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Antibiotic Tolerance Indicative of Persistence Is Pervasive among Clinical Streptococcus pneumoniae Isolates and
Nele Geerts1, Linda De Vooght1, Ioannis Passaris2
1Laboratory for Microbiology, Parasitology and Hygiene (LMPH), Wilrijk, Belgium.
Abstract:
Streptococcus pneumoniae is an important human pathogen, being one of the most common causes of community-acquired pneumonia and otitis media. Antibiotic resistance in S. pneumoniae is an emerging problem, as it depletes our arsenal of effective drugs. In addition, persistence also contributes to the antibiotic crisis in many other pathogens, yet for S. pneumoniae, little is known about antibiotic-tolerant persisters and robust experimental means are lacking. Persister cells are phenotypic variants that exist as a subpopulation within a clonal culture. Being tolerant to lethal antibiotics, they underly the chronic nature of a variety of infections and even help in acquiring genetic resistance. In this study, we set out to identify and characterize persistence in S. pneumoniae. Specifically, we followed different strategies to overcome the self-limiting nature of S. pneumoniae as a confounding factor in the prolonged monitoring of antibiotic survival needed to study persistence. Under optimized conditions, we identified genuine persisters in various growth phases and for four relevant antibiotics through biphasic survival dynamics and heritability assays. Finally, we detected a high variety in antibiotic survival levels across a diverse collection of S. pneumoniae clinical isolates, which assumes that a high natural diversity in persistence is widely present in S. pneumoniae. Collectively, this proof of concept significantly progresses the understanding of the importance of antibiotic persistence in S. pneumoniae infections, which will set the stage for characterizing its relevance to clinical outcomes and advocates for increased attention to the phenotype in both fundamental and clinical research. IMPORTANCE S. pneumoniae is considered a serious threat by the Centers for Disease Control and Prevention because of rising antibiotic resistance. In addition to resistance, bacteria can also survive lethal antibiotic treatment by developing antibiotic tolerance, more specifically, antibiotic tolerance through persistence. This phenotypic variation seems omnipresent among bacterial life, is linked to therapy failure, and acts as a catalyst for resistance development. This study gives the first proof of the presence of persister cells in S. pneumoniae and shows a high variety in persistence levels among diverse strains, suggesting that persistence is a general trait in S. pneumoniae cultures. Our work advocates for higher interest for persistence in S. pneumoniae as a contributing factor for therapy failure and resistance development.
Insights
This study identifies antibiotic-tolerant persister cells in Streptococcus pneumoniae, a major cause of pneumonia. These persisters contribute to treatment failure and antibiotic resistance, highlighting a critical area for future research.
Area of Science:
- Microbiology
- Infectious Diseases
- Antimicrobial Resistance
Background:
- Streptococcus pneumoniae causes pneumonia and otitis media, with rising antibiotic resistance posing a significant threat.
- Antibiotic-tolerant persister cells, known to cause chronic infections and promote resistance in other pathogens, are poorly understood in S. pneumoniae.
- Lack of robust experimental methods has hindered the study of persistence in S. pneumoniae.
Purpose of the Study:
- To identify and characterize antibiotic persistence in Streptococcus pneumoniae.
- To develop and apply experimental strategies to overcome challenges in studying S. pneumoniae survival under antibiotic pressure.
- To investigate the prevalence and diversity of persistence across clinical isolates of S. pneumoniae.
Main Methods:
- Developed optimized conditions to enable prolonged monitoring of antibiotic survival.
- Employed biphasic survival dynamics and heritability assays to identify genuine persisters.
- Tested persistence across various growth phases and against four relevant antibiotics.
Main Results:
- Successfully identified genuine persister cells in Streptococcus pneumoniae under optimized conditions.
- Demonstrated persistence across different growth phases and against multiple antibiotics.
- Revealed significant variation in antibiotic survival levels among diverse clinical isolates, indicating widespread natural diversity in persistence.
Conclusions:
- This study provides the first evidence for the existence of persister cells in S. pneumoniae.
- The findings suggest that persistence is a general trait in S. pneumoniae, with high natural diversity among strains.
- Increased attention to antibiotic persistence is crucial for understanding therapy failure and resistance development in S. pneumoniae infections.
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