Genomic Characterization of a Pattern D Streptococcus pyogenes emm53 Isolate Reveals a Genetic Rationale for Invasive

Yun-Juan Bao1, Zhong Liang2, Jeffrey A Mayfield1

  • 1W. M. Keck Center for Transgene Research, University of Notre Dame, Notre Dame, Indiana, USA.

Abstract

Insights

Group A Streptococcus (GAS) genome analysis reveals multiple genetic adaptations, including mutations and phage acquisitions, contributing to skin infection tropism and enhanced virulence in invasive strains like AP53.

Area of Science:

  • Microbiology
  • Genomics
  • Infectious Diseases

Background:

  • Group A Streptococcus (GAS) strains are classified by serotype, M protein, and tropism (nasopharynx/skin).
  • Pattern D M proteins and plasminogen binding are associated with skin tropism in GAS.
  • Understanding GAS genomic variations is crucial for explaining strain invasiveness and tropism.

Purpose of the Study:

  • To sequence and characterize the genome of an invasive, skin-tropic GAS strain (AP53).
  • To compare AP53 with a similar, noninvasive GAS strain (Alab49) to identify genetic factors for skin tropism and invasiveness.

Main Methods:

  • Genome sequencing and comparative genomic analysis of GAS strains AP53 and Alab49.
  • Identification and analysis of single-nucleotide polymorphisms (SNPs), gene mutations, and phage content.
  • Expression analysis of virulence factors like SpeB and hyaluronic acid capsule.

Main Results:

  • The AP53 genome contains genetic markers for skin tropism (emm pattern D, FCT type 3).
  • AP53 differs from Alab49 by ~30 point mutations, including 4 in virulence genes, and has an inactive CovS sensor kinase.
  • AP53 acquired two phages, one carrying the speK-slaA superantigen gene, and exhibits altered expression of SpeB and hyaluronic acid capsule.

Conclusions:

  • Multiple genetic alterations, including regulatory gene mutations, repeat polymorphisms, and phage acquisitions, contribute to GAS skin tropism and virulence.
  • The inactive CovS protein and phage ΦAP53.2 are potential key factors in AP53's enhanced virulence and skin adaptation.
  • Genomic plasticity allows GAS to adapt to specific environments and develop enhanced pathogenic potential.

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