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Experimental and Theoretical Evaluation of the Ethynyl Moiety as a Halogen Bioisostere
Author(s) -
Rainer Wilcken,
Markus O. Zimmermann,
Matthias R. Bauer,
Trevor J. Rutherford,
Alan R. Fersht,
Andreas C. Joerger,
Frank M. Boeckler
Publication year - 2015
Publication title -
acs chemical biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.899
H-Index - 111
eISSN - 1554-8937
pISSN - 1554-8929
DOI - 10.1021/acschembio.5b00515
Subject(s) - bioisostere , moiety , chemistry , halogen bond , stereochemistry , ligand (biochemistry) , protein data bank (rcsb pdb) , sonogashira coupling , adme , combinatorial chemistry , binding pocket , molecule , binding site , receptor , chemical synthesis , biochemistry , organic chemistry , hydrogen bond , palladium , in vitro , catalysis
Bioisosteric replacements are widely used in medicinal chemistry to improve physicochemical and ADME properties of molecules while retaining or improving affinity. Here, using the p53 cancer mutant Y220C as a test case, we investigate both computationally and experimentally whether an ethynyl moiety is a suitable bioisostere to replace iodine in ligands that form halogen bonds with the protein backbone. This bioisosteric transformation is synthetically feasible via Sonogashira cross-coupling. In our test case of a particularly strong halogen bond, replacement of the iodine with an ethynyl group resulted in a 13-fold affinity loss. High-resolution crystal structures of the two analogues in complex with the p53-Y220C mutant enabled us to correlate the different affinities with particular features of the binding site and subtle changes in ligand binding mode. In addition, using QM calculations and analyzing the PDB, we provide general guidelines for identifying cases where such a transformation is likely to improve ligand recognition.

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