2477-2483
[43]   Sugar-Sweetened Beverages, Obesity, Type 2 Diabetes Mellitus, and Cardiovascular Disease Risk [J].
Malik, Vasanti S. ;
Popkin, Barry M. ;
Bray, George A. ;
Despres, Jean-Pierre ;
Hu, Frank B. .
CIRCULATION, 2010, 121 (11) :1356-1364
[44]   Gender differences in glucose homeostasis and diabetes [J].
Mauvais-Jarvis, Franck .
PHYSIOLOGY & BEHAVIOR, 2018, 187 :20-23
[45]   Impairment of insulin signalling in peripheral tissue fails to extend murine lifespan [J].
Merry, Troy L. ;
Kuhlow, Doreen ;
Laube, Beate ;
Pohlmann, Doris ;
Pfeiffer, Andreas F. H. ;
Kahn, C. Ronald ;
Ristow, Michael ;
Zarse, Kim .
AGING CELL, 2017, 16 (04) :761-772
[46]   Concurrent metformin and silibinin therapy in diabetes: assessments in zebrafish (Danio rerio) animal model (Oct, 10.1007/s40200-020-00637-7, 2020)) [J].
Mohammadi, Hassan ;
Manouchehri, Hamed ;
Changizi, Reza ;
Bootorabi, Fatemeh ;
Khorramizadeh, Mohammad Reza .
JOURNAL OF DIABETES AND METABOLIC DISORDERS, 2021, 20 (01) :1099-1099
[47]   The formation of lipid droplets: possible role in the development of insulin resistance/type 2 diabetes [J].
Olofsson, Sven-Olof ;
Andersson, Linda ;
Haversen, Liliana ;
Olsson, Christina ;
Myhre, Susanna ;
Rutberg, Mikael ;
Mobini, Reza ;
Li, Lu ;
Lu, Emma ;
Boren, Jan ;
Bostrom, Pontus .
PROSTAGLANDINS LEUKOTRIENES AND ESSENTIAL FATTY ACIDS, 2011, 85 (05) :215-218
[48]   Pathway-selective Insulin Resistance and Metabolic Disease: The Importance of Nutrient Flux [J].
Otero, Yolanda F. ;
Stafford, John M. ;
McGuinness, Owen P. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (30) :20462-20469
[49]   Blood Collection for Biochemical Analysis in Adult Zebrafish [J].
Pedroso, Gabriela L. ;
Hammes, Thais O. ;
Escobar, Thayssa D. C. ;
Fracasso, Laisa B. ;
Forgiarini, Luiz Felipe ;
da Silveira, Themis R. .
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2012, (63)
[50]   Cholesterol metabolism, pancreatic β-cell function and diabetes [J].
Perego, Carla ;
Da Dalt, Lorenzo ;
Pirillo, Angela ;
Galli, Alessandra ;
Catapano, Alberico L. ;
Norata, Giuseppe D. .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR BASIS OF DISEASE, 2019, 1865 (09) :2149-2156