H3K4me3
表观遗传学
谷氨酰胺
生物
下调和上调
白色脂肪组织
内分泌学
蛋氨酸
脂肪细胞
内科学
脂肪组织
细胞生物学
基因表达
生物化学
发起人
医学
基因
氨基酸
作者
Shuai Wang,Yanke Lin,Lu Gao,Ze‐Min Yang,Jingpan Lin,Shujing Ren,Feng Li,Jing Chen,Zhigang Wang,Zhiyong Dong,Pinghua Sun,Baojian Wu
出处
期刊:Theranostics
[Ivyspring International Publisher]
日期:2022-01-01
卷期号:12 (4): 1589-1606
被引量:111
摘要
While growing evidence suggests that circadian clock and obesity are intertwined, the underlying mechanism is poorly understood. Here, we investigate how circadian clock is linked to obesity. Methods: Metabolomics profiling of WAT (white adipose tissue) samples was performed to identify the metabolites altered in obese model. mRNA levels were analyzed by qPCR assays. Proteins were detected by immunoblotting, immunofluorescence and ELISA. ChIP and luciferase reporter assays were used to investigate epigenetic and transcriptional regulation. Results: Obesity causes perturbance of circadian clock in WAT in mice and humans, particularly, BMAL1 is markedly reduced. Metabolomic analysis reveals reduced glutamine and methionine in obese WAT. Glutamine metabolism contributes to production of acetyl-CoA, whereas methionine metabolism generates S-adenosyl methionine (SAM). Acetyl-CoA and SAM are the substrates for histone acetylation and methylation, respectively. Reduced glutamine and methionine in obese WAT are associated with decreased H3K27ac and H3K4me3 at Bmal1 promoter. Consistently, glutamine or methionine administration in vitro and in vivo increases H3K27ac or H3K4me3, promoting Bmal1 transcription and expression. A screen of transport and metabolic genes identifies downregulation of the uptake transporter SLC1A5 as a cause of reduced glutamine or methionine in obese WAT. Moreover, we observe impaired expression of PPAR- in obese WAT. PPAR- trans-activates Slc1a5 via direct binding to a response element in promoter.
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