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Published on: November 23, 2012
Genomic insights on DNase production in Streptococcus agalactiae ST17 and ST19 strains
Inês Silvestre1, Alexandra Nunes2, Vítor Borges3
1Department of Life Sciences, UCIBIO, Nova School of Science and Technology, 2829-516 Caparica, Portugal; National Reference Laboratory for Sexually Transmitted Infections, Department of Infectious Diseases, National Institute of Health, Avenida Padre Cruz, 1649-016 Lisbon, Portugal.
Abstract:
Streptococcus agalactiae evasion from the human defense mechanisms has been linked to the production of DNases. These were proposed to contribute to the hypervirulence of S. agalactiae ST17/capsular-type III strains, mostly associated with neonatal meningitis. We performed a comparative genomic analysis between ST17 and ST19 human strains with different cell tropism and distinct DNase production phenotypes. All S. agalactiae ST17 strains, with the exception of 2211-04, were found to display DNase activity, while the opposite scenario was observed for ST19, where 1203-05 was the only DNase(+) strain. The analysis of the genetic variability of the seven genes putatively encoding secreted DNases in S. agalactiae revealed an exclusive amino acid change in the predicted signal peptide of GBS0661 (NucA) of the ST17 DNase(-), and an exclusive amino acid change alteration in GBS0609 of the ST19 DNase(+) strain. Further core-genome analysis identified some specificities (SNVs or indels) differentiating the DNase(-) ST17 2211-04 and the DNase(+) ST19 1203-05 from the remaining strains of each ST. The pan-genomic analysis evidenced an intact phage without homology in S. agalactiae and a transposon homologous to TnGBS2.3 in ST17 DNase(-) 2211-04; the transposon was also found in one ST17 DNase(+) strain, yet with a different site of insertion. A group of nine accessory genes were identified among all ST17 DNase(+) strains, including the Eco47II family restriction endonuclease and the C-5 cytosine-specific DNA methylase. None of these loci was found in any DNase(-) strain, which may suggest that these proteins might contribute to the lack of DNase activity. In summary, we provide novel insights on the genetic diversity between DNase(+) and DNase(-) strains, and identified genetic traits, namely specific mutations affecting predicted DNases (NucA and GBS0609) and differences in the accessory genome, that need further investigation as they may justify distinct DNase-related virulence phenotypes in S. agalactiae.
Insights
Streptococcus agalactiae strains show varied DNase production linked to virulence. Genetic analysis reveals specific mutations in DNases and accessory genes differentiate DNase-positive and negative strains, impacting neonatal meningitis risk.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Streptococcus agalactiae (Group B Streptococcus) evasion of human defenses is linked to DNase production.
- DNases are proposed to enhance the hypervirulence of ST17/capsular-type III strains, particularly in neonatal meningitis.
- Distinct DNase production phenotypes exist between different S. agalactiae strains, influencing their pathogenicity.
Purpose of the Study:
- To conduct a comparative genomic analysis of ST17 and ST19 S. agalactiae strains.
- To investigate the genetic basis for differing DNase production and its correlation with virulence phenotypes.
- To identify specific genetic traits associated with DNase activity and strain tropism.
Main Methods:
- Comparative genomic analysis of ST17 and ST19 human S. agalactiae strains.
- Analysis of genetic variability in seven putative secreted DNase genes.
- Core-genome and pan-genomic analyses to identify single nucleotide variations (SNVs), indels, phages, and transposons.
- Identification of accessory genes in DNase-positive strains.
Main Results:
- Most ST17 strains exhibited DNase activity, while only one ST19 strain did.
- Specific amino acid changes were identified in NucA (GBS0661) of a DNase-negative ST17 strain and in GBS0609 of a DNase-positive ST19 strain.
- Unique genetic elements, including a phage and a transposon, were found in specific strains.
- A group of nine accessory genes, including restriction-modification system components, were exclusively present in DNase-positive ST17 strains.
Conclusions:
- Novel insights into the genetic diversity between DNase-positive and DNase-negative S. agalactiae strains were provided.
- Specific mutations in NucA and GBS0609, along with accessory genome differences, may explain distinct DNase-related virulence phenotypes.
- Further investigation is warranted to elucidate the role of these genetic traits in S. agalactiae pathogenesis and neonatal meningitis.
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