Related Experiment Video
Updated: Jan 29, 2026

Genome-Wide Analysis of DNA Methylation in Gastrointestinal Cancer
Published on: September 18, 2020
Characterization of DNA Methylation Associated Gene Regulatory Networks During Stomach Cancer Progression
Jun Wu1, Yunzhao Gu2, Yawen Xiao3
1School of Life Sciences, East China Normal University, Shanghai, China.
Abstract:
DNA methylation plays a critical role in tumorigenesis through regulating oncogene activation and tumor suppressor gene silencing. Although extensively analyzed, the implication of DNA methylation in gene regulatory network is less characterized. To address this issue, in this study we performed an integrative analysis on the alteration of DNA methylation patterns and the dynamics of gene regulatory network topology across distinct stages of stomach cancer. We found the global DNA methylation patterns in different stages are generally conserved, whereas some significantly differentially methylated genes were exclusively observed in the early stage of stomach cancer. Integrative analysis of DNA methylation and network topology alteration yielded several genes which have been reported to be involved in the progression of stomach cancer, such as IGF2, ERBB2, GSTP1, MYH11, TMEM59, and SST. Finally, we demonstrated that inhibition of SST promotes cell proliferation, suggesting that DNA methylation-associated SST suppression possibly contributes to the gastric cancer progression. Taken together, our study suggests the DNA methylation-associated regulatory network analysis could be used for identifying cancer-related genes. This strategy can facilitate the understanding of gene regulatory network in cancer biology and provide a new insight into the study of DNA methylation at system level.
Insights
DNA methylation patterns are conserved in stomach cancer stages, but early-stage differences and network alterations reveal key genes. Suppressing SST gene promotes cell proliferation, indicating its role in gastric cancer progression.
Area of Science:
- Oncology
- Epigenetics
- Bioinformatics
Background:
- DNA methylation is crucial in cancer by controlling oncogenes and tumor suppressors.
- Its role in gene regulatory networks during stomach cancer progression is not well understood.
Purpose of the Study:
- To analyze DNA methylation changes and gene regulatory network dynamics in stomach cancer.
- To identify key genes involved in gastric cancer progression using an integrative approach.
Main Methods:
- Integrative analysis of DNA methylation patterns and gene regulatory network topology across stomach cancer stages.
- Identification of differentially methylated genes and their network impact.
Main Results:
- Global DNA methylation patterns are conserved across stomach cancer stages.
- Specific differentially methylated genes were identified in early-stage stomach cancer.
- Integrative analysis highlighted genes like IGF2, ERBB2, and SST involved in cancer progression.
- SST gene suppression was shown to promote cell proliferation in gastric cancer.
Conclusions:
- DNA methylation-associated regulatory network analysis can identify cancer-related genes.
- This approach offers new insights into gene regulation in stomach cancer.
- SST suppression via DNA methylation may contribute to gastric cancer progression.
Related Concept Videos
Cis-regulatory Sequences
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
Stomach pH Regulation
The acid-secreting gastric mucosal epithelial cells (parietal cells) lining the stomach lumen maintain the low pH in the lumen. Numerous ion transporters and channels on these parietal...
Stomach Histology
What is Gene Expression?
Gene expression is the process in which DNA directs the synthesis of functional products, that is, proteins. Cells can regulate gene expression at various stages. It allows organisms to generate different cell types and enables cells to adapt to internal and external factors.
Genetic Information Flows from DNA to RNA to Protein
A gene is a stretch of DNA that serves as the blueprint for functional RNAs and proteins. Since DNA is made up of nucleotides and proteins consist of amino...
Organization of Genes

