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DNA Hypomethylation Underlies Epigenetic Swapping between AGO1 and AGO1-V2 Isoforms in Tumors
Jean S Fain1, Camille Wangermez1, Axelle Loriot2
1Group of Genetics and Epigenetics, de Duve Institute, Université Catholique de Louvain, 1200 Brussels, Belgium.
Abstract:
Human tumors progress in part by accumulating epigenetic alterations, which include gains and losses of DNA methylation in different parts of the cancer cell genome. Recent work has revealed a link between these two opposite alterations by showing that DNA hypomethylation in tumors can induce the expression of transcripts that overlap downstream gene promoters and thereby induce their hypermethylation. Preliminary in silico evidence prompted us to investigate if this mechanism applies to the locus harboring AGO1, a gene that plays a central role in miRNA biogenesis and RNA interference. Inspection of public RNA-Seq datasets and RT-qPCR experiments show that an alternative transcript starting 13.4 kb upstream of AGO1 (AGO1-V2) is expressed specifically in testicular germ cells, and becomes aberrantly activated in different types of tumors, particularly in tumors of the esophagus, stomach, and lung. This expression pattern classifies AGO1-V2 into the group of "Cancer-Germline" (CG) genes. Analysis of transcriptomic and methylomic datasets provided evidence that transcriptional activation of AGO1-V2 depends on DNA demethylation of its promoter region. Western blot experiments revealed that AGO1-V2 encodes a shortened isoform of AGO1, corresponding to a truncation of 75 aa in the N-terminal domain, and which we therefore referred to as "∆NAGO1". Interestingly, significant correlations between hypomethylation/activation of AGO1-V2 and hypermethylation/repression of AGO1 were observed upon examination of tumor cell lines and tissue datasets. Overall, our study reveals the existence of a process of interdependent epigenetic alterations in the AGO1 locus, which promotes swapping between two AGO1 protein-coding mRNA isoforms in tumors.
Insights
Human tumors exhibit epigenetic alterations, including DNA methylation changes. Aberrant activation of the AGO1-V2 transcript in tumors drives hypermethylation of the AGO1 gene, leading to swapped protein isoforms.
Area of Science:
- Epigenetics and Cancer Biology
- Molecular Oncology
- Gene Regulation
Background:
- Human tumors accumulate epigenetic alterations, including DNA methylation changes.
- DNA hypomethylation can drive hypermethylation of downstream gene promoters.
- The AGO1 gene is crucial for miRNA biogenesis and RNA interference.
Purpose of the Study:
- To investigate if DNA hypomethylation-induced hypermethylation mechanism applies to the AGO1 locus.
- To characterize the expression and epigenetic regulation of an alternative AGO1 transcript (AGO1-V2).
- To determine the functional consequence of AGO1-V2 expression in cancer.
Main Methods:
- Analysis of public RNA-Seq, transcriptomic, and methylomic datasets.
- Reverse transcription quantitative PCR (RT-qPCR) for gene expression analysis.
- Western blot experiments for protein isoform characterization.
Main Results:
- An alternative transcript, AGO1-V2, is specifically expressed in testicular germ cells and aberrantly activated in various tumors (esophagus, stomach, lung).
- AGO1-V2 activation is dependent on DNA demethylation of its promoter, classifying it as a Cancer-Germline (CG) gene.
- AGO1-V2 encodes a shortened AGO1 isoform (∆NAGO1), and its hypomethylation/activation correlates with AGO1 hypermethylation/repression in tumors.
Conclusions:
- A novel mechanism of interdependent epigenetic alterations at the AGO1 locus is revealed.
- Aberrant activation of AGO1-V2 in tumors leads to swapped expression of AGO1 protein isoforms.
- This epigenetic reprogramming contributes to tumor progression via altered miRNA biogenesis.
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