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Updated: Jul 1, 2025

In Vitro Selection of Engineered Transcriptional Repressors for Targeted Epigenetic Silencing
Published on: May 5, 2023
Targeted DNA Methylation Editing Using an All-in-One System Establishes Paradoxical Activation of EBF3
Rakesh Banerjee1, Priyadarshana Ajithkumar1, Nicholas Keestra1
1Department of Pathology, Dunedin School of Medicine, University of Otago, Dunedin 9054, New Zealand.
Abstract:
Cutaneous melanoma is rapidly on the rise globally, surpassing the growth rate of other cancers, with metastasis being the primary cause of death in melanoma patients. Consequently, understanding the mechanisms behind this metastatic process and exploring innovative treatments is of paramount importance. Recent research has shown promise in unravelling the role of epigenetic factors in melanoma progression to metastasis. While DNA hypermethylation at gene promoters typically suppresses gene expression, we have contributed to establishing the newly understood mechanism of paradoxical activation of genes via DNA methylation, where high methylation coincides with increased gene activity. This mechanism challenges the conventional paradigm that promoter methylation solely silences genes, suggesting that, for specific genes, it might actually activate them. Traditionally, altering DNA methylation in vitro has involved using global demethylating agents, which is insufficient for studying the mechanism and testing the direct consequence of gene methylation changes. To investigate promoter hypermethylation and its association with gene activation, we employed a novel approach utilising a CRISPR-SunTag All-in-one system. Here, we focused on editing the DNA methylation of a specific gene promoter segment (EBF3) in melanoma cells using the All-in-one system. Using bisulfite sequencing and qPCR with RNA-Seq, we successfully demonstrated highly effective methylation and demethylation of the EBF3 promoter, with subsequent gene expression changes, to establish and validate the paradoxical role of DNA methylation. Further, our study provides novel insights into the function of the EBF3 gene, which remains largely unknown. Overall, this study challenges the conventional view of methylation as solely a gene-silencing mechanism and demonstrates a potential function of EBF3 in IFN pathway signalling, potentially uncovering new insights into epigenetic drivers of malignancy and metastasis.
Insights
Melanoma metastasis is a growing concern. This study reveals DNA methylation can paradoxically activate genes, challenging traditional views and offering new insights into melanoma progression and potential treatments.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Cutaneous melanoma incidence is rising globally, with metastasis driving mortality.
- Epigenetic factors, particularly DNA methylation, are implicated in melanoma metastasis.
- Conventional understanding holds that DNA promoter hypermethylation silences gene expression.
Purpose of the Study:
- To investigate the role of DNA methylation in melanoma metastasis.
- To explore the novel mechanism of paradoxical gene activation via DNA methylation.
- To validate this mechanism using a specific gene promoter (EBF3) in melanoma cells.
Main Methods:
- Utilized a CRISPR-SunTag All-in-one system for targeted DNA methylation editing of the EBF3 promoter.
- Employed bisulfite sequencing, quantitative PCR (qPCR), and RNA-Sequencing (RNA-Seq) for analysis.
- Validated methylation changes and their impact on gene expression.
Main Results:
- Successfully demonstrated targeted, highly effective methylation and demethylation of the EBF3 promoter.
- Observed corresponding changes in EBF3 gene expression, validating paradoxical DNA methylation.
- Provided novel insights into EBF3 gene function, potentially linked to IFN pathway signaling.
Conclusions:
- Challenges the paradigm that DNA methylation solely silences genes.
- Establishes a novel mechanism of gene activation through promoter hypermethylation.
- Suggests EBF3 may play a role in melanoma malignancy and metastasis via epigenetic regulation.
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