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Updated: Mar 11, 2026

A Nonsequencing Approach for the Rapid Detection of RNA Editing
Published on: April 21, 2022
Inherited variants affecting RNA editing may contribute to ovarian cancer susceptibility: results from a large-scale
Jennifer B Permuth1, Brett Reid1, Madalene Earp2
1Department of Cancer Epidemiology, Moffitt Cancer Center, Tampa, FL, USA.
Abstract:
RNA editing in mammals is a form of post-transcriptional modification in which adenosine is converted to inosine by the adenosine deaminases acting on RNA (ADAR) family of enzymes. Based on evidence of altered ADAR expression in epithelial ovarian cancers (EOC), we hypothesized that single nucleotide polymorphisms (SNPs) in ADAR genes modify EOC susceptibility, potentially by altering ovarian tissue gene expression. Using directly genotyped and imputed data from 10,891 invasive EOC cases and 21,693 controls, we evaluated the associations of 5,303 SNPs in ADAD1, ADAR, ADAR2, ADAR3, and SND1. Unconditional logistic regression was used to estimate odds ratios (OR) and 95% confidence intervals (CI), with adjustment for European ancestry. We conducted gene-level analyses using the Admixture Maximum Likelihood (AML) test and the Sequence-Kernel Association test for common and rare variants (SKAT-CR). Association analysis revealed top risk-associated SNP rs77027562 (OR (95% CI)= 1.39 (1.17-1.64), P=1.0x10-4) in ADAR3 and rs185455523 in SND1 (OR (95% CI)= 0.68 (0.56-0.83), P=2.0x10-4). When restricting to serous histology (n=6,500), the magnitude of association strengthened for rs185455523 (OR=0.60, P=1.0x10-4). Gene-level analyses revealed that variation in ADAR was associated (P<0.05) with EOC susceptibility, with PAML=0.022 and PSKAT-CR=0.020. Expression quantitative trait locus analysis in EOC tissue revealed significant associations (P<0.05) with ADAR expression for several SNPs in ADAR, including rs1127313 (G/A), a SNP in the 3' untranslated region. In summary, germline variation involving RNA editing genes may influence EOC susceptibility, warranting further investigation of inherited and acquired alterations affecting RNA editing.
Insights
Genetic variations in RNA editing genes, specifically adenosine deaminases acting on RNA (ADAR), may influence epithelial ovarian cancer (EOC) susceptibility. Further research is needed to explore these inherited and acquired alterations.
Area of Science:
- Genetics
- Molecular Biology
- Oncology
Background:
- RNA editing, a post-transcriptional modification, involves adenosine-to-inosine conversion by ADAR enzymes.
- Altered ADAR expression is observed in epithelial ovarian cancers (EOC).
- Germline genetic variations in ADAR genes could potentially impact EOC risk.
Purpose of the Study:
- To investigate the association between single nucleotide polymorphisms (SNPs) in ADAR-related genes and EOC susceptibility.
- To explore the potential role of these genetic variations in altering ovarian tissue gene expression.
Main Methods:
- Genome-wide association study (GWAS) utilizing directly genotyped and imputed data from 10,891 EOC cases and 21,693 controls.
- Evaluation of 5,303 SNPs across ADAD1, ADAR, ADAR2, ADAR3, and SND1 genes.
- Logistic regression for SNP association analysis and gene-level analyses (AML, SKAT-CR) were performed.
Main Results:
- Top risk-associated SNPs identified: rs77027562 in ADAR3 (OR=1.39) and rs185455523 in SND1 (OR=0.68).
- The association for rs185455523 was stronger in serous histology (OR=0.60).
- Gene-level analyses indicated ADAR variation is associated with EOC susceptibility (P<0.05).
Conclusions:
- Germline variations in RNA editing genes, particularly ADAR, may contribute to EOC susceptibility.
- Specific SNPs in ADAR and SND1 show significant associations with EOC risk.
- Further investigation into inherited and acquired alterations affecting RNA editing in EOC is warranted.
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