2-Naphthyl tetrazoles are potent antiproliferative and apoptotic inducers with different tubulin polymerization
Miguel Marín1, Laura Gallego-Yerga1, Dominik Fachet2
1Laboratorio de Química Orgánica y Farmacéutica, Departamento de Ciencias Farmacéuticas, Universidad de Salamanca, Campus Miguel de Unamuno, E-37007, Salamanca, Spain; Instituto de Investigación Biomédica de Salamanca (IBSAL), Facultad de Farmacia, Universidad de Salamanca, Campus Miguel de Unamuno, E-37007, Salamanca, Spain; Centro de Investigación de Enfermedades Tropicales de la Universidad de Salamanca (CIETUS), Facultad de Farmacia, Universidad de Salamanca, Campus Miguel de Unamuno, E-37007, Salamanca, Spain.
Abstract:
Microtubule-targeting agents continue to be a cornerstone of cancer treatment; however, issues like systemic toxicity, poor metabolic stability, and multidrug resistance often restrict their effectiveness. Identifying new molecules that can overcome these limitations is crucial for enhancing therapeutic outcomes. In this work, we present a library of 12 new tubulin-binding compounds, analogues of Combretastatin A-4, incorporating a tetrazole bridge designed to preserve the cisoid disposition required for binding to the colchicine site. These compounds were assayed against a wide range of cancer cell lines, with compounds 23, 31, and 32 showing antiproliferative potencies in the low nanomolar range. The mechanism of action was assessed through microscopy experiments, which confirmed disruption of microtubule polymerization in cells. In vitro microtubule polymerization reactions with tubulin isolated from HEK-293 cells showed that compounds with drastically different inhibitory effects on polymerization dynamics elicit similar antiproliferative effects, thus questioning the usual assumption that interference with microtubule dynamics is the fundamental mechanism behind tubulin inhibitors' actions. Cell cycle and cell death assays revealed atypical behavior for antimitotic agents, showing less mitotic arrest than typically but a significant increase in apoptotic cell populations, thus suggesting that they trigger cell death in an unusual way. In silico conformational and docking studies supported binding at the colchicine site and suggested favourable pharmacokinetic profiles. Together, these results position these compounds as highly promising candidates for development as new antitumor agents, especially 23 for glioblastoma.
Insights
New tubulin-binding compounds show potent anticancer activity by disrupting microtubule polymerization. These novel agents, particularly compound 23, offer promising therapeutic potential for glioblastoma and other cancers.
Area of Science:
- Medicinal Chemistry
- Cancer Biology
- Pharmacology
Background:
- Microtubule-targeting agents are vital cancer therapies but face challenges like toxicity and resistance.
- Novel compounds are needed to overcome limitations of current treatments and improve therapeutic outcomes.
Purpose of the Study:
- To synthesize and evaluate novel tubulin-binding compounds as potential anticancer agents.
- To investigate the mechanism of action and pharmacokinetic profiles of these new compounds.
Main Methods:
- Synthesis of 12 Combretastatin A-4 analogues with a tetrazole bridge.
- Antiproliferative assays against diverse cancer cell lines.
- Microscopy, in vitro microtubule polymerization assays, cell cycle, and cell death analyses.
- In silico conformational and docking studies.
Main Results:
- Compounds 23, 31, and 32 exhibited low nanomolar antiproliferative potency.
- Microscopy confirmed microtubule polymerization disruption.
- In vitro studies questioned the direct correlation between polymerization inhibition and antiproliferative effects.
- Compounds induced apoptosis with less mitotic arrest than typical antimitotics.
- In silico studies suggested favorable pharmacokinetics and colchicine site binding.
Conclusions:
- The novel tetrazole-containing compounds demonstrate significant anticancer potential.
- Compound 23 is a particularly promising candidate for glioblastoma treatment.
- These agents may induce cancer cell death through a non-canonical mechanism, warranting further investigation.
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