生物
胚泡
胚胎
表观遗传学
胚胎发生
细胞生物学
转录组
重编程
代谢组学
柠檬酸循环
遗传学
细胞
新陈代谢
生物信息学
生物化学
基因表达
基因
作者
Jing Zhao,Ke Yao,Hua Yu,Ling Zhang,Yuyan Xu,Lang Chen,Zhen Sun,Yuqing Zhu,Cheng Zhang,Yuli Qian,Shu‐Yan Ji,Hongru Pan,Min Zhang,Jie Chen,Cristina Correia,Taylor M. Weiskittel,Dawei Lin,Yuzheng Zhao,Sriram Chandrasekaran,Xudong Fu
出处
期刊:Nature metabolism
[Nature Portfolio]
日期:2021-10-14
卷期号:3 (10): 1372-1384
被引量:84
标识
DOI:10.1038/s42255-021-00464-x
摘要
During early mammalian embryogenesis, changes in cell growth and proliferation depend on strict genetic and metabolic instructions. However, our understanding of metabolic reprogramming and its influence on epigenetic regulation in early embryo development remains elusive. Here we show a comprehensive metabolomics profiling of key stages in mouse early development and the two-cell and blastocyst embryos, and we reconstructed the metabolic landscape through the transition from totipotency to pluripotency. Our integrated metabolomics and transcriptomics analysis shows that while two-cell embryos favour methionine, polyamine and glutathione metabolism and stay in a more reductive state, blastocyst embryos have higher metabolites related to the mitochondrial tricarboxylic acid cycle, and present a more oxidative state. Moreover, we identify a reciprocal relationship between α-ketoglutarate (α-KG) and the competitive inhibitor of α-KG-dependent dioxygenases, L-2-hydroxyglutarate (L-2-HG), where two-cell embryos inherited from oocytes and one-cell zygotes display higher L-2-HG, whereas blastocysts show higher α-KG. Lastly, increasing 2-HG availability impedes erasure of global histone methylation markers after fertilization. Together, our data demonstrate dynamic and interconnected metabolic, transcriptional and epigenetic network remodelling during early mouse embryo development.
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