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Updated: Aug 4, 2025

A Robust Discovery Platform for the Identification of Novel Mediators of Melanoma Metastasis
Published on: March 8, 2022
An epigenetic switch controls an alternative NR2F2 isoform that unleashes a metastatic program in melanoma
Veronica Davalos1,2,3, Claudia D Lovell4,5, Richard Von Itter4,5
1Department of Pathology, New York University Grossman School of Medicine, New York, NY, 10016, USA. vdavalos@carrerasresearch.org.
Abstract:
Metastatic melanoma develops once transformed melanocytic cells begin to de-differentiate into migratory and invasive melanoma cells with neural crest cell (NCC)-like and epithelial-to-mesenchymal transition (EMT)-like features. However, it is still unclear how transformed melanocytes assume a metastatic melanoma cell state. Here, we define DNA methylation changes that accompany metastatic progression in melanoma patients and discover Nuclear Receptor Subfamily 2 Group F, Member 2 - isoform 2 (NR2F2-Iso2) as an epigenetically regulated metastasis driver. NR2F2-Iso2 is transcribed from an alternative transcriptional start site (TSS) and it is truncated at the N-terminal end which encodes the NR2F2 DNA-binding domain. We find that NR2F2-Iso2 expression is turned off by DNA methylation when NCCs differentiate into melanocytes. Conversely, this process is reversed during metastatic melanoma progression, when NR2F2-Iso2 becomes increasingly hypomethylated and re-expressed. Our functional and molecular studies suggest that NR2F2-Iso2 drives metastatic melanoma progression by modulating the activity of full-length NR2F2 (Isoform 1) over EMT- and NCC-associated target genes. Our findings indicate that DNA methylation changes play a crucial role during metastatic melanoma progression, and their control of NR2F2 activity allows transformed melanocytes to acquire NCC-like and EMT-like features. This epigenetically regulated transcriptional plasticity facilitates cell state transitions and metastatic spread.
Insights
DNA methylation changes drive melanoma metastasis by regulating NR2F2-Iso2 expression. This epigenetic control allows cancer cells to gain neural crest cell (NCC)-like and epithelial-to-mesenchymal transition (EMT)-like features, promoting spread.
Area of Science:
- Cancer Biology
- Epigenetics
- Melanoma Research
Background:
- Metastatic melanoma arises from dedifferentiated melanocytes exhibiting neural crest cell (NCC)-like and epithelial-to-mesenchymal transition (EMT)-like characteristics.
- The precise mechanisms by which transformed melanocytes acquire a metastatic state remain incompletely understood.
Purpose of the Study:
- To identify DNA methylation alterations associated with melanoma metastatic progression in patients.
- To investigate the role of Nuclear Receptor Subfamily 2 Group F, Member 2 - isoform 2 (NR2F2-Iso2) as a potential epigenetic regulator of metastasis.
Main Methods:
- Analysis of DNA methylation patterns in melanoma patients.
- Characterization of NR2F2-Iso2 transcription from an alternative start site.
- Functional and molecular studies to elucidate NR2F2-Iso2's role in metastasis.
Main Results:
- NR2F2-Iso2 expression is epigenetically silenced by DNA methylation during normal melanocyte differentiation from NCCs.
- During metastatic melanoma progression, NR2F2-Iso2 is hypomethylated and re-expressed.
- NR2F2-Iso2 modulates full-length NR2F2 activity, promoting NCC- and EMT-associated gene expression.
Conclusions:
- DNA methylation plays a critical role in driving melanoma metastasis by regulating NR2F2-Iso2.
- Epigenetic control of NR2F2-Iso2 enables transformed melanocytes to adopt NCC-like and EMT-like features.
- This epigenetic plasticity facilitates cell state transitions and enhances metastatic spread in melanoma.
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