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Updated: Feb 21, 2026

An Integrated Platform for Genome-wide Mapping of Chromatin States Using High-throughput ChIP-sequencing in Tumor Tissues
Published on: April 5, 2018
Epigenetic regulation of gene expression in cancer: techniques, resources and analysis
Abstract:
Cancer is a complex disease, driven by aberrant activity in numerous signaling pathways in even individual malignant cells. Epigenetic changes are critical mediators of these functional changes that drive and maintain the malignant phenotype. Changes in DNA methylation, histone acetylation and methylation, noncoding RNAs, posttranslational modifications are all epigenetic drivers in cancer, independent of changes in the DNA sequence. These epigenetic alterations were once thought to be crucial only for the malignant phenotype maintenance. Now, epigenetic alterations are also recognized as critical for disrupting essential pathways that protect the cells from uncontrolled growth, longer survival and establishment in distant sites from the original tissue. In this review, we focus on DNA methylation and chromatin structure in cancer. The precise functional role of these alterations is an area of active research using emerging high-throughput approaches and bioinformatics analysis tools. Therefore, this review also describes these high-throughput measurement technologies, public domain databases for high-throughput epigenetic data in tumors and model systems and bioinformatics algorithms for their analysis. Advances in bioinformatics data that combine these epigenetic data with genomics data are essential to infer the function of specific epigenetic alterations in cancer. These integrative algorithms are also a focus of this review. Future studies using these emerging technologies will elucidate how alterations in the cancer epigenome cooperate with genetic aberrations during tumor initiation and progression. This deeper understanding is essential to future studies with epigenetics biomarkers and precision medicine using emerging epigenetic therapies.
Insights
Epigenetic changes like DNA methylation and chromatin structure significantly drive cancer development and progression. Understanding these alterations is key to developing new epigenetic biomarkers and therapies for precision medicine.
Area of Science:
- Oncology
- Epigenetics
- Bioinformatics
Background:
- Cancer is a complex disease driven by aberrant signaling pathways.
- Epigenetic alterations, including DNA methylation and chromatin structure changes, are critical drivers of cancer, independent of genetic mutations.
- These epigenetic changes are involved in uncontrolled cell growth, survival, and metastasis.
Purpose of the Study:
- To review the role of DNA methylation and chromatin structure in cancer.
- To describe high-throughput measurement technologies and bioinformatics tools for analyzing epigenetic data.
- To highlight the importance of integrating epigenetic and genomic data for understanding cancer.
Main Methods:
- Review of current literature on epigenetics in cancer.
- Description of high-throughput epigenetic measurement technologies.
- Discussion of bioinformatics approaches for analyzing epigenetic and genomic data.
Main Results:
- Epigenetic alterations play crucial roles in cancer initiation and progression.
- High-throughput technologies and bioinformatics tools are essential for studying cancer epigenetics.
- Integration of epigenetic and genomic data is vital for inferring functional roles of epigenetic alterations.
Conclusions:
- Epigenetic alterations are fundamental to cancer biology.
- Emerging technologies and data integration will advance our understanding of cancer epigenetics.
- This knowledge is essential for developing novel epigenetic biomarkers and precision therapies.
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