AI Article Synopsis

  • The enzyme CYP121 is a promising drug target for combating antibiotic-resistant Mycobacterium tuberculosis, and a triazol-1-yl phenol compound was found to effectively bind to it through various biophysical tests.* -
  • After improving the binding affinity of the initial compound 100-fold, researchers deconstructed it to identify key structural features and optimize new lead compounds with enhanced properties.* -
  • By strategically adding a metal-binding element to potent scaffolds, they developed highly effective CYP121 inhibitors with exceptional selectivity, utilizing advanced techniques like X-ray crystallography for further insights into drug design.*

Article Abstract

The essential enzyme CYP121 is a target for drug development against antibiotic resistant strains of Mycobacterium tuberculosis. A triazol-1-yl phenol fragment 1 was identified to bind to CYP121 using a cascade of biophysical assays. Synthetic merging and optimization of 1 produced a 100-fold improvement in binding affinity, yielding lead compound 2 (KD = 15 μM). Deconstruction of 2 into its component retrofragments allowed the group efficiency of structural motifs to be assessed, the identification of more LE scaffolds for optimization and highlighted binding affinity hotspots. Structure-guided addition of a metal-binding pharmacophore onto LE retrofragment scaffolds produced low nanomolar (KD = 15 nM) CYP121 ligands. Elaboration of these compounds to target binding hotspots in the distal active site afforded compounds with excellent selectivity against human drug-metabolizing P450s. Analysis of the factors governing ligand potency and selectivity using X-ray crystallography, UV-vis spectroscopy, and native mass spectrometry provides insight for subsequent drug development.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4835159PMC
http://dx.doi.org/10.1021/acs.jmedchem.6b00007DOI Listing

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