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Biochemical and Structural Characterization of the Carbohydrate Transport Substrate-binding-protein SP0092
Published on: October 2, 2017
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
Abstract:
The efficacy of beta-lactam antibiotics in Streptococcus pneumoniae has been compromised because of the development of altered penicillin-binding proteins (PBPs), however, this has been less so for amoxicillin than for penicillin. Recently, there have been a number of important methods developed to detect molecular adaptation in protein coding genes. The purpose of this study is to employ modern molecular selection approaches to predict sites under positive selection pressure in PBPs, derived from a large international S. pneumoniae collection of amoxicillin resistant and susceptible isolates, and encompassing a comparative data set of 354 pbp1a, 335 pbp2b, and 389 pbp2x gene sequences. A correspondence discriminant analysis (CDA) of positively selected pbp sites and amoxicillin MIC (minimum inhibitory concentration) values is then used to detect sites under positive selection pressure that are important in discriminating different amoxicillin MICs. Molecular adaptation was evident throughout PBP2X, with numerous positively selected sites in both the transpeptidase (TP) and C-terminal domains, strongly correlated with discriminating amoxicillin MICs. In the case of PBP1A positive selection was present in the glycosyltransfer (GT), TP and C-terminal domains. Sites within the TP domain tended to be correlated with the discrimination of low from intermediate MICs, whereas sites within the C-terminal tail, with a discrimination of intermediate from fully resistant. Most of the positively selected sites within PBP2B were in the N-terminal domain and were not correlated with amoxicillin MICs, however, several sites taken from the literature for the TP domain were strongly associated with discriminating high from intermediate level amoxicillin resistance. Many of the positively selected sites could be directly associated with functional inferences based on the crystal structures of these proteins. Our results suggest that clinical emphasis on TP domain sequences of these proteins may result in missing information relevant to antibiotic resistance development.
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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