LISBP, Université de Toulouse, CNRS, INRA, INSA, Toulouse, France.
MetaToul-MetaboHUB, National Infrastructure of Metabolomics and Fluxomics, Toulouse, France.
Metabolomics. 2019 Aug 21;15(9):115. doi: 10.1007/s11306-019-1580-8.
Isoprenoids are amongst the most abundant and diverse biological molecules and are involved in a broad range of biological functions. Functional understanding of their biosynthesis is thus key in many fundamental and applicative fields, including systems biology, medicine and biotechnology. However, available methods do not yet allow accurate quantification and tracing of stable isotopes incorporation for all the isoprenoids precursors.
We developed and validated a complete methodology for quantitative metabolomics and isotopologue profiling of isoprenoid precursors in the yeast Saccharomyces cerevisiae.
This workflow covers all the experimental and computational steps from sample collection and preparation to data acquisition and processing. It also includes a novel quantification method based on liquid chromatography coupled to high-resolution mass spectrometry. Method validation followed the Metabolomics Standards Initiative guidelines.
This workflow ensures accurate absolute quantification (RSD < 20%) of all mevalonate and prenyl pyrophosphates intermediates with a high sensitivity over a large linear range (from 0.1 to 50 pmol). In addition, we demonstrate that this workflow brings crucial information to design more efficient phytoene producers. Results indicate stable turnover rates of prenyl pyrophosphate intermediates in the constructed strains and provide quantitative information on the change of the biosynthetic flux of phytoene precursors.
This methodology fills one of the last technical gaps for functional studies of isoprenoids biosynthesis and should be applicable to other eukaryotic and prokaryotic (micro)organisms after adaptation of some organism-dependent steps. This methodology also opens the way to C-metabolic flux analysis of isoprenoid biosynthesis.
异戊二烯类化合物是最丰富和最多样化的生物分子之一,它们参与了广泛的生物学功能。因此,了解它们的生物合成对于许多基础和应用领域都至关重要,包括系统生物学、医学和生物技术。然而,现有的方法还不能准确地定量和追踪所有异戊二烯前体的稳定同位素掺入。
我们开发并验证了一种用于定量酵母酿酒酵母中异戊二烯前体代谢组学和同位素特征分析的完整方法。
该工作流程涵盖了从样品收集和准备到数据采集和处理的所有实验和计算步骤。它还包括一种基于液相色谱与高分辨率质谱联用的新型定量方法。方法验证遵循代谢组学标准倡议指南。
该工作流程确保了所有甲羟戊酸和 prenyl pyrophosphate 中间体的准确绝对定量(RSD < 20%),具有高灵敏度和宽线性范围(从 0.1 到 50 pmol)。此外,我们证明该工作流程为设计更有效的类胡萝卜素前体提供了关键信息。结果表明,在构建的菌株中 prenyl pyrophosphate 中间体的稳定周转率,并提供了类胡萝卜素前体生物合成通量变化的定量信息。
该方法填补了异戊二烯生物合成功能研究的最后一个技术空白之一,在适应一些依赖于生物体的步骤后,应该适用于其他真核和原核(微生物)生物体。该方法还为异戊二烯生物合成的 C-代谢通量分析开辟了道路。