Abstract

IntroductionIsoprenoids 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.ObjectivesWe developed and validated a complete methodology for quantitative metabolomics and isotopologue profiling of isoprenoid precursors in the yeast Saccharomyces cerevisiae.MethodsThis 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.ResultsThis 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.ConclusionThis 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 13C-metabolic flux analysis of isoprenoid biosynthesis.

Highlights

  • Isoprenoids are amongst the most abundant and diverse biological molecules and are involved in a broad range of biological functions

  • Comprehensive understanding of the operation and regulation of isoprenoids biosynthesis is key in a broad range of fundamental and applicative fields, including systems biology, medicine and biotechnology

  • We estimated the limit of detection (LOD), limit of quantification (LOQ) and linearity according to the Eurachem guidelines (Örnemark and Magnussonm 2014), with an acceptable accuracy and precision threshold fixed at ± 20%

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Summary

Introduction

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 key in many fundamental and applicative fields, including systems biology, medicine and biotechnology. Isoprenoids form one of the most abundant and diverse family of biological molecules on Earth (Buckingham 1993) They are produced by all organisms, from prokaryotes to eukaryotes, and are involved in a wide range of biological activities, including maintenance of membrane fluidity, defense against fungi and other pathogens, signaling, growth regulators, attractants for pollinators, or precursors for the synthesis of hormones, bile acids and sterols (Goldstein and Brown 1990; Liao et al 2016). Comprehensive understanding of the operation and regulation of isoprenoids biosynthesis is key in a broad range of fundamental and applicative fields, including systems biology, medicine and biotechnology

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