Structure-based maximal affinity model predicts small-molecule druggability
Top Cited Papers
- 8 January 2007
- journal article
- research article
- Published by Springer Nature in Nature Biotechnology
- Vol. 25 (1) , 71-75
- https://doi.org/10.1038/nbt1273
Abstract
Lead generation is a major hurdle in small-molecule drug discovery, with an estimated 60% of projects failing from lack of lead matter or difficulty in optimizing leads for drug-like properties. It would be valuable to identify these less-druggable targets before incurring substantial expenditure and effort. Here we show that a model-based approach using basic biophysical principles yields good prediction of druggability based solely on the crystal structure of the target binding site. We quantitatively estimate the maximal affinity achievable by a drug-like molecule, and we show that these calculated values correlate with drug discovery outcomes. We experimentally test two predictions using high-throughput screening of a diverse compound collection. The collective results highlight the utility of our approach as well as strategies for tackling difficult targets.Keywords
This publication has 30 references indexed in Scilit:
- In Vivo Activation of the p53 Pathway by Small-Molecule Antagonists of MDM2Science, 2004
- The druggable genomeNature Reviews Drug Discovery, 2002
- Molecular Properties That Influence the Oral Bioavailability of Drug CandidatesJournal of Medicinal Chemistry, 2002
- Experimental and computational approaches to estimate solubility and permeability in drug discovery and development settings 1PII of original article: S0169-409X(96)00423-1. The article was originally published in Advanced Drug Delivery Reviews 23 (1997) 3–25. 1Advanced Drug Delivery Reviews, 2001
- The Mechanism of Hydrophobic Solvation Depends on Solute RadiusThe Journal of Physical Chemistry B, 2000
- Surface topography dependence of biomolecular hydrophobic hydrationNature, 1998
- Hydrophobicity regainedProtein Science, 1997
- Polar Molecular Surface Properties Predict the Intestinal Absorption of Drugs in HumansPharmaceutical Research, 1997
- Reconciling the Magnitude of the Microscopic and Macroscopic Hydrophobic EffectsScience, 1991
- Hydrophobic bonding and accessible surface area in proteinsNature, 1974