Cell envelope polysaccharide modifications alter the surface properties and interactions of Mycobacterium abscessus
Elena Lian1, Juan M Belardinelli1, Kavita De1
1Mycobacteria Research Laboratories, Department of Microbiology, Immunology and Pathology, Colorado State University, Fort Collins, Colorado, USA.
Abstract:
Mycobacterium abscessus is one of the leading causes of pulmonary infections caused by non-tuberculous mycobacteria. The ability of M. abscessus to establish a chronic infection in the lung relies on a series of adaptive mutations impacting, in part, global regulators and cell envelope biosynthetic enzymes. One of the genes under strong evolutionary pressure during host adaptation is ubiA, which participates in the elaboration of the arabinan domains of two major cell envelope polysaccharides: arabinogalactan (AG) and lipoarabinomannan (LAM). We here show that patient-derived UbiA mutations not only cause alterations in the AG, LAM, and mycolic acid contents of M. abscessus but also tend to render the bacterium more prone to forming biofilms while evading uptake by innate immune cells and enhancing their pro-inflammatory properties. The fact that the effects of UbiA mutations on the physiology and pathogenicity of M. abscessus were impacted by the rough or smooth morphotype of the strain suggests that the timing of their selection relative to morphotype switching may be key to their ability to promote chronic persistence in the host.IMPORTANCEMultidrug-resistant pulmonary infections caused by Mycobacterium abscessus and subspecies are increasing in the U.S.A. and globally. Little is known of the mechanisms of pathogenicity of these microorganisms. We have identified single-nucleotide polymorphisms (SNPs) in a gene involved in the biosynthesis of two major cell envelope polysaccharides, arabinogalactan and lipoarabinomannan, in lung-adapted isolates from 13 patients. Introduction of these individual SNPs in a reference M. abscessus strain allowed us to study their impact on the physiology of the bacterium and its interactions with immune cells. The significance of our work is in identifying some of the mechanisms used by M. abscessus to colonize and persist in the human lung, which will facilitate the early detection of potentially more virulent clinical isolates and lead to new therapeutic strategies. Our findings may further have broader biomedical impacts, as the ubiA gene is conserved in other tuberculous and non-tuberculous mycobacterial pathogens.
Insights
Mutations in the ubiA gene help Mycobacterium abscessus cause chronic lung infections by altering its cell envelope and promoting biofilm formation. These changes impact immune evasion and inflammation, aiding persistence in the host.
Area of Science:
- Microbiology and Immunology
- Infectious Diseases
- Molecular Biology
Background:
- Mycobacterium abscessus causes increasing multidrug-resistant pulmonary infections globally.
- Mechanisms of M. abscessus pathogenicity and chronic lung infection persistence are poorly understood.
- The ubiA gene is crucial for synthesizing arabinogalactan (AG) and lipoarabinomannan (LAM), key cell envelope components.
Purpose of the Study:
- To investigate the role of ubiA gene mutations in M. abscessus adaptation and pathogenicity during chronic lung infections.
- To determine how patient-derived ubiA mutations affect M. abscessus cell envelope composition and immune cell interactions.
- To elucidate the impact of ubiA mutations on biofilm formation, immune cell evasion, and inflammatory responses.
Main Methods:
- Analysis of single-nucleotide polymorphisms (SNPs) in the ubiA gene from lung-adapted M. abscessus isolates.
- Introduction of specific ubiA SNPs into a reference M. abscessus strain to assess physiological and pathogenic impacts.
- Evaluation of changes in AG, LAM, and mycolic acid content, biofilm formation, immune cell uptake, and inflammatory responses.
Main Results:
- Patient-derived ubiA mutations altered AG, LAM, and mycolic acid content in M. abscessus.
- Mutations in ubiA increased biofilm formation and enhanced evasion of innate immune cell uptake.
- UbiA mutations also enhanced the pro-inflammatory properties of M. abscessus, with effects modulated by strain morphotype.
Conclusions:
- UbiA mutations are key adaptive events promoting M. abscessus chronic lung infection persistence.
- The timing of ubiA mutation selection relative to morphotype switching influences pathogenicity.
- Understanding ubiA's role facilitates early detection of virulent isolates and development of new therapeutic strategies for M. abscessus infections.
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