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A structure-guided approach discovers a novel indoline series of CETP inhibitors (ACS Med Chem Lett 2016)
Original title: Discovery of Novel Indoline Cholesterol Ester Transfer Protein Inhibitors (CETP) through a Structure-Guided Approach
Drawing on known CETP inhibitors for design inspiration, researchers discovered a structurally novel series of tetrahydroquinoxaline CETP inhibitors. An exemplar, compound 5, showed potent in vitro CETP inhibition and was efficacious in a transgenic cynomolgus-CETP mouse HDL pharmacodynamic assay, but an undesirable metabolic profile and chemical instability limited further development. Proton NMR structural studies of a related tetrahydroquinoxaline, compound 6, were used to build a three-dimensional model that guided in silico design of a new indoline-scaffold class, yielding compound 7, which showed potent in vitro CETP inhibition, a more favourable pharmacokinetic-pharmacodynamic profile than compound 5, and dose-dependent efficacy in the transgenic cynomolgus-CETP mouse HDL assay.
Original abstract
Using the collective body of known (CETP) inhibitors as inspiration for design, a structurally novel series of tetrahydroquinoxaline CETP inhibitors were discovered. An exemplar from this series, compound 5, displayed potent in vitro CETP inhibition and was efficacious in a transgenic cynomologus-CETP mouse HDL PD (pharmacodynamic) assay. However, an undesirable metabolic profile and chemical instability hampered further development of the series. A three-dimensional structure of tetrahydroquinoxaline inhibitor 6 was proposed from (1)H NMR structural studies, and this model was then used in silico for the design of a new class of compounds based upon an indoline scaffold. This work resulted in the discovery of compound 7, which displayed potent in vitro CETP inhibition, a favorable PK-PD profile relative to tetrahydroquinoxaline 5, and dose-dependent efficacy in the transgenic cynomologus-CETP mouse HDL PD assay.
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Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.