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High-throughput Screening for Chemical Modulators of Post-transcriptionally Regulated Genes
Published on: March 3, 2015
Identification of flubendazole as potential anti-neuroblastoma compound in a large cell line screen
Martin Michaelis1, Bishr Agha2, Florian Rothweiler2
11] Institut für Medizinische Virologie, Klinikum der Goethe-Universität, Paul Ehrlich-Str. 40, 60596 Frankfurt am Main, Germany [2] Centre for Molecular Processing and School of Biosciences, University of Kent, Canterbury CT2 7NJ, UK.
Abstract:
Flubendazole was shown to exert anti-leukaemia and anti-myeloma activity through inhibition of microtubule function. Here, flubendazole was tested for its effects on the viability of in total 461 cancer cell lines. Neuroblastoma was identified as highly flubendazole-sensitive cancer entity in a screen of 321 cell lines from 26 cancer entities. Flubendazole also reduced the viability of five primary neuroblastoma samples in nanomolar concentrations thought to be achievable in humans and inhibited vessel formation and neuroblastoma tumour growth in the chick chorioallantoic membrane assay. Resistance acquisition is a major problem in high-risk neuroblastoma. 119 cell lines from a panel of 140 neuroblastoma cell lines with acquired resistance to various anti-cancer drugs were sensitive to flubendazole in nanomolar concentrations. Tubulin-binding agent-resistant cell lines displayed the highest flubendazole IC50 and IC90 values but differences between drug classes did not reach statistical significance. Flubendazole induced p53-mediated apoptosis. The siRNA-mediated depletion of the p53 targets p21, BAX, or PUMA reduced the neuroblastoma cell sensitivity to flubendazole with PUMA depletion resulting in the most pronounced effects. The MDM2 inhibitor and p53 activator nutlin-3 increased flubendazole efficacy while RNAi-mediated p53-depletion reduced its activity. In conclusion, flubendazole represents a potential treatment option for neuroblastoma including therapy-refractory cells.
Insights
Flubendazole effectively targets neuroblastoma, including drug-resistant cells, by inhibiting microtubule function and inducing apoptosis. This study highlights its potential as a novel treatment for high-risk neuroblastoma.
Area of Science:
- Oncology
- Pharmacology
- Cell Biology
Background:
- Flubendazole exhibits anti-leukemia and anti-myeloma properties by inhibiting microtubule function.
- Neuroblastoma, particularly high-risk forms, presents a significant challenge due to acquired resistance to existing therapies.
Purpose of the Study:
- To evaluate the efficacy of flubendazole against a broad spectrum of cancer cell lines, with a specific focus on neuroblastoma.
- To investigate flubendazole's activity in primary neuroblastoma samples and in models of acquired drug resistance.
Main Methods:
- Screening of 461 cancer cell lines to identify flubendazole sensitivity.
- Testing flubendazole on primary neuroblastoma samples and in drug-resistant cell lines.
- Investigating the role of p53-mediated apoptosis and its targets (p21, BAX, PUMA) in flubendazole's mechanism of action.
Main Results:
- Neuroblastoma was identified as a highly sensitive cancer entity to flubendazole.
- Flubendazole demonstrated efficacy in nanomolar concentrations against primary neuroblastoma samples and drug-resistant cell lines.
- Flubendazole induced p53-mediated apoptosis, with PUMA depletion significantly reducing sensitivity.
Conclusions:
- Flubendazole shows significant anti-neuroblastoma activity, including against therapy-refractory cells.
- The drug's mechanism involves p53-mediated apoptosis, suggesting potential for combination therapies.
- Flubendazole represents a promising therapeutic option for neuroblastoma treatment.
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