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Conjunctival Commensal Isolation and Identification in Mice
Published on: May 1, 2021
The Bacterial Markers of Identification of Invasive CovR/CovS-Inactivated Group A Streptococcus
Yong-An Shi1, Tzu-Ching Chen2, Yan-Wen Chen3
1Graduate Institute of Biomedical Sciences, College of Medicine, Chang Gung Universitygrid.145695.a, Taoyuan, Taiwan.
Abstract:
Necrotizing fasciitis is a severe infectious disease that results in significant mortality. Streptococcus pyogenes (group A Streptococcus, GAS) is one of the most common bacterial pathogens of monomicrobial necrotizing fasciitis. The early diagnosis of necrotizing fasciitis is crucial; however, the typical cutaneous manifestations are not always presented in patients with GAS necrotizing fasciitis, which would lead to miss- or delayed diagnosis. GAS with spontaneous inactivating mutations in the CovR/CovS two-component regulatory system is significantly associated with destructive diseases such as necrotizing fasciitis and toxic shock syndrome; however, no specific marker has been used to identify these invasive clinical isolates. This study evaluated the sensitivity and specificity of using CovR/CovS-controlled phenotypes to identify CovR/CovS-inactivated isolates. Results showed that the increase of hyaluronic acid capsule production and streptolysin O expression were not consistently presented in CovS-inactivated clinical isolates. The repression of SpeB is the phenotype with 100% sensitivity of identifying in CovS-inactivated isolates among 61 clinical isolates. Nonetheless, this phenotype failed to distinguish RopB-inactivated isolates from CovS-inactivated isolates and cannot be utilized to identify CovR-inactivated mutant and RocA (Regulator of Cov)-inactivated isolates. In this study, we identified and verified that PepO, the endopeptidase which regulates SpeB expression through degrading SpeB-inducing quorum-sensing peptide, was a bacterial marker to identify isolates with defects in the CovR/CovS pathway. These results also inform the potential strategy of developing rapid detection methods to identify invasive GAS variants during infection. IMPORTANCE Necrotizing fasciitis is rapidly progressive and life-threatening; if the initial diagnosis is delayed, deep soft tissue infection can progress to massive tissue destruction and toxic shock syndrome. Group A Streptococcus (GAS) with inactivated mutations in the CovR/CovS two-component regulatory system are related to necrotizing fasciitis and toxic shock syndrome; however, no bacterial marker is available to identify these invasive clinical isolates. Inactivation of CovR/CovS resulted in the increased expression of endopeptidase PepO. Our study showed that the upregulation of PepO mediates a decrease in SpeB-inducing peptide (SIP) in the covR mutant, indicating that CovR/CovS modulates SIP-dependent quorum-sensing activity through PepO. Importantly, the sensitivity and specificity of utilizing PepO to identify clinical isolates with defects in the CovR/CovS pathway, including its upstream RocA regulator, were 100%. Our results suggest that identification of invasive GAS by PepO may be a strategy for preventing severe manifestation or poor prognosis after GAS infection.
Insights
A new bacterial marker, PepO, can identify invasive Group A Streptococcus (GAS) strains linked to severe diseases like necrotizing fasciitis. This discovery aids in early detection and prevention of severe GAS infections.
Area of Science:
- Microbiology
- Infectious Diseases
- Bacterial Pathogenesis
Background:
- Necrotizing fasciitis is a severe, life-threatening infection often caused by Group A Streptococcus (GAS).
- Early diagnosis of GAS necrotizing fasciitis is critical but challenging due to atypical presentations.
- GAS strains with mutations in the CovR/CovS system are linked to severe invasive diseases, but lack a specific marker.
Purpose of the Study:
- To evaluate phenotypes for identifying GAS isolates with inactivated CovR/CovS systems.
- To identify a reliable bacterial marker for invasive GAS strains with CovR/CovS pathway defects.
Main Methods:
- Assessed the sensitivity and specificity of CovR/CovS-controlled phenotypes (hyaluronic acid capsule, streptolysin O, SpeB) in 61 clinical GAS isolates.
- Investigated the role of endopeptidase PepO in regulating SpeB expression and its correlation with CovR/CovS inactivation.
- Verified PepO as a marker for identifying GAS isolates with defects in the CovR/CovS pathway and its regulator RocA.
Main Results:
- Repression of SpeB showed 100% sensitivity for CovS-inactivated isolates but could not distinguish other mutant types.
- PepO, an endopeptidase, was identified as a reliable marker for GAS isolates with CovR/CovS pathway defects.
- PepO demonstrated 100% sensitivity and specificity in identifying clinical isolates with CovR/CovS or RocA pathway defects.
Conclusions:
- PepO is a validated bacterial marker for identifying invasive GAS strains with CovR/CovS pathway inactivation.
- PepO-based detection offers a potential strategy for early identification of invasive GAS variants.
- This finding can aid in preventing severe manifestations and improving outcomes of GAS infections.

