Skip to main navigation Skip to search Skip to main content

Structural conservation of druggable Hot spots in protein - Protein interfaces

  • Dima Kozakov
  • , David R. Hall
  • , Gwo Yu Chuang
  • , Regina Cencic
  • , Ryan Brenke
  • , Laurie E. Grove
  • , Dmitri Beglov
  • , Jerry Pelletier
  • , Adrian Whitty
  • , Sandor Vajda
  • Boston University
  • McGill University
  • Wentworth Institute of Technology

Research output: Contribution to journalArticlepeer-review

226 Scopus citations

Abstract

Despite the growing number of examples of small-molecule inhibitors that disrupt protein - protein interactions (PPIs), the origin of druggability of such targets is poorly understood. To identify druggable sites in protein - protein interfaces we combine computational solvent mapping, which explores the protein surface using a variety of small "probe" molecules, with a conformer generator to account for side-chain flexibility. Applications to unliganded structures of 15 PPI target proteins show that the druggable sites comprise a cluster of binding hot spots, distinguishable from other regions of the protein due to their concave topology combined with a pattern of hydrophobic and polar functionality. This combination of properties confers on the hot spots a tendency to bind organic species possessing some polar groups decorating largely hydrophobic scaffolds. Thus, druggable sites at PPI are not simply sites that are complementary to particular organic functionality, but rather possess a general tendency to bind organic compounds with a variety of structures, including key side chains of the partner protein. Results also highlight the importance of conformational adaptivity at the binding site to allow the hot spots to expand to accommodate a ligand of drug-like dimensions. The critical components of this adaptivity are largely local, involving primarily low energy side-chain motions within 6 Å of a hot spot. The structural and physicochemical signature of druggable sites at PPI interfaces is sufficiently robust to be detectable from the structure of the unliganded protein, even when substantial conformational adaptation is required for optimal ligand binding.

Original languageEnglish
Pages (from-to)13528-13533
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume108
Issue number33
DOIs
StatePublished - Aug 16 2011

Keywords

  • Fragment-based drug discovery
  • Inhibitor design
  • Ligand binding site
  • Side-chain adjustment

Fingerprint

Dive into the research topics of 'Structural conservation of druggable Hot spots in protein - Protein interfaces'. Together they form a unique fingerprint.

Cite this