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System for Efficacy and Cytotoxicity Screening of Inhibitors Targeting Intracellular Mycobacterium tuberculosis
Published on: April 5, 2017
Meropenem inhibits D,D-carboxypeptidase activity in Mycobacterium tuberculosis
Pradeep Kumar1, Kriti Arora, John R Lloyd
1Tuberculosis Research Section, National Institute of Allergy and Infectious Disease, NIH, Bethesda, MD 20892, USA.
Abstract:
Carbapenems such as meropenem are being investigated for their potential therapeutic utility against highly drug-resistant tuberculosis. These β-lactams target the transpeptidases that introduce interpeptide cross-links into bacterial peptidoglycan thereby controlling rigidity of the bacterial envelope. Treatment of Mycobacterium tuberculosis (Mtb) with the β-lactamase inhibitor clavulanate together with meropenem resulted in rapid, polar, cell lysis releasing cytoplasmic contents. In Mtb it has been previously demonstrated that 3-3 cross-linkages [involving two diaminopimelate (DAP) molecules] predominate over 4-3 cross-linkages (involving one DAP and one D-alanine) in stationary-phase cells. We purified and analysed peptidoglycan from Mtb and found that 3-3 cross-linkages predominate throughout all growth phases and the ratio of 4-3/3-3 linkages does not vary significantly under any growth condition. Meropenem treatment was accompanied by a dramatic accumulation of unlinked pentapeptide stems with no change in the tetrapeptide pools, suggesting that meropenem inhibits both a D,D-carboxypeptidase and an L,D-transpeptidase. We purified a candidate D,D-carboxypeptidase DacB2 and showed that meropenem indeed directly inhibits this enzyme by forming a stable adduct at the enzyme active site. These results suggest that the rapid lysis of meropenem-treated cells is the result of synergistically inhibiting the transpeptidases that introduce 3,3-cross-links while simultaneously limiting the pool of available substrates available for cross-linking.
Insights
Meropenem rapidly lyses drug-resistant tuberculosis bacteria by inhibiting key enzymes involved in cell wall synthesis. This dual inhibition disrupts peptidoglycan cross-linking, leading to bacterial cell death.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Tuberculosis (TB) poses a significant threat due to increasing drug resistance.
- Carbapenems, like meropenem, are explored as potential treatments for multidrug-resistant TB.
- Bacterial cell wall integrity is crucial for survival, making its synthesis a target for antibiotics.
Purpose of the Study:
- To investigate the mechanism of action of meropenem against Mycobacterium tuberculosis (Mtb).
- To understand how meropenem affects peptidoglycan synthesis and bacterial cell lysis.
- To identify the specific enzymes targeted by meropenem in Mtb.
Main Methods:
- Analysis of Mtb peptidoglycan structure and cross-linkages.
- Treatment of Mtb with meropenem and clavulanate to observe cellular effects.
- Purification and biochemical characterization of the D,D-carboxypeptidase DacB2.
- Mass spectrometry to analyze peptide stem accumulation.
Main Results:
- Meropenem treatment caused rapid, polar cell lysis in Mtb.
- 3-3 peptidoglycan cross-linkages predominate in Mtb across all growth phases.
- Meropenem treatment led to accumulation of unlinked pentapeptide stems, indicating inhibition of D,D-carboxypeptidase and L,D-transpeptidase.
- Meropenem directly inhibited the purified DacB2 enzyme.
Conclusions:
- Meropenem's efficacy against Mtb involves the synergistic inhibition of enzymes essential for peptidoglycan 3,3-cross-linking.
- The inhibition of DacB2 and other transpeptidases by meropenem disrupts cell wall synthesis, leading to bacterial lysis.
- Meropenem shows promise as a therapeutic agent for drug-resistant tuberculosis.
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