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A Fluorescence-based Method to Study Bacterial Gene Regulation in Infected Tissues
Published on: February 19, 2019
Prophages and adaptation of Staphylococcus aureus ST398 to the human clinic
Seydina M Diene1, Anna Rita Corvaglia1, Patrice François2
1Genomic Research Laboratory, Service of Infectious Diseases, Geneva University Hospitals, Geneva, Switzerland.
Background:
It has been suggested that prophages in the ST398 S. aureus clone are responsible for expanding ST398's spectrum of action and increasing its ability to cause human infections. We carried out the first characterization of the various prophages carried by 76 ST398 bloodstream infection (BSI) isolates obtained over 9 years of observation.
Results:
Whole-genome sequencing of 22 representative isolates showed (1) the presence of the φ3-prophage and diverse genetic features typical of animal-associated isolates (i.e., SCCmec XI element, Tn916 transposon and non φ3-prophages) in a majority of BSI isolates, (2) one BSI isolate devoid of the φ3-prophage but otherwise similar to an animal-infecting isolate, (3) 35 prophages carrying numerous genes previously associated with virulence or immune evasion in animal models of staphylococcal infections. The analysis of prophage content in all 76 BSI isolates showed an increasing prevalence of polylysogeny over time. Overall, over the course of the last 10 years, the BSI isolates appear to have acquired increasing numbers of genetic features previously shown to contribute to bacterial adaptation and virulence in animal models of staphylococcal infections.
Conclusions:
We hypothesize that lysogeny has played a significant role in increasing the ability of the ST398 clone to cause infections in humans. Our findings highlight the risk that the ST398 lineage will increase its threat to public health by continuing to acquire virulence and/or multiple antibiotic-resistance genes from hospital-associated clones of Staphylococcus aureus.
Insights
Prophages in Staphylococcus aureus ST398 (S. aureus) bloodstream infections (BSI) are linked to increased virulence and human infections. Over time, these bacterial isolates acquired more genes contributing to adaptation and virulence, posing a public health risk.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Prophages within the ST398 Staphylococcus aureus (S. aureus) clone are suspected of enhancing its virulence and human infectivity.
- This study provides the first characterization of prophages in 76 ST398 bloodstream infection (BSI) isolates collected over nine years.
Purpose of the Study:
- To characterize the prophage content of ST398 S. aureus bloodstream infection isolates.
- To investigate the role of prophages and lysogeny in the adaptation and virulence of ST398 S. aureus in human infections.
Main Methods:
- Whole-genome sequencing of 22 representative ST398 BSI isolates.
- Analysis of prophage content in all 76 ST398 BSI isolates.
- Examination of genetic features associated with animal isolates and virulence genes.
Main Results:
- A majority of ST398 BSI isolates contained the φ3-prophage, animal-associated genetic features (SCCmec XI, Tn916), and other prophages.
- 35 prophages harbored genes linked to virulence and immune evasion in staphylococcal infections.
- An increasing prevalence of polylysogeny was observed in ST398 BSI isolates over time, indicating acquisition of adaptive and virulence-associated genes.
Conclusions:
- Lysogeny likely plays a significant role in the ST398 clone's enhanced ability to cause human infections.
- The ST398 lineage poses a growing public health risk due to the potential acquisition of virulence and antibiotic resistance genes from hospital-associated S. aureus.
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