Positive selection in penicillin-binding proteins 1a, 2b, and 2x from Streptococcus pneumoniae and its correlation

Michael J Stanhope1, Tristan Lefébure, Stacey L Walsh

  • 1Department of Population Medicine and Diagnostic Sciences, College of Veterinary Medicine, Cornell University, Ithaca, NY 14853, USA. mjs297@cornell.edu

Insights

Penicillin-binding proteins (PBPs) in Streptococcus pneumoniae show molecular adaptation, particularly PBP2X and PBP1A, influencing amoxicillin resistance. Focusing on transpeptidase domains may overlook key resistance mechanisms.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Beta-lactam antibiotic efficacy against Streptococcus pneumoniae is declining due to altered penicillin-binding proteins (PBPs).
  • Amoxicillin resistance development is linked to specific PBP alterations, though less pronounced than with penicillin.
  • Advancements in molecular methods allow detection of adaptive changes in protein-coding genes.

Purpose of the Study:

  • To identify sites under positive selection pressure in PBPs using modern molecular approaches.
  • To correlate these selected PBP sites with amoxicillin minimum inhibitory concentration (MIC) values.
  • To understand the role of molecular adaptation in amoxicillin resistance in Streptococcus pneumoniae.

Main Methods:

  • Analysis of 354 pbp1a, 335 pbp2b, and 389 pbp2x gene sequences from amoxicillin-resistant and susceptible Streptococcus pneumoniae isolates.
  • Application of molecular selection approaches to detect positively selected sites in PBPs.
  • Correspondence discriminant analysis (CDA) to correlate selected PBP sites with amoxicillin MIC values.

Main Results:

  • Significant molecular adaptation observed in PBP2X, with positively selected sites in transpeptidase (TP) and C-terminal domains correlating with amoxicillin MICs.
  • PBP1A showed positive selection in glycosyltransferase (GT), TP, and C-terminal domains, with TP sites discriminating low/intermediate MICs and C-terminal sites discriminating intermediate/high resistance.
  • Positively selected sites in PBP2B's N-terminal domain did not correlate with MICs, but TP domain sites were associated with discriminating high amoxicillin resistance.

Conclusions:

  • Molecular adaptation in PBPs, especially PBP2X and PBP1A, plays a crucial role in discriminating amoxicillin resistance levels.
  • Focusing solely on TP domains for antibiotic resistance research may miss critical adaptive sites, particularly in the C-terminal and N-terminal regions.
  • Understanding these adaptive sites, informed by protein crystal structures, is vital for combating amoxicillin resistance in Streptococcus pneumoniae.

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