Inhibitor design to target a unique feature in the folate pocket of Staphylococcus aureus dihydrofolate reductase
N Prasad Muddala1, John C White2, Baskar Nammalwar1
1Department of Chemistry, Oklahoma State University, 107 Physical Sciences I, Stillwater, OK, 74078, USA.
Abstract:
Staphylococcus aureus (Sa) is a serious concern due to increasing resistance to antibiotics. The bacterial dihydrofolate reductase enzyme is effectively inhibited by trimethoprim, a compound with antibacterial activity. Previously, we reported a trimethoprim derivative containing an acryloyl linker and a dihydophthalazine moiety demonstrating increased potency against S. aureus. We have expanded this series and assessed in vitro enzyme inhibition (Ki) and whole cell growth inhibition properties (MIC). Modifications were focused at a chiral carbon within the phthalazine heterocycle, as well as simultaneous modification at positions on the dihydrophthalazine. MIC values increased from 0.0626-0.5 μg/mL into the 0.5-1 μg/mL range when the edge positions were modified with either methyl or methoxy groups. Changes at the chiral carbon affected Ki measurements but with little impact on MIC values. Our structural data revealed accommodation of predominantly the S-enantiomer of the inhibitors within the folate-binding pocket. Longer modifications at the chiral carbon, such as p-methylbenzyl, protrude from the pocket into solvent and result in poorer Ki values, as do modifications with greater torsional freedom, such as 1-ethylpropyl. The most efficacious Ki was 0.7 ± 0.3 nM, obtained with a cyclopropyl derivative containing dimethoxy modifications at the dihydrophthalazine edge. The co-crystal structure revealed an alternative placement of the phthalazine moiety into a shallow surface at the edge of the site that can accommodate either enantiomer of the inhibitor. The current design, therefore, highlights how to engineer specific placement of the inhibitor within this alternative pocket, which in turn maximizes the enzyme inhibitory properties of racemic mixtures.
Insights
Researchers developed new trimethoprim derivatives to combat antibiotic-resistant Staphylococcus aureus. Modifications enhanced enzyme inhibition and provided insights into optimizing drug design for bacterial dihydrofolate reductase.
Area of Science:
- Medicinal Chemistry
- Microbiology
- Structural Biology
Background:
- Staphylococcus aureus (S. aureus) poses a significant threat due to rising antibiotic resistance.
- Trimethoprim is an antibacterial agent that inhibits bacterial dihydrofolate reductase.
- Previous work yielded a potent trimethoprim derivative with an acryloyl linker and dihydropthalazine moiety against S. aureus.
Purpose of the Study:
- To expand on a series of trimethoprim derivatives.
- To evaluate in vitro enzyme inhibition (Ki) and whole cell growth inhibition (MIC).
- To investigate structure-activity relationships by modifying a chiral center and dihydrophthalazine ring.
Main Methods:
- Synthesis of novel trimethoprim derivatives with structural variations.
- Determination of enzyme inhibition constants (Ki) against bacterial dihydrofolate reductase.
- Measurement of minimum inhibitory concentrations (MIC) against S. aureus.
- Co-crystal structure analysis to elucidate inhibitor-protein interactions.
Main Results:
- Modifications at the dihydrophthalazine edge (methyl, methoxy groups) increased MIC values.
- Changes at the chiral carbon impacted Ki but minimally affected MIC.
- Structural data indicated a preference for the S-enantiomer in the folate-binding pocket.
- A cyclopropyl derivative with dimethoxy groups achieved the most potent Ki (0.7 ± 0.3 nM).
- Co-crystal structure revealed an alternative binding mode accommodating both enantiomers.
Conclusions:
- Structural modifications can fine-tune trimethoprim derivative binding to bacterial dihydrofolate reductase.
- An alternative binding pocket allows for accommodation of racemic mixtures, enhancing inhibitory properties.
- This study provides a design strategy for developing potent antibacterial agents against resistant strains.
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