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Deciphering Antifungal Drug Resistance in Pneumocystis jirovecii DHFR with Molecular Dynamics and Machine Learning.

Florian LeidnerNese Kurt YilmazCelia A Schiffer
Published in: Journal of chemical information and modeling (2021)
Drug resistance impacts the effectiveness of many new therapeutics. Mutations in the therapeutic target confer resistance; however, deciphering which mutations, often remote from the enzyme active site, drive resistance is challenging. In a series of Pneumocystis jirovecii dihydrofolate reductase variants, we elucidate which interactions are key bellwethers to confer resistance to trimethoprim using homology modeling, molecular dynamics, and machine learning. Six molecular features involving mainly residues that did not vary were the best indicators of resistance.
Keyphrases
  • molecular dynamics
  • machine learning
  • density functional theory
  • randomized controlled trial
  • artificial intelligence
  • small molecule
  • gene expression
  • big data
  • candida albicans
  • dna methylation
  • single molecule