Nakayama Yasumune, Tamada Yoshihiro, Tsugawa Hiroshi, Bamba Takeshi, Fukusaki Eiichiro
Department of Biotechnology, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.
Metabolites. 2014 Aug 25;4(3):722-39. doi: 10.3390/metabo4030722.
Isotope-labeling is a useful technique for understanding cellular metabolism. Recent advances in metabolomics have extended the capability of isotope-assisted studies to reveal global metabolism. For instance, isotope-assisted metabolomics technology has enabled the mapping of a global metabolic network, estimation of flux at branch points of metabolic pathways, and assignment of elemental formulas to unknown metabolites. Furthermore, some data processing tools have been developed to apply these techniques to a non-targeted approach, which plays an important role in revealing unknown or unexpected metabolism. However, data collection and integration strategies for non-targeted isotope-assisted metabolomics have not been established. Therefore, a systematic approach is proposed to elucidate metabolic dynamics without targeting pathways by means of time-resolved isotope tracking, i.e., "metabolic turnover analysis", as well as multivariate analysis. We applied this approach to study the metabolic dynamics in amino acid perturbation of Saccharomyces cerevisiae. In metabolic turnover analysis, 69 peaks including 35 unidentified peaks were investigated. Multivariate analysis of metabolic turnover successfully detected a pathway known to be inhibited by amino acid perturbation. In addition, our strategy enabled identification of unknown peaks putatively related to the perturbation.
同位素标记是一种用于理解细胞代谢的有用技术。代谢组学的最新进展扩展了同位素辅助研究揭示整体代谢的能力。例如,同位素辅助代谢组学技术能够绘制全球代谢网络、估计代谢途径分支点处的通量以及为未知代谢物确定元素分子式。此外,还开发了一些数据处理工具,将这些技术应用于非靶向方法,这在揭示未知或意外代谢方面发挥着重要作用。然而,非靶向同位素辅助代谢组学的数据收集和整合策略尚未建立。因此,我们提出了一种系统方法,通过时间分辨同位素追踪,即“代谢周转分析”以及多变量分析,来阐明非靶向途径的代谢动态。我们应用这种方法研究酿酒酵母氨基酸扰动中的代谢动态。在代谢周转分析中,研究了包括35个未鉴定峰在内的69个峰。代谢周转的多变量分析成功检测到一条已知受氨基酸扰动抑制的途径。此外,我们的策略能够鉴定出可能与扰动相关的未知峰。