ArticleGenome biology2023
Comprehensive analyses of partially methylated domains and differentially methylated regions in esophageal cancer reveal both cell-type- and cancer-specific epigenetic regulation.
Article in Genome biology, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed, 17 citations in OpenAlex.
- Molecular subtyping-guided precision therapy for ESCC: biomarker-driven strategies and clinical translation pathways.Clinical & translational oncology : official publication of the Federation of Spanish Oncology Societies and of the National Cancer Institute of Mexico · 2026Review
- EpiATLAS - a reference for human epigenomic research.bioRxiv : the preprint server for biology · 2026Article
- Integrated flexible DNA methylation-chromatin segmentation modeling enhances epigenomic state annotation.Nucleic acids research · 2026Article
- Pan-cancer differentially methylated regions are promising biomarkers for non-invasive diagnosis in multiple cancers.iScience · 2026Article
- Esophageal cancer: from pathogenesis to precision therapies.Signal transduction and targeted therapy · 2026Review
- Long-read sequencing identifies aberrant fragmentation patterns linked to elevated cell-free DNA levels in cancer.Genome biology · 2026Article
- DNMT1 loss leads to hypermethylation of a subset of late replicating domains by DNMT3A.PLoS genetics · 2026Article
- Differences in immune indicators among normal, high-risk, and esophageal cancer populations and development of a predictive model.Frontiers in immunology · 2026Article
- DNA methylation landscapes in human cells and their chromatin determinants.Ageing and cancer research & treatment · 2026Article
- Associations Between Non-Genetic Risk Factors and DNA Methylation Alterations in Barrett's Esophagus and Its Progression to Esophageal Adenocarcinoma.International journal of molecular sciences · 2025Review
- Epigenetically-Upregulated CD98 Shed Light on the Precancerous Diagnosis and Prognosis Prediction of Esophageal Cancer.Cancer science · 2025Article
- NKX2-5/LHX1 and UHRF1 Establishing a Positive Feedback Regulatory Circuitry Drives Esophageal Squamous Cell Carcinoma through Epigenetic Dysregulation.Advanced science (Weinheim, Baden-Wurttemberg, Germany) · 2025Article
- DNA methylation in esophageal cancer: technological advances and early detection clinical applications.Frontiers in oncology · 2025Review
- MethyLasso: a segmentation approach to analyze DNA methylation patterns and identify differentially methylated regions from whole-genome datasets.Nucleic acids research · 2024Article
- NMR and MS reveal characteristic metabolome atlas and optimize esophageal squamous cell carcinoma early detection.Nature communications · 2024Article
- Epigenomic analyses identify FOXM1 as a key regulator of anti-tumor immune response in esophageal adenocarcinoma.Cell death & disease · 2024Article
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Authors and funding
9 authors at 4 institutions in 3 countries.
Funding
Abstract
backgroundAs one of the most common malignancies, esophageal cancer has two subtypes, squamous cell carcinoma and adenocarcinoma, arising from distinct cells-of-origin. Distinguishing cell-type-specific molecular features from cancer-specific characteristics is challenging.
resultsWe analyze whole-genome bisulfite sequencing data on 45 esophageal tumor and nonmalignant samples from both subtypes. We develop a novel sequence-aware method to identify large partially methylated domains (PMDs), revealing profound heterogeneity at both methylation level and genomic distribution of PMDs across tumor samples. We identify subtype-specific PMDs that are associated with repressive transcription, chromatin B compartments and high somatic mutation rate. While genomic locations of these PMDs are pre-established in normal cells, the degree of loss is significantly higher in tumors. We find that cell-type-specific deposition of H3K36me2 may underlie genomic distribution of PMDs. At a smaller genomic scale, both cell-type- and cancer-specific differentially methylated regions (DMRs) are identified for each subtype. Using binding motif analysis within these DMRs, we show that a cell-type-specific transcription factor HNF4A maintains the binding sites that it generates in normal cells, while establishing new binding sites cooperatively with novel partners such as FOSL1 in esophageal adenocarcinoma. Finally, leveraging pan-tissue single-cell and pan-cancer epigenomic datasets, we demonstrate that a substantial fraction of cell-type-specific PMDs and DMRs identified here in esophageal cancer are actually markers that co-occur in other cancers originating from related cell types.
conclusionsThese findings advance our understanding of DNA methylation dynamics at various genomic scales in normal and malignant states, providing novel mechanistic insights into cell-type- and cancer-specific epigenetic regulations.
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Registered trials
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