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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
Genome Evolution of Invasive Methicillin-Resistant Staphylococcus aureus in the Americas
Joshua T Smith1,2, Elissa M Eckhardt3, Nicole B Hansel3
1Department of Molecular, Cellular and Biomedical Sciences, University of New Hampshire, Durham, New Hampshire, USA.
Abstract:
Staphylococcus aureus causes a variety of debilitating and life-threatening diseases, and thus remains a challenging global health threat. S. aureus is remarkably diverse, yet only a minority of methicillin-resistant S. aureus (MRSA) clones have caused pandemic proportions of diseases. The genetic drivers of the successful dissemination of some clones across wide geographical expanses remain poorly understood. We analyzed 386 recently published MRSA genomes from bloodstream infections sampled in North, Central, and South America from 2011 to 2018. Here, we show that MRSA-associated bloodstream infections were attributable to two genetically distinct lineages. One lineage consisted almost exclusively of sequence type (ST) 8, which emerged in 1964. A second lineage emerged in 1986 and consisted of STs 5, 105, and 231. The two lineages have simultaneously disseminated across geographically distant sites. Sublineages rapidly diverged within locations in the early 2000s. Their diversification was associated with independent acquisitions of unique variants of the mobile mecA-carrying chromosomal cassette and distinct repertoires of antimicrobial resistance genes. We show that the evolution and spread of invasive multidrug-resistant MRSA in the Americas was driven by transcontinental dissemination, followed by more recent establishment and divergence of local pathogen populations. Our study highlights the need for continued international surveillance of high-risk clones to control the global health threat of multidrug resistance. IMPORTANCE Bloodstream infections due to S. aureus cause significant patient morbidity and mortality worldwide, exacerbated by the emergence and spread of methicillin resistant S. aureus (MRSA). This study provides important insights on the evolution and long-distance geographic expansion of two distinct MRSA lineages that predominate in bloodstream infections in the past 5 decades. The success of these two lineages partly lies on their acquisition of a diverse set of antimicrobial resistance genes and of unique variants of the mobile genetic element SCCmec that carries the gene mecA conferring resistance to beta-lactams. High-risk antimicrobial resistant clones can therefore rapidly disseminate across long distances and establish within local communities within a short period of time. These results have important implications for global initiatives and local epidemiological efforts to monitor and control invasive MRSA infections and transcontinental spread of multidrug resistance.
Insights
Two distinct methicillin-resistant Staphylococcus aureus (MRSA) lineages, ST8 and ST5/105/231, have spread globally. Their success is linked to acquiring unique resistance genes and SCCmec variants, driving invasive infections.
Area of Science:
- Microbiology and Infectious Diseases
- Genomics and Evolutionary Biology
- Public Health and Epidemiology
Background:
- Staphylococcus aureus is a major cause of severe infections, with methicillin-resistant S. aureus (MRSA) posing a significant global health challenge.
- Understanding the genetic factors driving the pandemic spread of specific MRSA clones is crucial for effective control strategies.
Purpose of the Study:
- To investigate the genetic evolution and geographic dissemination of MRSA clones causing bloodstream infections in the Americas.
- To identify the key genetic elements contributing to the success and spread of dominant MRSA lineages.
Main Methods:
- Genomic analysis of 386 MRSA bloodstream infection isolates from North, Central, and South America (2011-2018).
- Phylogenetic analysis to identify distinct lineages and their emergence times.
- Comparative genomics to identify unique antimicrobial resistance genes and SCCmec variants.
Main Results:
- MRSA bloodstream infections were dominated by two distinct lineages: ST8 (emerged 1964) and a second lineage comprising STs 5, 105, and 231 (emerged 1986).
- These lineages disseminated across the Americas, with rapid local diversification in the early 2000s.
- Diversification was associated with the acquisition of unique SCCmec variants and distinct antimicrobial resistance gene repertoires.
Conclusions:
- Transcontinental dissemination followed by local establishment and divergence drove the evolution and spread of invasive, multidrug-resistant MRSA in the Americas.
- The acquisition of specific mobile genetic elements and resistance genes facilitated the success of these high-risk MRSA clones.
- Continued international surveillance of high-risk MRSA clones is essential to combat the global threat of antimicrobial resistance.
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