Abstract
Neuroblastoma cell lines can differentiate upon treatment with retinoic acid (RA), a finding that provided the basis for the clinical use of RA to treat neuroblastoma. However, resistance to RA is often observed, which limits its clinical utility. Using a gain-of-function genetic screen, we identified an unexpected link between RA signaling and mastermind-like 3 (MAML3), a known transcriptional coactivator for NOTCH. Our findings indicate that MAML3 expression leads to the loss of activation of a subset of RA target genes, which hampers RA-induced differentiation and promotes resistance to RA. The regulatory DNA elements of this subset of RA target genes show overlap in binding of MAML3 and the RA receptor, suggesting a direct role for MAML3 in the regulation of these genes. In addition, MAML3 has RA-independent functions, including the activation of IGF1R and downstream AKT signaling via upregulation of IGF2, resulting in increased proliferation. These results demonstrate an important mechanistic role for MAML3 in proliferation and RA-mediated differentiation. MAML3 coordinates transcription regulation with receptor tyrosine kinase pathway activation, shedding new light on why this gene is mutated in multiple cancers. Mol Cancer Res; 14(5); 411-22. ©2016 AACR.
MeSH Terms
Cell Differentiation/drug effects
Cell Line, Tumor
Cell Proliferation/drug effects
DNA-Binding Proteins/genetics,metabolism
Drug Resistance, Neoplasm
Gene Expression Regulation, Neoplastic/drug effects
Humans
Neuroblastoma/genetics,metabolism
Nuclear Proteins/genetics,metabolism
Signal Transduction/drug effects
Trans-Activators
Transcription Factors/genetics,metabolism
Tretinoin/pharmacology
Chemicals
DNA-Binding Proteins
MAML3 protein, human
Nuclear Proteins
Trans-Activators
Transcription Factors
Tretinoin
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Heynen Guus J J E
Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Cancer Genomics Center Netherlands, The Netherlands Cancer Institute, Amsterdam, the Netherlands.
Nevedomskaya Ekaterina
Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Division of Molecular Pathology, The Netherlands Cancer Institute, Amsterdam, the Netherlands.
Palit Sander
Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Cancer Genomics Center Netherlands, The Netherlands Cancer Institute, Amsterdam, the Netherlands.
Jagalur Basheer Noorjahan
Department of Pediatric Oncology, Erasmus Medical Center/Sophia Children's Hospital, Rotterdam, the Netherlands.
Lieftink Cor
Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Cancer Genomics Center Netherlands, The Netherlands Cancer Institute, Amsterdam, the Netherlands.
Schlicker Andreas
Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Cancer Genomics Center Netherlands, The Netherlands Cancer Institute, Amsterdam, the Netherlands.
Zwart Wilbert
Division of Molecular Pathology, The Netherlands Cancer Institute, Amsterdam, the Netherlands.
Bernards Rene
Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Cancer Genomics Center Netherlands, The Netherlands Cancer Institute, Amsterdam, the Netherlands. r.bernards@nki.nl p.kumar@nki.nl.
Bajpe Prashanth Kumar
Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Cancer Genomics Center Netherlands, The Netherlands Cancer Institute, Amsterdam, the Netherlands. r.bernards@nki.nl p.kumar@nki.nl.