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Published on: September 27, 2018
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.
Abstract:
EsxA (ESAT-6) and EsxB (CFP-10) are virulence factors exported by the ESX-1 system in mycobacterial pathogens. In Mycobacterium marinum, an established model for ESX-1 secretion in Mycobacterium tuberculosis, genes required for ESX-1 export reside at the extended region of difference 1 (RD1) locus. In this study, a novel locus required for ESX-1 export in M. marinum was identified outside the RD1 locus. An M. marinum strain bearing a transposon-insertion between the MMAR_1663 and MMAR_1664 genes exhibited smooth-colony morphology, was deficient for ESX-1 export, was nonhemolytic, and was attenuated for virulence. Genetic complementation revealed a restoration of colony morphology and a partial restoration of virulence in cell culture models. Yet hemolysis and the export of ESX-1 substrates into the bacteriological medium in vitro as measured by both immunoblotting and quantitative proteomics were not restored. We show that genetic complementation of the transposon insertion strain partially restored the translocation of EsxA and EsxB to the mycobacterial cell surface. Our findings indicate that the export of EsxA and EsxB to the cell surface, rather than secretion into the bacteriological medium, correlates with virulence in M. marinum. Together, these findings not only expand the known genetic loci required for ESX-1 secretion in M. marinum but also provide an explanation for the observed disparity between in vitro ESX-1 export and virulence.
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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