Design and Synthesis of 2-Heterocyclyl-3-arylthio-1H-indoles as Potent Tubulin Polymerization and Cell Growth Inhibitors with Improved Metabolic Stability

Journal of Medicinal Chemistry
2011.0

Abstract

New arylthioindoles (ATIs) were obtained by replacing the 2-alkoxycarbonyl group with a bioisosteric 5-membered heterocycle nucleus. The new ATIs 5, 8, and 10 inhibited tubulin polymerization, reduced cell growth of a panel of human transformed cell lines, and showed higher metabolic stability than the reference ester 3. These compounds induced mitotic arrest and apoptosis at a similar level as combretastatin A-4 and vinblastine and triggered caspase-3 expression in a significant fraction of cells in both p53-proficient and p53-defective cell lines. Importantly, ATIs 5, 8, and 10 were more effective than vinorelbine, vinblastine, and paclitaxel as growth inhibitors of the P-glycoprotein-overexpressing cell line NCI/ADR-RES. Compound 5 was shown to have medium metabolic stability in both human and mouse liver microsomes, in contrast to the rapidly degraded reference ester 3, and a pharmacokinetic profile in the mouse characterized by a low systemic clearance and excellent oral bioavailability.

Knowledge Graph

Similar Paper

Design and Synthesis of 2-Heterocyclyl-3-arylthio-1H-indoles as Potent Tubulin Polymerization and Cell Growth Inhibitors with Improved Metabolic Stability
Journal of Medicinal Chemistry 2011.0
Toward Highly Potent Cancer Agents by Modulating the C-2 Group of the Arylthioindole Class of Tubulin Polymerization Inhibitors
Journal of Medicinal Chemistry 2013.0
Arylthioindole Inhibitors of Tubulin Polymerization. 3. Biological Evaluation, Structure−Activity Relationships and Molecular Modeling Studies
Journal of Medicinal Chemistry 2007.0
New Arylthioindoles and Related Bioisosteres at the Sulfur Bridging Group. 4. Synthesis, Tubulin Polymerization, Cell Growth Inhibition, and Molecular Modeling Studies
Journal of Medicinal Chemistry 2009.0
Arylthioindoles, Potent Inhibitors of Tubulin Polymerization
Journal of Medicinal Chemistry 2004.0
New 6- and 7-heterocyclyl-1H-indole derivatives as potent tubulin assembly and cancer cell growth inhibitors
European Journal of Medicinal Chemistry 2018.0
Potent Antitubulin Tumor Cell Cytotoxins Based on 3-Aroyl Indazoles
Journal of Medicinal Chemistry 2007.0
Highly Potent Triazole-Based Tubulin Polymerization Inhibitors
Journal of Medicinal Chemistry 2007.0
Synthesis and biological evaluation of novel heterocyclic derivatives of combretastatin A-4
Bioorganic & Medicinal Chemistry Letters 2012.0
New Indole Tubulin Assembly Inhibitors Cause Stable Arrest of Mitotic Progression, Enhanced Stimulation of Natural Killer Cell Cytotoxic Activity, and Repression of Hedgehog-Dependent Cancer
Journal of Medicinal Chemistry 2015.0