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Published on: September 15, 2020
Genomic characterization of a vancomycin-intermediate Staphylococcus aureus (VISA) small colony variant after
Noriko Urushibara1, Meiji Soe Aung1, Minoru Sakurada2
1Division of Hygiene, Department of Social Medicine, Sapporo Medical University School of Medicine, Sapporo, Japan.
Objectives:
Vancomycin (VCM)-intermediate Staphylococcus aureus (VISA) and small-colony variants (SCVs) are clinically important phenotypes that are frequently difficult to treat and commonly encountered in persistent or recurrent infections. We previously reported a VISA strain, HV2019-1, isolated during a relapse episode of pacemaker-associated bloodstream infection. In the present study, we further investigated its phenotypic characteristics and genomic background.
Methods:
Colony size, hemolytic activity, and pigmentation were quantitatively evaluated. To elucidate the genetic basis underlying the observed phenotype, whole-genome sequencing was performed and compared with that of a VCM-susceptible MRSA strain exhibiting a normal phenotype.
Results:
HV2019-1 formed small colonies on agar plates and displayed reduced hemolysis and pigmentation, consistent with characteristic features of S. aureus SCVs. Genome analysis identified multiple mutations, including 25 disrupted open reading frames and five missense variants affecting regulatory functions and surface-associated factors. Among these, six genes previously implicated in VISA-related traits were detected. In contrast, no high-impact mutations were observed in metabolic pathways classically linked to SCVs, such as fatty acid, hemin, menadione, or thymidylate biosynthesis.
Conclusion:
The absence of canonical metabolic defects characteristic of SCVs, together with widespread alterations in regulatory and surface genes, is aligned with the concept that SCVs represent heterogeneous adaptive phenotypes rather than phenotypes defined primarily by specific metabolic deficiencies. The strain described here provides an example of a bacterial response that may contribute to both resistance and persistence under prolonged antibiotic pressure.
Insights
Vancomycin-intermediate Staphylococcus aureus (VISA) and small-colony variants (SCVs) exhibit altered regulatory and surface genes, not canonical metabolic defects. This bacterial adaptation may drive antibiotic resistance and infection persistence.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Vancomycin-intermediate Staphylococcus aureus (VISA) and small-colony variants (SCVs) are challenging phenotypes in persistent infections.
- A previously identified VISA strain, HV2019-1, from a pacemaker-associated infection relapse was further studied.
Purpose of the Study:
- To investigate the phenotypic characteristics and genomic background of the VISA strain HV2019-1.
- To understand the genetic basis of VISA and SCV phenotypes in Staphylococcus aureus.
Main Methods:
- Quantitative evaluation of colony size, hemolysis, and pigmentation.
- Whole-genome sequencing of the VISA strain HV2019-1.
- Comparative genomic analysis with a vancomycin-susceptible MRSA strain.
Main Results:
- HV2019-1 exhibited small colonies, reduced hemolysis, and pigmentation, consistent with SCV features.
- Genome analysis revealed multiple mutations, including disruptions in regulatory and surface-associated genes.
- No significant mutations were found in classical SCV metabolic pathways.
Conclusions:
- SCVs represent heterogeneous adaptive phenotypes, not solely defined by metabolic deficiencies.
- The genetic alterations in HV2019-1 suggest a role in antibiotic resistance and infection persistence.
- This strain exemplifies bacterial adaptation under prolonged antibiotic pressure.
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