Understanding the origins of time-dependent inhibition by polypeptide deformylase inhibitors
Rachel Totoritis1, Chaya Duraiswami, Amy N Taylor
1Department of Biological Reagents, GlaxoSmithKline, 1250 South Collegeville Road, Collegeville, Pennsylvania 19426, USA.
Abstract:
The continual bacterial adaptation to antibiotics creates an ongoing medical need for the development of novel therapeutics. Polypeptide deformylase (PDF) is a highly conserved bacterial enzyme, which is essential for viability. It has previously been shown that PDF inhibitors represent a promising new area for the development of antimicrobial agents, and that many of the best PDF inhibitors demonstrate slow, time-dependent binding. To improve our understanding of the mechanistic origin of this time-dependent inhibition, we examined in detail the kinetics of PDF catalysis and inhibition by several different PDF inhibitors. Varying pH and solvent isotope led to clear changes in time-dependent inhibition parameters, as did inclusion of NaCl, which binds to the active site metal of PDF. Quantitative analysis of these results demonstrated that the observed time dependence arises from slow binding of the inhibitors to the active site metal. However, we also found several metal binding inhibitors that exhibited rapid, non-time-dependent onset of inhibition. By a combination of structural and chemical modification studies, we show that metal binding is only slow when the rest of the inhibitor makes optimal hydrogen bonds within the subsites of PDF. Both of these interactions between the inhibitor and enzyme were found to be necessary to observe time-dependent inhibition, as elimination of either leads to its loss.
Insights
Novel antimicrobial drug development is crucial due to bacterial resistance. This study reveals that polypeptide deformylase (PDF) inhibitors
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Bacterial adaptation to antibiotics necessitates novel therapeutics.
- Polypeptide deformylase (PDF) is a conserved, essential bacterial enzyme.
- PDF inhibitors show promise as antimicrobial agents, often with time-dependent binding.
Purpose of the Study:
- To elucidate the mechanistic origin of time-dependent inhibition of PDF.
- To investigate the kinetics of PDF catalysis and inhibition by various inhibitors.
Main Methods:
- Kinetic analysis of PDF inhibition under varying pH, solvent isotope, and NaCl concentrations.
- Structural and chemical modification studies of PDF inhibitors.
- Quantitative analysis of inhibitor-enzyme interactions.
Main Results:
- Time-dependent inhibition of PDF is attributed to slow inhibitor binding to the active site metal.
- Optimal hydrogen bonding of the inhibitor to PDF subsites is required for slow metal binding.
- Loss of either metal binding or optimal hydrogen bonding eliminates time-dependent inhibition.
Conclusions:
- Understanding the dual requirements for metal binding and hydrogen bonding is key to designing potent PDF inhibitors.
- This research provides insights into optimizing antimicrobial strategies targeting bacterial enzymes.
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