代谢组学
生物
果蝇属(亚属)
追踪
系统生物学
进化生物学
黑腹果蝇
计算生物学
生物信息学
遗传学
基因
计算机科学
操作系统
作者
Ruohong Wang,Yandong Yin,Jingshu Li,Hongmiao Wang,Wanting Lv,Yang Gao,Tangci Wang,Yedan Zhong,Zhiwei Zhou,Yuping Cai,Xiaoyang Su,Nan Liu,Zheng‐Jiang Zhu
标识
DOI:10.1038/s41467-022-31268-6
摘要
System-wide metabolic homeostasis is crucial for maintaining physiological functions of living organisms. Stable-isotope tracing metabolomics allows to unravel metabolic activity quantitatively by measuring the isotopically labeled metabolites, but has been largely restricted by coverage. Delineating system-wide metabolic homeostasis at the whole-organism level remains challenging. Here, we develop a global isotope tracing metabolomics technology to measure labeled metabolites with a metabolome-wide coverage. Using Drosophila as an aging model organism, we probe the in vivo tracing kinetics with quantitative information on labeling patterns, extents and rates on a metabolome-wide scale. We curate a system-wide metabolic network to characterize metabolic homeostasis and disclose a system-wide loss of metabolic coordinations that impacts both intra- and inter-tissue metabolic homeostasis significantly during Drosophila aging. Importantly, we reveal an unappreciated metabolic diversion from glycolysis to serine metabolism and purine metabolism as Drosophila aging. The developed technology facilitates a system-level understanding of metabolic regulation in living organisms.
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