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TRUE Gene Silencing: Screening of a Heptamer-type Small Guide RNA Library for Potential Cancer Therapeutic Agents
Published on: June 2, 2016
Circular RNA CpG island hypermethylation-associated silencing in human cancer
Humberto J Ferreira1, Veronica Davalos1, Manuel Castro de Moura1
1Cancer Epigenetics and Biology Program (PEBC), Bellvitge Biomedical Research Institute (IDIBELL), Barcelona, Catalonia, Spain.
Abstract:
Noncoding RNAs (ncRNAs), such as microRNAs and long noncoding RNAs (lncRNAs), participate in cellular transformation. Work done in the last decade has also demonstrated that ncRNAs with growth-inhibitory functions can undergo promoter CpG island hypermethylation-associated silencing in tumorigenesis. Herein, we wondered whether circular RNAs (circRNAs), a type of RNA transcripts lacking 5'-3' ends and forming closed loops that are gaining relevance in cancer biology, are also a target of epigenetic inactivation in tumors. To tackle this issue, we have used cancer cells genetically deficient for the DNA methyltransferase enzymes in conjuction with circRNA expression microarrays. We have found that the loss of DNA methylation provokes a release of circRNA silencing. In particular, we have identified that promoter CpG island hypermethylation of the genes TUSC3 (tumor suppressor candidate 3), POMT1 (protein O-mannosyltransferase 1), ATRNL1 (attractin-like 1) and SAMD4A (sterile alpha motif domain containing 4A) is linked to the transcriptional downregulation of both linear mRNA and the hosted circRNA. Although some circRNAs regulate the linear transcript, we did not observe changes in TUSC3 mRNA levels upon TUSC3 circ104557 overexpression. Interestingly, we found circRNA-mediated regulation of target miRNAs and an in vivo growth inhibitory effect upon TUSC3 circ104557 transduction. Data mining for 5'-end CpG island methylation of TUSC3, ATRNL1, POMT1 and SAMD4A in cancer cell lines and primary tumors showed that the epigenetic defect was commonly observed among different tumor types in association with the diminished expression of the corresponding transcript. Our findings support a role for circRNA DNA methylation-associated loss in human cancer.
Insights
Circular RNAs (circRNAs) can be silenced by DNA methylation in tumors. Loss of this epigenetic silencing reactivates circRNAs, impacting cancer growth and gene regulation, revealing circRNAs as key players in tumorigenesis.
Area of Science:
- Epigenetics
- Cancer Biology
- RNA Biology
Background:
- Noncoding RNAs (ncRNAs), including microRNAs and long noncoding RNAs (lncRNAs), are implicated in cellular transformation.
- Growth-inhibitory ncRNAs can be silenced in tumors via promoter CpG island hypermethylation.
- Circular RNAs (circRNAs) are emerging as significant players in cancer biology.
Purpose of the Study:
- To investigate whether circRNAs are epigenetically inactivated in tumors through DNA methylation.
- To explore the functional consequences of circRNA epigenetic silencing in cancer.
- To identify specific circRNAs and their host genes affected by promoter hypermethylation.
Main Methods:
- Utilized cancer cells deficient in DNA methyltransferase enzymes.
- Employed circRNA expression microarrays to analyze circRNA profiles.
- Performed data mining for 5'-end CpG island methylation and gene expression in cancer cell lines and tumors.
Main Results:
- Loss of DNA methylation led to the release of circRNA silencing.
- Promoter CpG island hypermethylation of TUSC3, POMT1, ATRNL1, and SAMD4A correlated with downregulated linear mRNA and hosted circRNA.
- Overexpression of TUSC3 circ104557 demonstrated circRNA-mediated regulation of target miRNAs and an in vivo growth inhibitory effect.
Conclusions:
- Epigenetic inactivation via DNA methylation is a mechanism affecting circRNA expression in human cancers.
- Specific circRNAs, like TUSC3 circ104557, exhibit tumor-suppressive functions.
- circRNAs represent a novel class of epigenetic targets in cancer development and progression.
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