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Updated: Aug 23, 2026

Methyl-binding DNA capture Sequencing for Patient Tissues
Published on: October 31, 2016
DNA hypomethylation and ovarian cancer biology
Martin Widschwendter1, Guanchao Jiang, Christian Woods
1Department of Obstetrics and Gynecology, Medical University Innsbruck, Innsbruck, Austria. martin.widschwendter@uibk.ac.at
Abstract:
Hypomethylation of some portions of the genome and hypermethylation of others are very frequent in human cancer. The hypomethylation often involves satellite 2 (Sat2) DNA in the juxtacentromeric (centromere-adjacent) region of chromosome 1. In this study, we analyzed methylation in centromeric and juxtacentromeric satellite DNA in 115 ovarian cancers, 26 non-neoplastic ovarian specimens, and various normal somatic tissue standards. We found that hypomethylation of both types of satellite DNA in ovarian samples increased significantly from non-neoplastic toward cancer tissue. Furthermore, strong hypomethylation was significantly more prevalent in tumors of advanced stage or high grade. Importantly, extensive hypomethylation of Sat2 DNA in chromosome 1 was a highly significant marker of poor prognosis (relative risk for relapse, 4.1, and death, 9.4) and more informative than tumor grade or stage. Also, comparing methylation of satellite DNA and 15 5' gene regions, which are often hypermethylated in cancer or implicated in ovarian carcinogenesis, we generally found no positive or negative association between methylation changes in satellite DNA and in the gene regions. However, hypermethylation at two loci, CDH13 (at 16q24) and RNR1 (at 13p12), was correlated strongly with lower levels of Sat2 hypomethylation. The CDH13/Sat2 epigenetic correlation was seen also in breast cancers. We conclude that satellite DNA hypomethylation is an important issue in ovarian carcinogenesis as demonstrated by: (a) an increase from non-neoplastic tissue toward ovarian cancer; (b) an increase within the ovarian cancer group toward advanced grade and stage; and (c) the finding that strong hypomethylation was an independent marker of poor prognosis.
Insights
Hypomethylation of satellite DNA, particularly satellite 2 (Sat2) DNA, is common in ovarian cancer and linked to advanced disease. Extensive Sat2 hypomethylation serves as a significant indicator of poor prognosis in ovarian cancer patients.
Area of Science:
- Epigenetics
- Genomics
- Oncology
Background:
- Genomic hypomethylation and hypermethylation are hallmarks of human cancers.
- Satellite 2 (Sat2) DNA, located in chromosome 1's juxtacentromeric region, is frequently hypomethylated in cancer.
Purpose of the Study:
- To investigate methylation patterns in centromeric and juxtacentromeric satellite DNA in ovarian cancer.
- To assess the clinical significance of satellite DNA hypomethylation as a prognostic marker in ovarian cancer.
Main Methods:
- Analysis of satellite DNA methylation in 115 ovarian cancers, 26 non-neoplastic ovarian tissues, and normal somatic tissues.
- Comparison of methylation status between satellite DNA and 15 gene promoter regions.
- Correlation analysis with tumor stage, grade, and patient outcomes (relapse and death).
Main Results:
- Satellite DNA hypomethylation significantly increased from non-neoplastic to cancerous ovarian tissues.
- Advanced stage and high grade ovarian tumors showed higher prevalence of hypomethylation.
- Extensive Sat2 DNA hypomethylation was a strong, independent predictor of poor prognosis (RR for relapse 4.1, death 9.4).
- No general association was found between satellite DNA hypomethylation and gene promoter hypermethylation, except for CDH13 and RNR1 loci.
Conclusions:
- Satellite DNA hypomethylation is a critical epigenetic alteration in ovarian carcinogenesis.
- The degree of hypomethylation correlates with tumor progression and is a significant independent marker of poor prognosis in ovarian cancer.
- Epigenetic alterations in satellite DNA and gene promoter regions are largely independent, with specific exceptions.
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