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Unexpected inhibition of peptidoglycan LD-transpeptidase from Enterococcus faecium by the beta-lactam imipenem
Jean-Luc Mainardi1, Jean-Emmanuel Hugonnet, Filippo Rusconi
1INSERM, U872, LRMA Pôle 4, Equipe 12 F-75006 Paris, France.
Abstract:
The beta-lactam antibiotics mimic the D-alanyl(4)-D-alanine(5) extremity of peptidoglycan precursors and act as "suicide" substrates of the DD-transpeptidases that catalyze the last cross-linking step of peptidoglycan synthesis. We have previously shown that bypass of the dd-transpeptidases by the LD-transpeptidase of Enterococcus faecium (Ldt(fm)) leads to high level resistance to ampicillin. Ldt(fm) is specific for the L-lysyl(3)-D-alanine(4) bond of peptidoglycan precursors containing a tetrapeptide stem lacking D-alanine(5). This specificity was proposed to account for resistance, because the substrate of Ldt(fm) does not mimic beta-lactams in contrast to the D-alanyl(4)-D-alanine(5) extremity of pentapeptide stems used by the DD-transpeptidases. Here, we unexpectedly show that imipenem, a beta-lactam of the carbapenem class, totally inhibited Ldt(fm) at a low drug concentration that was sufficient to inhibit growth of the bacteria. Peptidoglycan cross-linking was also inhibited, indicating that Ldt(fm) is the in vivo target of imipenem. Stoichiometric and covalent modification of Ldt(fm) by imipenem was detected by mass spectrometry. The modification was mapped into the trypsin fragment of Ldt(fm) containing the catalytic Cys residue, and the Cys to Ala substitution prevented imipenem binding. The mass increment matched the mass of imipenem, indicating that inactivation of Ldt(fm) is likely to involve rupture of the beta-lactam ring and acylation of the catalytic Cys residue. Thus, the spectrum of activity of beta-lactams is not restricted to transpeptidases of the DD-specificity, as previously thought. Combination therapy with imipenem and ampicillin could therefore be active against E. faecium strains having the dual capacity to manufacture peptidoglycan with transpeptidases of the LD- and DD-specificities.
Insights
Beta-lactam antibiotics like imipenem can inhibit LD-transpeptidases (Ldt(fm)), an enzyme conferring ampicillin resistance in Enterococcus faecium. This finding broadens the known targets of beta-lactams and suggests new combination therapies.
Area of Science:
- Microbiology
- Antibiotic Resistance
- Biochemistry
Background:
- Beta-lactam antibiotics typically target DD-transpeptidases in bacterial cell wall synthesis.
- Enterococcus faecium can develop ampicillin resistance by utilizing LD-transpeptidases (Ldt(fm)) to bypass DD-transpeptidase inhibition.
Purpose of the Study:
- To investigate the activity of beta-lactam antibiotics, specifically imipenem, against the ampicillin-resistance conferring LD-transpeptidase (Ldt(fm)) from Enterococcus faecium.
- To elucidate the mechanism of imipenem inhibition of Ldt(fm) and its implications for antibiotic resistance.
Main Methods:
- Enzyme inhibition assays using imipenem and Ldt(fm).
- Bacterial growth inhibition studies.
- Mass spectrometry to detect covalent modification of Ldt(fm) by imipenem.
- Site-directed mutagenesis (Cys to Ala substitution) to identify the catalytic residue involved in inhibition.
Main Results:
- Imipenem potently inhibited Ldt(fm) activity and bacterial growth at low concentrations.
- Mass spectrometry confirmed stoichiometric and covalent modification of Ldt(fm) by imipenem.
- Inhibition involved acylation of the catalytic Cysteine residue, with a Cys to Ala mutation preventing imipenem binding.
Conclusions:
- The spectrum of beta-lactam antibiotic activity extends beyond DD-transpeptidases to include LD-transpeptidases.
- Ldt(fm) is a validated in vivo target for imipenem.
- Combination therapy with imipenem and ampicillin may be effective against Enterococcus faecium strains possessing both LD- and DD-transpeptidase specificities.
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