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Real-Time Quantification of Reactive Oxygen Species in Neutrophils Infected with Meningitic Escherichia Coli
Published on: April 20, 2021
Neutrophil-derived reactive agents induce a transient SpeB negative phenotype in Streptococcus pyogenes
Patience Shumba1, Thomas Sura2, Kirsten Moll3
1Department of Molecular Genetics and Infection Biology, University of Greifswald, Greifswald, Germany.
Background:
Streptococcus pyogenes (group A streptococci; GAS) is the main causative pathogen of monomicrobial necrotizing soft tissue infections (NSTIs). To resist immuno-clearance, GAS adapt their genetic information and/or phenotype to the surrounding environment. Hyper-virulent streptococcal pyrogenic exotoxin B (SpeB) negative variants caused by covRS mutations are enriched during infection. A key driving force for this process is the bacterial Sda1 DNase.
Methods:
Bacterial infiltration, immune cell influx, tissue necrosis and inflammation in patient´s biopsies were determined using immunohistochemistry. SpeB secretion and activity by GAS post infections or challenges with reactive agents were determined via Western blot or casein agar and proteolytic activity assays, respectively. Proteome of GAS single colonies and neutrophil secretome were profiled, using mass spectrometry.
Results:
Here, we identify another strategy resulting in SpeB-negative variants, namely reversible abrogation of SpeB secretion triggered by neutrophil effector molecules. Analysis of NSTI patient tissue biopsies revealed that tissue inflammation, neutrophil influx, and degranulation positively correlate with increasing frequency of SpeB-negative GAS clones. Using single colony proteomics, we show that GAS isolated directly from tissue express but do not secrete SpeB. Once the tissue pressure is lifted, GAS regain SpeB secreting function. Neutrophils were identified as the main immune cells responsible for the observed phenotype. Subsequent analyses identified hydrogen peroxide and hypochlorous acid as reactive agents driving this phenotypic GAS adaptation to the tissue environment. SpeB-negative GAS show improved survival within neutrophils and induce increased degranulation.
Conclusions:
Our findings provide new information about GAS fitness and heterogeneity in the soft tissue milieu and provide new potential targets for therapeutic intervention in NSTIs.
Insights
Neutrophils trigger Streptococcus pyogenes to become SpeB-negative, enhancing survival in infections. This adaptation, driven by neutrophil molecules, offers new therapeutic targets for necrotizing soft tissue infections (NSTIs).
Area of Science:
- Microbiology
- Immunology
- Pathogenesis
Background:
- Streptococcus pyogenes (GAS) causes necrotizing soft tissue infections (NSTIs).
- GAS adapts to evade immune clearance, often by downregulating virulence factors like streptococcal pyrogenic exotoxin B (SpeB).
- CovRS mutations and Sda1 DNase are known drivers of SpeB-negative variants.
Purpose of the Study:
- To investigate an alternative mechanism for generating SpeB-negative GAS variants.
- To understand the role of neutrophils in GAS adaptation during NSTIs.
- To identify therapeutic targets for NSTIs.
Main Methods:
- Immunohistochemistry on patient biopsies to assess bacterial and immune cell infiltration, necrosis, and inflammation.
- Western blot, casein agar, and proteolytic activity assays to determine SpeB secretion and activity.
- Mass spectrometry to profile GAS proteome and neutrophil secretome.
Main Results:
- Neutrophil effector molecules reversibly inhibit SpeB secretion in GAS.
- Increased frequency of SpeB-negative GAS clones correlates with inflammation and neutrophil activity in NSTI patients.
- GAS isolated from tissue express but do not secrete SpeB; function is regained upon removal from tissue pressure.
- Hydrogen peroxide and hypochlorous acid identified as key neutrophil-derived agents inducing this phenotype.
- SpeB-negative GAS exhibit enhanced survival within neutrophils and promote further degranulation.
Conclusions:
- Neutrophils employ effector molecules to induce a reversible SpeB-negative phenotype in GAS, aiding bacterial survival in NSTIs.
- This neutrophil-mediated adaptation highlights GAS heterogeneity and fitness strategies within the soft tissue environment.
- The findings present novel targets for therapeutic interventions against GAS NSTIs.
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