Recent advances in mapping environmental microbial metabolisms through 13C isotopic fingerprints

Joseph Kuo Hsiang Tang, Le You, Robert E. Blankenship, Yinjie J. Tang

Research output: Contribution to journalReview articlepeer-review

33 Scopus citations

Abstract

After feeding microbes with a defined 13C substrate, unique isotopic patterns (isotopic fingerprints) can be formed in their metabolic products. Such labelling information not only can provide novel insights into functional pathways but also can determine absolute carbon fluxes through the metabolic network via metabolic modelling approaches. This technique has been used for finding pathways that may have been mis-annotated in the past, elucidating new enzyme functions, and investigating cell metabolisms in microbial communities. In this review paper, we summarize the applications of 13C approaches to analyse novel cell metabolisms for the past 3 years. The isotopic fingerprints (defined as unique isotopomers useful for pathway identifications) have revealed the operations of the Entner-Doudoroff pathway, the reverse tricarboxylic acid cycle, new enzymes for biosynthesis of central metabolites, diverse respiration routes in phototrophic metabolism, co-metabolism of carbon nutrients and novel CO2 fixation pathways. This review also discusses new isotopic methods to map carbon fluxes in global metabolisms, as well as potential factors influencing the metabolic flux quantification (e.g. metabolite channelling, the isotopic purity of 13C substrates and the isotopic effect). Although 13C labelling is not applicable to all biological systems (e.g. microbial communities), recent studies have shown that this method has a significant value in functional characterization of poorly understood micro-organisms, including species relevant for biotechnology and human health.

Original languageEnglish
Pages (from-to)2767-2780
Number of pages14
JournalJournal of the Royal Society Interface
Volume9
Issue number76
DOIs
StatePublished - Nov 7 2012

Keywords

  • Carbon fluxes
  • Channelling
  • Isotopic effect
  • Isotopomers
  • Novel enzymes

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