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Heuristic Mining of Hierarchical Genotypes and Accessory Genome Loci in Bacterial Populations
Published on: December 7, 2021
Molecular genetic anatomy of inter- and intraserotype variation in the human bacterial pathogen group A Streptococcus
Stephen B Beres1, Ellen W Richter, Michal J Nagiec
1Center for Molecular and Translational Human Infectious Diseases Research, The Methodist Hospital Research Institute, Houston, TX 77030, USA.
Abstract:
In recent years we have studied the relationship between strain genotypes and patient phenotypes in group A Streptococcus (GAS), a model human bacterial pathogen that causes extensive morbidity and mortality worldwide. We have concentrated our efforts on serotype M3 organisms because these strains are common causes of pharyngeal and invasive infections, produce unusually severe invasive infections, and can exhibit epidemic behavior. Our studies have been hindered by the lack of genome-scale phylogenies of multiple GAS strains and whole-genome sequences of multiple serotype M3 strains recovered from individuals with defined clinical phenotypes. To remove some of these impediments, we sequenced to closure the genome of four additional GAS strains and conducted comparative genomic resequencing of 12 contemporary serotype M3 strains representing distinct genotypes and phenotypes. Serotype M3 strains are a single phylogenetic lineage. Strains from asymptomatic throat carriers were significantly less virulent for mice than sterile-site isolates and evolved to a less virulent phenotype by multiple genetic pathways. Strain persistence or extinction between epidemics was strongly associated with presence or absence, respectively, of the prophage encoding streptococcal pyrogenic exotoxin A. A serotype M3 clone significantly underrepresented among necrotizing fasciitis cases has a unique frameshift mutation that truncates MtsR, a transcriptional regulator controlling expression of genes encoding iron-acquisition proteins. Expression microarray analysis of this clone confirmed significant alteration in expression of genes encoding iron metabolism proteins. Our analysis provided unprecedented detail about the molecular anatomy of bacterial strain genotype-patient phenotype relationships.
Insights
Group A Streptococcus (GAS) M3 strains show genetic diversity linked to disease severity. Virulence in GAS M3 strains is associated with specific genetic elements and regulatory mutations impacting iron metabolism.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Group A Streptococcus (GAS) causes significant global morbidity and mortality.
- Serotype M3 GAS strains are frequently implicated in pharyngeal and invasive infections, exhibiting epidemic potential.
- Previous research was limited by a lack of comprehensive genomic data for GAS strains and M3 isolates.
Purpose of the Study:
- To investigate the relationship between strain genotypes and patient phenotypes in Group A Streptococcus (GAS).
- To analyze the genomic diversity of serotype M3 GAS strains and their association with clinical outcomes.
- To identify genetic factors influencing GAS virulence and epidemic behavior.
Main Methods:
- Whole-genome sequencing of four additional GAS strains.
- Comparative genomic resequencing of 12 contemporary serotype M3 GAS strains.
- Virulence assays in mice and expression microarray analysis.
Main Results:
- Serotype M3 GAS strains represent a single phylogenetic lineage.
- Strains from asymptomatic carriers exhibited reduced virulence compared to sterile-site isolates.
- Presence of a specific prophage correlated with strain persistence, while a mutation in MtsR affected iron metabolism and was linked to reduced necrotizing fasciitis cases.
Conclusions:
- GAS M3 strain evolution involves multiple genetic pathways leading to altered virulence.
- Specific genetic elements, including prophages and regulatory mutations, significantly influence GAS strain behavior and disease association.
- Genomic analysis provides detailed insights into bacterial genotype-phenotype relationships in GAS infections.
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