4.8 Article

Accelerated structure-based design of chemically diverse allosteric modulators of a muscarinic G protein-coupled receptor

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1612353113

关键词

GPCR; allosteric modulators; ensemble docking; affinity; cooperativity

资金

  1. Extreme Science and Engineering Discovery Environment [TG-MCA93S013, TG-MCB140011]
  2. National Energy Research Scientific Computing Center [M1395]
  3. National Science Foundation [MCB1020765]
  4. NIH [GM31749]
  5. Howard Hughes Medical Institute
  6. National Biomedical Computation Resource
  7. National Health and Medical Research Council of Australia (NHMRC) Program [519461, APP1055134, APP1082318]
  8. Div Of Molecular and Cellular Bioscience
  9. Direct For Biological Sciences [1020765] Funding Source: National Science Foundation

向作者/读者索取更多资源

Design of ligands that provide receptor selectivity has emerged as a new paradigm for drug discovery of G protein-coupled receptors, and may, for certain families of receptors, only be achieved via identification of chemically diverse allosteric modulators. Here, the extracellular vestibule of the M-2 muscarinic acetylcholine receptor (mAChR) is targeted for structure-based design of allosteric modulators. Accelerated molecular dynamics (aMD) simulations were performed to construct structural ensembles that account for the receptor flexibility. Compounds obtained from the National Cancer Institute (NCI) were docked to the receptor ensembles. Retrospective docking of known ligands showed that combining aMD simulations with Glide induced fit docking (IFD) provided much-improved enrichment factors, compared with the Glide virtual screening workflow. Glide IFD was thus applied in receptor ensemble docking, and 38 top-ranked NCI compounds were selected for experimental testing. In [H-3]N-methylscopolamine radioligand dissociation assays, approximately half of the 38 lead compounds altered the radioligand dissociation rate, a hallmark of allosteric behavior. In further competition binding experiments, we identified 12 compounds with affinity of <= 30 mu M. With final functional experiments on six selected compounds, we confirmed four of them as new negative allosteric modulators (NAMs) and one as positive allosteric modulator of agonist-mediated response at the M-2 mAChR. Two of the NAMs showed subtype selectivity without significant effect at the M-1 and M-3 mAChRs. This study demonstrates an unprecedented successful structure-based approach to identify chemically diverse and selective GPCR allosteric modulators with outstanding potential for further structure-activity relationship studies.

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