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Multiplex PCR Assay for Typing of Staphylococcal Cassette Chromosome Mec Types I to V in Methicillin-resistant Staphylococcus aureus
Published on: September 5, 2013
Mobile genetic element-driven genomic changes in a community-associated methicillin-resistant Staphylococcus aureus
Katsuyuki Katahira1,2,3, Yasuhiro Gotoh1, Kentaro Kasama1
1Department of Bacteriology, Graduate School of Medical Sciences, Kyushu University, Higashi-ku, Fukuoka 812-8582, Japan.
Abstract:
Community-associated methicillin-resistant Staphylococcus aureus (CA-MRSA) infections are now a public health concern in both community and healthcare settings worldwide. We previously identified a suspected case of a maternity clinic-centred outbreak of CA-MRSA skin infection in a regional community in Japan by PFGE-based analysis. In this study, we performed genome sequence-based analyses of 151 CA-MRSA isolates, which included not only outbreak-related isolates that we previously defined based on identical or similar PFGE patterns but also other isolates obtained during the same period in the same region. Our analysis accurately defined 133 isolates as outbreak-related isolates, collectively called the TDC clone. They belonged to a CA-MRSA lineage in clonal complex (CC) 30, known as the South West Pacific (SWP) clone. A high-resolution phylogenetic analysis of these isolates combined with their epidemiological data revealed that the TDC clone was already present and circulating in the region before the outbreak was recognized, and only the isolates belonging to two sublineages (named SL4 and SL5) were directly involved in the outbreak. Long persistence in patients/carriers and frequent intrahousehold transmission of the TDC clone were also revealed by this analysis. Moreover, by systematic analyses of the genome changes that occurred in this CA-MRSA clone during transmission in the community, we revealed that most variations were associated with mobile genetic elements (MGEs). Variant PFGE types were generated by alterations of prophages and genomic islands or insertion sequence (IS)-mediated insertion of a plasmid or a sequence of unknown origin. Dynamic changes in plasmid content, which were linked to changes in antimicrobial resistance profiles in specific isolates, were generated by frequent gain and loss of plasmids, most of which were self-transmissible or mobilizable. The introduction of IS256 by a plasmid (named pTDC02) into sublineage SL5 led to SL5-specific amplification of IS256, and amplified IS256 copies were involved in some of the structural changes of chromosomes and plasmids and generated variations in the repertoire of virulence-related genes in limited isolates. These data revealed how CA-MRSA genomes change during transmission in the community and how MGEs are involved in this process.
Insights
Community-associated methicillin-resistant Staphylococcus aureus (CA-MRSA) infections are a global concern. Genome analysis revealed that a specific CA-MRSA clone circulated before an outbreak, with mobile genetic elements driving genomic changes during transmission.
Area of Science:
- Microbiology
- Genomics
- Epidemiology
Background:
- Community-associated methicillin-resistant Staphylococcus aureus (CA-MRSA) poses a significant public health threat worldwide.
- Previous PFGE analysis suggested a CA-MRSA outbreak linked to a maternity clinic in Japan.
Purpose of the Study:
- To perform genome sequence-based analyses of CA-MRSA isolates to accurately define outbreak-related strains.
- To investigate the evolutionary dynamics and transmission patterns of CA-MRSA during community spread.
- To identify the role of mobile genetic elements in CA-MRSA genome evolution.
Main Methods:
- Genome sequencing of 151 CA-MRSA isolates from a Japanese regional community.
- High-resolution phylogenetic analysis combined with epidemiological data.
- Systematic analysis of genome changes, mobile genetic elements, and plasmid dynamics.
Main Results:
- 133 isolates were identified as outbreak-related, belonging to the TDC clone (CC30, SWP clone).
- The TDC clone was circulating prior to the recognized outbreak, with two sublineages (SL4, SL5) involved.
- Mobile genetic elements, including prophages, genomic islands, and plasmids, were key drivers of CA-MRSA genome variation and antimicrobial resistance changes.
Conclusions:
- CA-MRSA genomes evolve dynamically through mobile genetic elements during community transmission.
- Understanding these genomic changes is crucial for controlling CA-MRSA spread and managing infections.
- The study highlights the importance of genomic surveillance in tracking and understanding bacterial outbreaks.
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