A novel ESX-1 locus reveals that surface-associated ESX-1 substrates mediate virulence in Mycobacterium marinum

George M Kennedy1, Gwendolyn C Hooley, Matthew M Champion

  • 1Department of Biological Sciences, University of Notre Dame, Notre Dame, Indiana, USA.

Insights

A new genetic locus outside the RD1 region is crucial for ESX-1 export in Mycobacterium marinum. Cell surface translocation of EsxA and EsxB, not secretion, correlates with virulence.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Pathogenesis

Background:

  • The ESX-1 secretion system is vital for virulence in mycobacteria.
  • EsxA (ESAT-6) and EsxB (CFP-10) are key virulence factors exported by ESX-1.
  • The RD1 locus is traditionally associated with ESX-1 export in Mycobacterium tuberculosis and marinum.

Purpose of the Study:

  • To identify novel genetic loci involved in ESX-1 export in Mycobacterium marinum.
  • To investigate the relationship between ESX-1 substrate export and virulence in M. marinum.

Main Methods:

  • Transposon mutagenesis in M. marinum.
  • Analysis of colony morphology, hemolytic activity, and virulence in cell culture models.
  • Immunoblotting and quantitative proteomics to measure ESX-1 substrate export.
  • Genetic complementation studies.

Main Results:

  • A novel locus outside the RD1 region was identified, essential for ESX-1 export.
  • Mutants showed altered colony morphology, reduced hemolytic activity, and attenuated virulence.
  • Genetic complementation restored colony morphology and partially restored virulence but not in vitro secretion.
  • Complementation partially restored cell surface translocation of EsxA and EsxB.

Conclusions:

  • ESX-1 export involves loci beyond the canonical RD1 region.
  • Cell surface translocation of EsxA and EsxB, rather than secretion into the medium, is linked to M. marinum virulence.
  • This finding reconciles discrepancies between in vitro secretion assays and observed virulence.

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