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Published on: February 24, 2023
Role of Vpma phase variation in Mycoplasma agalactiae pathogenesis
Rohini Chopra-Dewasthaly1, Martina Baumgartner, Erika Gamper
1Institute of Bacteriology, Mycology and Hygiene, Department of Pathobiology, University of Veterinary Medicine, Vienna, Austria. rohini.chopra-dewasthaly@vetmeduni.ac.at
Abstract:
Compared with other bacterial pathogens, the molecular mechanisms of mycoplasma pathogenicity are largely unknown. Several studies in the past have shown that pathogenic mycoplasmas are equipped with sophisticated genetic systems that allow them to undergo high-frequency surface antigenic variations. Although never clearly proven, these variable mycoplasma surface components are often implicated in host immune evasion and adaptation. Vpma surface lipoproteins of the ruminant pathogen Mycoplasma agalactiae are encoded on a genomic pathogenicity island-like locus and are considered as one of the well-characterized model systems of mycoplasma surface antigenic variation. The present study assesses the role of these phase-variable Vpmas in the molecular pathogenesis of M. agalactiae by testing the wild-type strain PG2 in comparison with the xer1-disrupted Vpma 'phase-locked' mutants in sheep infection models. The data clearly illustrate that although Xer1 recombinase is not a virulence factor of M. agalactiae and Vpma phase variation is not necessary for establishing an infection, it might critically influence the survival and persistence of the pathogen under natural field conditions, mainly due to a better capacity for dissemination and evoking systemic responses. This is the first study where mycoplasma 'phase-locked' mutants are tested in vivo to elucidate the role of phase variation during infection.
Insights
Mycoplasma agalactiae surface variation (Vpma) is not essential for initiating infections but aids pathogen survival and spread. Phase-locked mutants reveal Vpma
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Molecular mechanisms of mycoplasma pathogenicity remain largely unknown.
- Pathogenic mycoplasmas utilize surface antigenic variation for immune evasion and adaptation.
- Vpma surface lipoproteins in Mycoplasma agalactiae serve as a model for studying surface variation.
Purpose of the Study:
- To investigate the role of phase-variable Vpma lipoproteins in the molecular pathogenesis of Mycoplasma agalactiae.
- To assess the impact of Vpma phase variation on infection establishment, survival, and host response in vivo.
Main Methods:
- Comparison of wild-type Mycoplasma agalactiae PG2 with xer1-disrupted Vpma 'phase-locked' mutants.
- Infection models using sheep to evaluate pathogen behavior and host response.
Main Results:
- Xer1 recombinase is not a virulence factor in Mycoplasma agalactiae.
- Vpma phase variation is not required for establishing infection.
- Phase variation significantly influences pathogen survival, dissemination, and systemic response under natural conditions.
Conclusions:
- Mycoplasma agalactiae Vpma phase variation is crucial for pathogen persistence and adaptation in vivo.
- This study provides the first in vivo assessment of mycoplasma 'phase-locked' mutants to understand the role of phase variation during infection.
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