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Published on: September 11, 2020
Genome sequence of a nephritogenic and highly transformable M49 strain of Streptococcus pyogenes
W Michael McShan1, Joseph J Ferretti, Tadahiro Karasawa
1Department of Pharmaceutical Sciences, University of Oklahoma Health Sciences Center, P.O. Box 26901, CPB307, Oklahoma City, OK, USA. William-McShan@ouhsc.edu
Abstract:
The 1,815,783-bp genome of a serotype M49 strain of Streptococcus pyogenes (group A streptococcus [GAS]), strain NZ131, has been determined. This GAS strain (FCT type 3; emm pattern E), originally isolated from a case of acute post-streptococcal glomerulonephritis, is unusually competent for electrotransformation and has been used extensively as a model organism for both basic genetic and pathogenesis investigations. As with the previously sequenced S. pyogenes genomes, three unique prophages are a major source of genetic diversity. Two clustered regularly interspaced short palindromic repeat (CRISPR) regions were present in the genome, providing genetic information on previous prophage encounters. A unique cluster of genes was found in the pathogenicity island-like emm region that included a novel Nudix hydrolase, and, further, this cluster appears to be specific for serotype M49 and M82 strains. Nudix hydrolases eliminate potentially hazardous materials or prevent the unbalanced accumulation of normal metabolites; in bacteria, these enzymes may play a role in host cell invasion. Since M49 S. pyogenes strains have been known to be associated with skin infections, the Nudix hydrolase and its associated genes may have a role in facilitating survival in an environment that is more variable and unpredictable than the uniform warmth and moisture of the throat. The genome of NZ131 continues to shed light upon the evolutionary history of this human pathogen. Apparent horizontal transfer of genetic material has led to the existence of highly variable virulence-associated regions that are marked by multiple rearrangements and genetic diversification while other regions, even those associated with virulence, vary little between genomes. The genome regions that encode surface gene products that will interact with host targets or aid in immune avoidance are the ones that display the most sequence diversity. Thus, while natural selection favors stability in much of the genome, it favors diversity in these regions.
Insights
The Streptococcus pyogenes (GAS) M49 strain NZ131 genome reveals unique genes, including a novel Nudix hydrolase, potentially aiding skin infection survival. This study enhances understanding of GAS evolution and virulence factors.
Area of Science:
- Microbiology
- Genomics
- Pathogenesis
Background:
- Streptococcus pyogenes (GAS) is a significant human pathogen.
- Strain NZ131 (serotype M49) is a well-characterized model organism for GAS research.
- Previous genomic studies have highlighted prophages as key drivers of genetic diversity in GAS.
Purpose of the Study:
- To determine the complete genome sequence of Streptococcus pyogenes serotype M49 strain NZ131.
- To identify novel genes and genetic elements contributing to GAS virulence and evolution.
- To investigate the role of specific genes, such as Nudix hydrolase, in GAS adaptation and pathogenesis.
Main Methods:
- Whole-genome sequencing of Streptococcus pyogenes strain NZ131.
- Bioinformatic analysis to identify genes, prophages, CRISPR regions, and pathogenicity islands.
- Comparative genomic analysis to understand genetic diversity and evolutionary history.
Main Results:
- The 1,815,783-bp genome of S. pyogenes NZ131 was sequenced.
- Three unique prophages and two CRISPR regions were identified, indicating past viral encounters.
- A novel Nudix hydrolase gene cluster, specific to M49 and M82 strains, was discovered within an emm region.
- Highly variable virulence-associated regions, particularly those encoding surface proteins, were observed, contrasting with stable genomic regions.
Conclusions:
- The NZ131 genome provides insights into the evolutionary dynamics of Streptococcus pyogenes.
- The novel Nudix hydrolase may play a role in GAS adaptation to variable environments, such as skin infections.
- Genomic diversity, driven by horizontal gene transfer and rearrangements, is concentrated in regions encoding host-interacting surface proteins, facilitating immune evasion and adaptation.
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