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.

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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