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Published on: February 23, 2021
Host Cell Oxidative Stress Promotes Intracellular Fluoroquinolone Persisters of Streptococcus pneumoniae
Mirelys Hernandez-Morfa1,2, Nicolás M Reinoso-Vizcaíno1,2, Nadia B Olivero1,2
1Centro de Investigaciones en Bioquímica Clínica e Inmunología (CIBICI)-Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Córdoba, Argentina.
Abstract:
Bacterial persisters represent a small subpopulation that tolerates high antibiotic concentrations without acquiring heritable resistance, and it may be generated by environmental factors. Here, we report the first antibiotic persistence mechanism in Streptococcus pneumoniae, which is induced by oxidative stress conditions and allows the pneumococcus to survive in the presence of fluoroquinolones. We demonstrated that fluoroquinolone persistence is prompted by both the impact of growth arrest and the oxidative stress response induced by H2O2 in bacterial cells. This process protected pneumococci against the deleterious effects of high ROS levels induced by fluoroquinolones. Importantly, S. pneumoniae develops persistence during infection, and is dependent on the oxidative stress status of the host cells, indicating that its transient intracellular life contributes to this mechanism. Furthermore, our findings suggest persistence may influence the outcome of antibiotic therapy and be part of a multistep mechanism in the evolution of fluoroquinolone resistance. IMPORTANCE In S. pneumoniae, different mechanisms that counteract antibiotic effects have been described, such as vancomycin tolerance, heteroresistance to penicillin and fluoroquinolone resistance, which critically affect the therapeutic efficacy. Antibiotic persistence is a type of antibiotic tolerance that allows a bacterial subpopulation to survive lethal antimicrobial concentrations. In this work, we used a host-cell infection model to reveal fluoroquinolone persistence in S. pneumoniae. This mechanism is induced by oxidative stress that the pneumococcus must overcome to survive in host cells. Many fluoroquinolones, such as levofloxacin and moxifloxacin, have a broad spectrum of activity against bacterial pathogens of community-acquired pneumonia, and they are used to treat pneumococcal diseases. However, the emergence of fluoroquinolone-resistant strains complicates antibiotic treatment of invasive infections. Consequently, antibiotic persistence in S. pneumoniae is clinically relevant due to prolonged exposure to fluoroquinolones likely favors the acquisition of mutations that generate antibiotic resistance in persisters. In addition, this work contributes to the knowledge of antibiotic persistence mechanisms in bacteria.
Insights
Bacterial persister cells in Streptococcus pneumoniae survive fluoroquinolone antibiotics by utilizing an oxidative stress response. This persistence mechanism, observed during host cell infection, may contribute to antibiotic resistance evolution.
Area of Science:
- Microbiology
- Bacterial Physiology
- Antibiotic Resistance
Background:
- Bacterial persisters are a subpopulation tolerant to antibiotics without genetic resistance.
- Oxidative stress is an environmental factor that can induce persistence.
- Streptococcus pneumoniae causes various infections, and fluoroquinolone resistance is a growing concern.
Purpose of the Study:
- To identify the first antibiotic persistence mechanism in Streptococcus pneumoniae.
- To investigate the role of oxidative stress in fluoroquinolone persistence.
- To explore the relevance of persistence during host cell infection and its link to resistance.
Main Methods:
- Utilized a host-cell infection model to study Streptococcus pneumoniae.
- Induced oxidative stress using hydrogen peroxide (H2O2).
- Assessed bacterial survival under fluoroquinolone exposure.
Main Results:
- Fluoroquinolone persistence in S. pneumoniae is induced by oxidative stress and growth arrest.
- This mechanism protects bacteria from reactive oxygen species (ROS) generated by fluoroquinolones.
- Persistence development is dependent on host cell oxidative status during infection.
Conclusions:
- Oxidative stress-induced persistence is a novel survival strategy for S. pneumoniae against fluoroquinolones.
- This transient intracellular persistence may facilitate the evolution of heritable fluoroquinolone resistance.
- Understanding persistence is crucial for combating pneumococcal infections and improving antibiotic therapy.
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