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Updated: Aug 27, 2025

Development and Assessment of Intracellular Infection Models for Staphylococcus aureus
Published on: January 17, 2025
Functional mgrA Influences Genetic Changes within a Staphylococcus aureus Cell Population over Time
James Lee1,2,3, Miguel Carda-Diéguez4, Miglė Žiemytė4
1Department of Molecular and Biomedical Sciences, School of Biological Sciences, The University of Adelaidegrid.1010.0, Adelaide, South Australia, Australia.
Abstract:
Prolonged survival in the host-bacteria microenvironment drives the selection of alternative cell types in Staphylococcus aureus, permitting quasi-dormant sub-populations to develop. These facilitate antibiotic tolerance, long-term growth, and relapse of infection. Small Colony Variants (SCV) are an important cell type associated with persistent infection but are difficult to study in vitro due to the instability of the phenotype and reversion to the normal cell type. We have previously reported that under conditions of growth in continuous culture over a prolonged culture time, SCVs dominated a heterogenous population of cell types and these SCVs harbored a mutation in the DNA binding domain of the gene for the transcription factor, mgrA. To investigate this specific cell type further, S. aureus WCH-SK2-ΔmgrA itself was assessed with continuous culture. Compared to the wild type, the mgrA mutant strain required fewer generations to select for SCVs. There was an increased rate of mutagenesis within the ΔmgrA strain compared to the wild type, which we postulate is the mechanism explaining the increased emergence of SCV selection. The mgrA derived SCVs had impeded metabolism, altered MIC to specific antibiotics and an increased biofilm formation compared to non-SCV strain. Whole genomic sequencing detected single nucleotide polymorphisms (SNP) in phosphoglucosamine mutase glmM and tyrosine recombinase xerC. In addition, several genomic rearrangements were detected which affected genes involved in important functions such as antibiotic and toxic metal resistance and pathogenicity. Thus, we propose a direct link between mgrA and the SCV phenotype. IMPORTANCE Within a bacterial population, a stochastically generated heterogeneity of phenotypes allows continual survival against current and future stressors. The generation of a sub-population of quasi-dormant Small Colony Variants (SCV) in Staphylococcus aureus is such a mechanism, allowing for persistent or relapse of infection despite initial intervention seemingly clearing the infection. The use of continuous culture under clinically relevant conditions has allowed us to introduce time to the growth system and selects SCV within the population. This study provides valuable insights into the generation of SCV which are not addressed in standard laboratory generated models and reveals new pathways for understanding persistent S. aureus infection which can potentially be targeted in future treatments of persistent S. aureus infection.
Insights
Small Colony Variants (SCVs) in Staphylococcus aureus are linked to persistent infections. A mutation in the mgrA gene accelerates SCV development, leading to altered antibiotic resistance and increased biofilm formation, offering new therapeutic targets.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Genetics
Background:
- Staphylococcus aureus can develop alternative cell types, including Small Colony Variants (SCVs), which are associated with persistent infections and antibiotic tolerance.
- SCVs are difficult to study due to phenotypic instability and reversion to normal cell types.
- Previous work identified SCVs with mutations in the transcription factor mgrA in prolonged continuous culture.
Purpose of the Study:
- To investigate the role of the mgrA gene in the selection and characteristics of Staphylococcus aureus SCVs.
- To understand the mechanisms driving SCV emergence and their impact on bacterial behavior.
Main Methods:
- Continuous culture of wild-type and ΔmgrA mutant Staphylococcus aureus strains.
- Assessment of SCV emergence rates and phenotypic characteristics (metabolism, antibiotic MIC, biofilm formation).
- Whole-genome sequencing to identify genetic mutations and rearrangements in SCVs.
Main Results:
- The ΔmgrA mutant strain showed a faster selection of SCVs compared to the wild type, with increased mutagenesis.
- mgrA-derived SCVs exhibited impaired metabolism, altered minimum inhibitory concentrations (MICs) to certain antibiotics, and enhanced biofilm formation.
- Genomic analysis revealed SNPs in glmM and xerC, along with rearrangements affecting antibiotic resistance and pathogenicity genes.
Conclusions:
- A direct link between mgrA deficiency and the SCV phenotype in Staphylococcus aureus is established.
- The study highlights mgrA's role in regulating mutagenesis and SCV emergence, providing insights into persistent infections.
- Findings suggest mgrA-derived SCVs possess traits contributing to infection persistence and may represent a target for novel therapeutic strategies.
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