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Mastermind-Like 3 Controls Proliferation and Differentiation in Neuroblastoma
Guus J J E Heynen1, Ekaterina Nevedomskaya2, Sander Palit1
1Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands. Cancer Genomics Center Netherlands, The Netherlands Cancer Institute, Amsterdam, the Netherlands.
Unlabelled:
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.
Implications:
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.
Insights
Mastermind-like 3 (MAML3) hinders retinoic acid (RA) treatment effectiveness in neuroblastoma by blocking RA target genes and activating proliferation pathways. This discovery reveals MAML3 as a key factor in RA resistance and cancer growth.
Area of Science:
- Molecular oncology
- Cell signaling
- Cancer epigenetics
Background:
- Retinoic acid (RA) is clinically used to induce neuroblastoma differentiation.
- Resistance to RA limits its therapeutic efficacy in neuroblastoma patients.
Purpose of the Study:
- To investigate the mechanisms underlying RA resistance in neuroblastoma.
- To identify novel regulators of RA signaling and neuroblastoma differentiation.
Main Methods:
- Gain-of-function genetic screen to identify genes involved in RA resistance.
- Analysis of MAML3 binding to RA target gene regulatory elements.
- Assessment of MAML3's role in IGF1R/AKT signaling and proliferation.
Main Results:
- Mastermind-like 3 (MAML3) was identified as a key mediator of RA resistance.
- MAML3 represses a subset of RA target genes, inhibiting RA-induced differentiation.
- MAML3 promotes proliferation via RA-independent activation of IGF1R/IGF2/AKT signaling.
Conclusions:
- MAML3 plays a dual role in neuroblastoma by promoting proliferation and conferring resistance to RA therapy.
- MAML3 directly regulates RA target genes and interacts with RA signaling pathways.
- Targeting MAML3 may offer a strategy to overcome RA resistance and treat neuroblastoma.
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