The cell-permeable iron chelator M606 inhibits MYCN-driven neuroblastoma via an E2F3-mediated response
Abstract
Despite Myc oncoproteins being major causal factors in human cancer, they remain “undruggable.” The MYCN oncogene is one of the most powerful prognostic markers for the childhood cancer neuroblastoma and represents an important target for developing novel therapeutics. Here, we report the finding and characterization of M606, a selective small molecule inhibitor of MYCN, which was identified by screening a diverse chemical library. M606 reduced MYCN protein levels in neuroblastoma cell lines and upregulated hypoxia-inducible factor 1 alpha (HIF1A). Using siRNA-mediated knockdown of MYCN , c-Myc , or HIF1A in HepG2 and BE(2)-C cells followed by M606 treatment, we demonstrated that Myc downregulation and HIF1A upregulation were two independent effects of M606 treatment. M606 selectively targeted neuroblastoma cell lines expressing higher levels of MYCN protein and delayed neuroblastoma development in the TH-MYCN transgenic mouse model. Metabolomic analysis showed that M606 modulated glucose metabolism, consistent with a hypoxic response and iron deprivation. Biochemical characterization of M606 not only confirmed its iron-chelating properties but also revealed its ability to downregulate MYCN promoter activity, which could be rescued by the addition of iron. Luciferase assays identified the minimal MYCN promoter region required for the M606 response, which contained overlapping E2F transcription factor binding sites. Further evaluation defined a key role for E2F3 in the M606-mediated response. The finding of a potent cell-permeable iron chelator that can chelate iron to directly downregulate MYCN transcription via an E2F3-mediated response represents a potentially valuable therapeutic approach in the treatment of cancers overexpressing Myc oncoproteins.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (26)
Ruby Pandher
Children’s Cancer Institute
Chengyuan Xue
Center for Nanochemistry, Beijing Science and Engineering Center for Nanocarbons, Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering
Laura D. Gamble
Children’s Cancer Institute
Giorgio Milazzo
Department of Pharmacy and Biotechnology, University of Bologna
Simone Di Giacomo
Department of Pharmacy and Biotechnology, University of Bologna
Jayne Murray
Children’s Cancer Institute
Leanna Cheung
Children’s Cancer Institute
Francesca Ferrucci
Department of Pharmacy and Biotechnology, University of Bologna
Marta Palombo
Department of Pharmacy and Biotechnology, University of Bologna
Stefania Purgato
Department of Pharmacy and Biotechnology, University of Bologna
Catherine A. Burkhart
Buffalo BioLabs, Limited Liability Company
Natalia Fedtsova
Department of Cell Stress Biology, Roswell Park Comprehensive Cancer Center
Anatoli S. Gleiberman
Genome Protection, Inc.
Andrei A. Purmal
Genome Protection, Inc.
Lioubov Korotchkina
Genome Protection, Inc.
Mikhail A. Nikiforov
Department of Cell Stress Biology, Roswell Park Comprehensive Cancer Center
Sergei S. Makarov
Attagene Inc
Thomas J. Telfer
School of Medical Sciences, The University of Sydney
Rachel Codd
School of Medical Sciences, The University of Sydney
Glenn M. Marshall
Children’s Cancer Institute
David A. Scott
Sanford Burnham Prebys Medical Discovery Institute
Andrei L. Osterman
Sanford Burnham Prebys Medical Discovery Institute
Andrei V. Gudkov
Department of Cell Stress Biology, Roswell Park Comprehensive Cancer Center
Giovanni Perini
Department of Pharmacy and Biotechnology, University of Bologna
Michelle Haber
Children’s Cancer Institute
Murray D. Norris
Children’s Cancer Institute