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Identification of a structural determinant for resistance to beta-lactam antibiotics in Gram-positive bacteria
N Mouz1, E Gordon, A M Di Guilmi
1Laboratoire d'Ingénierie des Macromolécules, Institut de Biologie Structurale Jean-Pierre Ebel (Commissariat à l'Energie Atomique-Centre National de la Recherche Scientifique), 41, avenue des Martyrs, F-38027 Grenoble Cedex 1, France.
Abstract:
Streptococcus pneumoniae is the main causal agent of pathologies that are increasingly resistant to antibiotic treatment. Clinical resistance of S. pneumoniae to beta-lactam antibiotics is linked to multiple mutations of high molecular mass penicillin-binding proteins (H-PBPs), essential enzymes involved in the final steps of bacterial cell wall synthesis. H-PBPs from resistant bacteria have a reduced affinity for beta-lactam and a decreased hydrolytic activity on substrate analogues. In S. pneumoniae, the gene coding for one of these H-PBPs, PBP2x, is located in the cell division cluster (DCW). We present here structural evidence linking multiple beta-lactam resistance to amino acid substitutions in PBP2x within a buried cavity near the catalytic site that contains a structural water molecule. Site-directed mutation of amino acids in contact with this water molecule in the "sensitive" form of PBP2x produces mutants similar, in terms of beta-lactam affinity and substrate hydrolysis, to altered PBP2x produced in resistant clinical isolates. A reverse mutation in a PBP2x variant from a clinically important resistant clone increases the acylation efficiency for beta-lactams and substrate analogues. Furthermore, amino acid residues in contact with the structural water molecule are conserved in the equivalent H-PBPs of pathogenic Gram-positive cocci. We suggest that, probably via a local structural modification, the partial or complete loss of this water molecule reduces the acylation efficiency of PBP2x substrates to a point at which cell wall synthesis still occurs, but the sensitivity to therapeutic concentrations of beta-lactam antibiotics is lost.
Insights
Antibiotic resistance in Streptococcus pneumoniae is linked to mutations in penicillin-binding proteins (PBPs). Structural changes near a key water molecule in PBP2x reduce beta-lactam binding, causing resistance.
Area of Science:
- Microbiology
- Structural Biology
- Drug Resistance
Background:
- Streptococcus pneumoniae causes infections with increasing antibiotic resistance.
- Beta-lactam antibiotic resistance in S. pneumoniae is associated with mutations in high molecular mass penicillin-binding proteins (H-PBPs).
- H-PBPs are crucial enzymes in bacterial cell wall synthesis.
Purpose of the Study:
- To investigate the structural basis of beta-lactam resistance in Streptococcus pneumoniae PBP2x.
- To elucidate the role of a structural water molecule and surrounding amino acids in PBP2x function and resistance.
Main Methods:
- X-ray crystallography to determine the structure of PBP2x.
- Site-directed mutagenesis to alter specific amino acid residues.
- Enzyme activity assays to measure beta-lactam affinity and substrate hydrolysis.
Main Results:
- Multiple beta-lactam resistance is linked to amino acid substitutions in PBP2x within a cavity near the catalytic site containing a structural water molecule.
- Mutations affecting amino acids interacting with this water molecule in sensitive PBP2x mimic the reduced beta-lactam affinity and hydrolysis of resistant strains.
- Reversing a mutation in a resistant PBP2x variant restored acylation efficiency for beta-lactams.
Conclusions:
- The loss or modification of a structural water molecule in PBP2x likely reduces its acylation efficiency, leading to beta-lactam resistance.
- This mechanism may be conserved in other pathogenic Gram-positive cocci.
- Understanding this mechanism could inform the development of new strategies to combat antibiotic resistance.