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Updated: Feb 16, 2026

Genome-Wide Analysis of DNA Methylation in Gastrointestinal Cancer
Published on: September 18, 2020
Genome-wide methylation analysis identifies genes silenced in non-seminoma cell lines
Dzul Azri Mohamed Noor1,2, Jennie N Jeyapalan1,3, Safiah Alhazmi1,4
1School of Life Sciences, University of Nottingham, Nottingham, UK.
Abstract:
Silencing of genes by DNA methylation is a common phenomenon in many types of cancer. However, the genome-wide effect of DNA methylation on gene expression has been analysed in relatively few cancers. Germ cell tumours (GCTs) are a complex group of malignancies. They are unique in developing from a pluripotent progenitor cell. Previous analyses have suggested that non-seminomas exhibit much higher levels of DNA methylation than seminomas. The genomic targets that are methylated, the extent to which this results in gene silencing and the identity of the silenced genes most likely to play a role in the tumours' biology have not yet been established. In this study, genome-wide methylation and expression analysis of GCT cell lines was combined with gene expression data from primary tumours to address this question. Genome methylation was analysed using the Illumina infinium HumanMethylome450 bead chip system and gene expression was analysed using Affymetrix GeneChip Human Genome U133 Plus 2.0 arrays. Regulation by methylation was confirmed by demethylation using 5-aza-2-deoxycytidine and reverse transcription-quantitative PCR. Large differences in the level of methylation of the CpG islands of individual genes between tumour cell lines correlated well with differential gene expression. Treatment of non-seminoma cells with 5-aza-2-deoxycytidine verified that methylation of all genes tested played a role in their silencing in yolk sac tumour cells and many of these genes were also differentially expressed in primary tumours. Genes silenced by methylation in the various GCT cell lines were identified. Several pluripotency-associated genes were identified as a major functional group of silenced genes.
Insights
DNA methylation silences genes in cancers, including germ cell tumours (GCTs). This study identified pluripotency-associated genes silenced by methylation in GCTs, crucial for understanding tumour biology.
Area of Science:
- Oncology
- Epigenetics
- Genomics
Background:
- DNA methylation is a key epigenetic mechanism regulating gene expression in cancer.
- Germ cell tumours (GCTs) are unique malignancies arising from pluripotent cells, with distinct methylation profiles between seminomas and non-seminomas.
- The genome-wide impact of DNA methylation on gene silencing in GCTs remains largely uncharacterized.
Purpose of the Study:
- To investigate the genome-wide effects of DNA methylation on gene expression in GCT cell lines.
- To identify specific genes silenced by methylation in GCTs and their potential role in tumourigenesis.
- To correlate methylation-driven gene silencing with differential gene expression in primary GCTs.
Main Methods:
- Genome-wide methylation analysis using the Illumina HumanMethylome450 BeadChip.
- Gene expression profiling using Affymetrix GeneChip arrays.
- Demethylation experiments with 5-aza-2-deoxycytidine and validation by RT-qPCR.
Main Results:
- Significant correlations were observed between CpG island methylation levels and differential gene expression in GCT cell lines.
- Demethylation treatment confirmed methylation's role in silencing genes within yolk sac tumour cells.
- Several pluripotency-associated genes were identified as a major class of genes silenced by DNA methylation in GCTs.
Conclusions:
- DNA methylation plays a critical role in gene silencing in GCTs, impacting pluripotency-associated genes.
- Understanding these methylation patterns provides insights into GCT biology and potential therapeutic targets.
- This study establishes a foundation for further research into epigenetic dysregulation in GCTs.
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