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A conserved protonation-dependent switch controls drug binding in the Abl kinase

  • Yibing Shan
  • , Markus A. Seeliger
  • , Michael P. Eastwood
  • , Filipp Frank
  • , Huafeng Xu
  • , Morten Jensen
  • , Ron O. Dror
  • , John Kuriyan
  • , David E. Shaw
  • D.E. Shaw Research, LLC
  • University of California at Berkeley
  • Columbia University

Research output: Contribution to journalArticlepeer-review

240 Scopus citations

Abstract

In many protein kinases, a characteristic conformational change (the "DFG flip") connects catalytically active and inactive conformations. Many kinase inhibitors - including the cancer drug imatinib - selectively target a specific DFG conformation, but the function and mechanism of the flip remain unclear. Using long molecular dynamics simulations of the Abl kinase, we visualized the DFG flip in atomic-level detail and formulated an energetic model predicting that protonation of the DFG aspartate controls the flip. Consistent with our model's predictions, we demonstrated experimentally that the kinetics of imatinib binding to Abl kinase have a pH dependence that disappears when the DFG aspartate is mutated. Our model suggests a possible explanation for the high degree of conservation of the DFG motif: that the flip, modulated by electrostatic changes inherent to the catalytic cycle, allows the kinase to access flexible conformations facilitating nucleotide binding and release.

Original languageEnglish
Pages (from-to)139-144
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume106
Issue number1
DOIs
StatePublished - Jan 6 2009

Keywords

  • Conformational change
  • DFG motif
  • Imatinib
  • Molecular dynamics simulation
  • pH dependence

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