Synthesis and Evaluation of a Library of Trifunctional Scaffold-Derived Compounds as Modulators of the Insulin Receptor
Language English Country United States Media print-electronic
Document type Journal Article, Research Support, Non-U.S. Gov't
Grant support
MR/K000179/1
Medical Research Council - United Kingdom
- Keywords
- insulin mimetics, insulin receptor, library, protein-protein interactions, scaffold, trifunctional,
- MeSH
- Azides chemical synthesis chemistry MeSH
- Insulin analogs & derivatives chemistry metabolism MeSH
- Small Molecule Libraries chemical synthesis chemistry metabolism pharmacology MeSH
- Copper analysis MeSH
- Molecular Structure MeSH
- Receptor, Insulin chemistry metabolism MeSH
- Reproducibility of Results MeSH
- Combinatorial Chemistry Techniques * MeSH
- Solid-Phase Synthesis Techniques MeSH
- Protein Binding MeSH
- Chromatography, High Pressure Liquid methods MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Names of Substances
- Azides MeSH
- Insulin MeSH
- Small Molecule Libraries MeSH
- Copper MeSH
- Receptor, Insulin MeSH
We designed a combinatorial library of trifunctional scaffold-derived compounds, which were derivatized with 30 different in-house-made azides. The compounds were proposed to mimic insulin receptor (IR)-binding epitopes in the insulin molecule and bind to and activate this receptor. This work has enabled us to test our synthetic and biological methodology and to prove its robustness and reliability for the solid-phase synthesis and testing of combinatorial libraries of the trifunctional scaffold-derived compounds. Our effort resulted in the discovery of two compounds, which were able to weakly induce the autophosphorylation of IR and weakly bind to this receptor at a 0.1 mM concentration. Despite these modest biological results, which well document the well-known difficulty in modulating protein-protein interactions, this study represents a unique example of targeting the IR with a set of nonpeptide compounds that were specifically designed and synthesized for this purpose. We believe that this work can open new perspectives for the development of next-generation insulin mimetics based on the scaffold structure.
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