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Pathway profiling in Mycobacterium tuberculosis: Elucidation of cholesterol-derived catabolite and enzymes that catalyze its metabolism

  • Suzanne T. Thomas
  • , Brian C. VanderVen
  • , David R. Sherman
  • , David G. Russell
  • , Nicole S. Sampson
  • Stony Brook University
  • Cornell University
  • Seattle Biomedical Research Institute

Research output: Contribution to journalArticlepeer-review

95 Scopus citations

Abstract

Mycobacterium tuberculosis, the bacterium that causes tuberculosis, imports and metabolizes host cholesterol during infection. This ability is important in the chronic phase of infection. Here we investigate the role of the intracellular growth operon (igr), which has previously been identified as having a cholesterol- sensitive phenotype in vitro and which is important for intracellular growth of the mycobacteria.Wehave employed isotopically labeled low density lipoproteins containing either [1,7,15,22,26- 14C] cholesterol or [1,7,15,22,26- 13C]cholesterol and high resolution LC/MS as tools to profile the cholesterol-derived metabolome of an igr operon-disrupted mutant (Δigr) of M. tuberculosis. A partially metabolized cholesterol species accumulated in the Δigr knock-out strain that was absent in the complemented and parental wild-type strains. Structural elucidation by multidimensional 1H and 13C NMR spectroscopy revealed the accumulated metabolite to be methyl 1β-(2′-propanoate)- 3aα-H-4α-(3′-propanoic acid)-7aβ-methylhexahydro- 5-indanone. Heterologously expressed and purified FadE28- FadE29, an acyl-CoA dehydrogenase encoded by the igr operon, catalyzes the dehydrogenation of 2′-propanoyl-CoA ester side chains in substrates with structures analogous to the characterized metabolite. Based on the structure of the isolated metabolite, enzyme activity, and bioinformatic annotations, we assign the primary function of the igr operon to be degradation of the 2′-propanoate side chain. Therefore, the igr operon is necessary to completely metabolize the side chain of cholesterol metabolites.

Original languageEnglish
Pages (from-to)43668-43678
Number of pages11
JournalJournal of Biological Chemistry
Volume286
Issue number51
DOIs
StatePublished - Dec 23 2011

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