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PMID: 24489532 Published · ppublish English Journal Article

Ab initio prediction of metabolic networks using Fourier transform mass spectrometry data.

Metabolomics : Official journal of the Metabolomic Society ·Vol. 2 ·No. 3 ·2006-00-00 ·Pages 155-164

Breitling R, Ritchie S, Goodenowe D, Stewart ML, Barrett MP

Abstract

Fourier transform mass spectrometry has recently been introduced into the field of metabolomics as a technique that enables the mass separation of complex mixtures at very high resolution and with ultra high mass accuracy. Here we show that this enhanced mass accuracy can be exploited to predict large metabolic networks ab initio, based only on the observed metabolites without recourse to predictions based on the literature. The resulting networks are highly information-rich and clearly non-random. They can be used to infer the chemical identity of metabolites and to obtain a global picture of the structure of cellular metabolic networks. This represents the first reconstruction of metabolic networks based on unbiased metabolomic data and offers a breakthrough in the systems-wide analysis of cellular metabolism.

Keywords
Fourier transform mass spectrometry computational methods metabolic networks network reconstruction
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Breitling Rainer
Groningen Bioinformatics Centre, University of Groningen, 9751 NN Haren, The Netherlands ; Institute of Biomedical and Life Sciences, University of Glasgow, Glasgow, G12 8QQ UK.
Ritchie Shawn
Phenomenome Discoveries, Saskatoon, S7N 4L8 Canada.
Goodenowe Dayan
Phenomenome Discoveries, Saskatoon, S7N 4L8 Canada.
Stewart Mhairi L
Institute of Biomedical and Life Sciences, University of Glasgow, Glasgow, G12 8QQ UK.
Barrett Michael P
Institute of Biomedical and Life Sciences, University of Glasgow, Glasgow, G12 8QQ UK.
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Article Info
Journal
Metabolomics : Official journal of the Metabolomic Society
Abbr.
Metabolomics
ISSN
1573-3882
Published
2006-00-00
Epub
2006-00-25
Pages
155-164
Language
English
Region
United States
NLM ID
101274889
PMCID
PMC3906711
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