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整合代谢组学和脂质组学分析揭示胰高血糖素受体缺陷型斑马鱼脂质代谢和氨基酸代谢的重塑

Integrated Metabolomics and Lipidomics Analysis Reveal Remodeling of Lipid Metabolism and Amino Acid Metabolism in Glucagon Receptor-Deficient Zebrafish.

作者信息

Bai Xuanxuan, Jia Jianxin, Kang Qi, Fu Yadong, Zhou You, Zhong Yingbin, Zhang Chao, Li Mingyu

机构信息

Fujian Provincial Key Laboratory of Innovative Drug Target Research, School of Pharmaceutical Sciences, Xiamen University, Xiamen, China.

Translational Medical Center for Stem Cell Therapy and Institute for Regenerative Medicine, Shanghai East Hospital, Shanghai Key Laboratory of Signaling and Disease Research, Frontier Science Center for Stem Cell Research, School of Life Sciences and Technology, Tongji University, Shanghai, China.

出版信息

Front Cell Dev Biol. 2021 Jan 14;8:605979. doi: 10.3389/fcell.2020.605979. eCollection 2020.

Abstract

The glucagon receptor (GCGR) is activated by glucagon and is essential for glucose, amino acid, and lipid metabolism of animals. GCGR blockade has been demonstrated to induce hypoglycemia, hyperaminoacidemia, hyperglucagonemia, decreased adiposity, hepatosteatosis, and pancreatic α cells hyperplasia in organisms. However, the mechanism of how GCGR regulates these physiological functions is not yet very clear. In our previous study, we revealed that GCGR regulated metabolic network at transcriptional level by RNA-seq using GCGR mutant zebrafish ( ). Here, we further performed whole-organism metabolomics and lipidomics profiling on wild-type and zebrafish to study the changes of metabolites. We found 107 significantly different metabolites from metabolomics analysis and 87 significantly different lipids from lipidomics analysis. Chemical substance classification and pathway analysis integrated with transcriptomics data both revealed that amino acid metabolism and lipid metabolism were remodeled in -deficient zebrafish. Similar to other studies, our study showed that zebrafish exhibited decreased ureagenesis and impaired cholesterol metabolism. More interestingly, we found that the glycerophospholipid metabolism was disrupted, the arachidonic acid metabolism was up-regulated, and the tryptophan metabolism pathway was down-regulated in zebrafish. Based on the omics data, we further validated our findings by revealing that zebrafish exhibited dampened melatonin diel rhythmicity and increased locomotor activity. These global omics data provide us a better understanding about the role of GCGR in regulating metabolic network and new insight into GCGR physiological functions.

摘要

胰高血糖素受体(GCGR)由胰高血糖素激活,对动物的葡萄糖、氨基酸和脂质代谢至关重要。已证明阻断GCGR可在生物体中诱发低血糖、高氨基酸血症、高胰高血糖素血症、脂肪减少、肝脂肪变性和胰腺α细胞增生。然而,GCGR如何调节这些生理功能的机制尚不完全清楚。在我们之前的研究中,我们使用GCGR突变斑马鱼通过RNA测序揭示了GCGR在转录水平上调节代谢网络。在此,我们进一步对野生型和[具体突变型]斑马鱼进行了全生物体代谢组学和脂质组学分析,以研究代谢物的变化。我们从代谢组学分析中发现了107种显著不同的代谢物,从脂质组学分析中发现了87种显著不同的脂质。与转录组学数据相结合的化学物质分类和通路分析均表明,[突变型]斑马鱼的氨基酸代谢和脂质代谢发生了重塑。与其他研究类似,我们的研究表明[突变型]斑马鱼的尿素生成减少且胆固醇代谢受损。更有趣的是,我们发现[突变型]斑马鱼的甘油磷脂代谢受到破坏,花生四烯酸代谢上调,色氨酸代谢途径下调。基于组学数据,我们通过揭示[突变型]斑马鱼的褪黑素昼夜节律减弱和运动活性增加,进一步验证了我们的发现。这些全局组学数据使我们更好地了解了GCGR在调节代谢网络中的作用,并为其生理功能提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da82/7841139/a1110cb33ebd/fcell-08-605979-g0001.jpg

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