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Review
. 2019 Sep;10(5):e1538.
doi: 10.1002/wrna.1538. Epub 2019 Apr 29.

Intriguing circles: Conflicts and controversies in circular RNA research

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Review

Intriguing circles: Conflicts and controversies in circular RNA research

Hui-Min Li et al. Wiley Interdiscip Rev RNA. 2019 Sep.

Abstract

Circular RNAs (circRNAs) are covalently closed RNA circles without a 5' cap or 3' tail. Since the landmark discovery of ciRS-7/CDR1as functioning as a miR-7 sponge in 2013, circRNAs have become a hot topic in RNA research. CircRNAs have been found to play active roles in cancer, cardiovascular diseases, neurological disorders, and many other diseases. They can function as microRNA (miRNA) sponges, protein scaffolds, and even translation templates. However, as circRNA research expands, many divergent views have emerged. For example, are most circRNAs competent in serving as miRNA sponges? What kinds of circRNAs are most likely to sponge miRNAs? Apart from sponging miRNAs, what could the functions of most circRNAs be? What are the features of circRNAs that are translatable? Many researchers have claimed that circRNAs are abundant, stable, conserved, and specific molecules, which hold great potential in serving as biomarkers. However, circRNA abundance is variable and some circRNAs are abundant while others are not. In addition, their stability and conservation may vary under different circumstances. Furthermore, it is unclear whether circRNA biogenesis is more likely to be regulated by RNA binding proteins or transcription factors. All of these are open questions that remain to be answered by researchers in this field. Discussing and investigating these questions will advance the understanding of this class of novel molecules and may propel inspiring new ideas for future studies. This article is categorized under: Regulatory RNAs/RNAi/Riboswitches > Regulatory RNAs RNA in Disease and Development > RNA in Disease RNA Methods > RNA Analyses in Cells RNA Interactions with Proteins and Other Molecules > Protein-RNA Interactions: Functional Implications.

Keywords: circular RNA; microRNA sponge; protein scaffold; translation.

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References

REFERENCES

    1. Aktas, T., Avsar Ilik, I., Maticzka, D., Bhardwaj, V., Pessoa Rodrigues, C., Mittler, G., … Akhtar, A. (2017). DHX9 suppresses RNA processing defects originating from the Alu invasion of the human genome. Nature, 544(7648), 115-119. https://doi.org/10.1038/nature21715
    1. Alhasan, A. A., & Izuogu, O. G. (2016). Circular RNA enrichment in platelets is a signature of transcriptome degradation. Blood, 127(9), e1-e11. https://doi.org/10.1182/blood-2015-06-649434
    1. Armakola, M., Higgins, M. J., Figley, M. D., Barmada, S. J., Scarborough, E. A., Diaz, Z., … Gitler, A. D. (2012). Inhibition of RNA lariat debranching enzyme suppresses TDP-43 toxicity in ALS disease models. Nature Genetics, 44(12), 1302-1309. https://doi.org/10.1038/ng.2434
    1. Ashwal-Fluss, R., Meyer, M., Pamudurti, N. R., Ivanov, A., Bartok, O., Hanan, M., … Kadener, S. (2014). circRNA biogenesis competes with pre-mRNA splicing. Molecular Cell, 56(1), 55-66. https://doi.org/10.1016/j.molcel.2014.08.019
    1. Aufiero, S., van den Hoogenhof, M. M. G., Reckman, Y. J., Beqqali, A., van der Made, I., Kluin, J., … Creemers, E. E. (2018). Cardiac circRNAs arise mainly from constitutive exons rather than alternatively spliced exons. RNA, 24(6), 815-827. https://doi.org/10.1261/rna.064394.117

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