The majority of 9,729 group A streptococcus strains causing disease secrete SpeB cysteine protease: pathogenesis
Randall J Olsen1, Anjali Raghuram2, Concepcion Cantu2
1Center for Molecular and Translational Human Infectious Diseases Research, Department of Pathology and Genomic Medicine, Houston Methodist Research Institute and Hospital System, Houston, Texas, USA rjolsen@houstonmethodist.org.
Abstract:
Group A streptococcus (GAS), the causative agent of pharyngitis and necrotizing fasciitis, secretes the potent cysteine protease SpeB. Several lines of evidence suggest that SpeB is an important virulence factor. SpeB is expressed in human infections, protects mice from lethal challenge when used as a vaccine, and contributes significantly to tissue destruction and dissemination in animal models. However, recent descriptions of mutations in genes implicated in SpeB production have led to the idea that GAS may be under selective pressure to decrease secreted SpeB protease activity during infection. Thus, two divergent hypotheses have been proposed. One postulates that SpeB is a key contributor to pathogenesis; the other, that GAS is under selection to decrease SpeB during infection. In order to distinguish between these alternative hypotheses, we performed casein hydrolysis assays to measure the SpeB protease activity secreted by 6,775 GAS strains recovered from infected humans. The results demonstrated that 84.3% of the strains have a wild-type SpeB protease phenotype. The availability of whole-genome sequence data allowed us to determine the relative frequencies of mutations in genes implicated in SpeB production. The most abundantly mutated genes were direct transcription regulators. We also sequenced the genomes of 2,954 GAS isolates recovered from nonhuman primates with experimental necrotizing fasciitis. No mutations that would result in a SpeB-deficient phenotype were identified. Taken together, these data unambiguously demonstrate that the great majority of GAS strains recovered from infected humans secrete wild-type levels of SpeB protease activity. Our data confirm the important role of SpeB in GAS pathogenesis and help end a long-standing controversy.
Insights
Group A Streptococcus (GAS) secretes SpeB protease, a key virulence factor. Most GAS strains from human infections maintain wild-type SpeB activity, confirming its role in pathogenesis.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Group A Streptococcus (GAS) produces SpeB, a cysteine protease implicated as a significant virulence factor.
- Evidence suggests SpeB contributes to tissue damage and dissemination, but conflicting hypotheses exist regarding GAS selection pressures on SpeB activity during infection.
Purpose of the Study:
- To resolve the debate on whether GAS is under selection to reduce SpeB protease activity during infection.
- To determine the prevalence of wild-type SpeB protease activity in GAS strains from human infections.
Main Methods:
- Casein hydrolysis assays were used to quantify SpeB protease activity in 6,775 GAS strains from human infections.
- Whole-genome sequencing was performed on GAS isolates from human and nonhuman primate infections to identify mutations in SpeB-related genes.
Main Results:
- 84.3% of GAS strains from human infections exhibited wild-type SpeB protease activity.
- Mutations in SpeB production genes primarily affected direct transcription regulators.
- No SpeB-deficient mutations were found in GAS isolates from nonhuman primates with experimental necrotizing fasciitis.
Conclusions:
- The vast majority of GAS strains from human infections secrete normal levels of SpeB protease.
- These findings reaffirm SpeB's crucial role in GAS pathogenesis and resolve the controversy surrounding its selective pressure.
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