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Exon Circularization Requires Canonical Splice Signals

Cell Reports · 2014 · Vol. 10(1) · pp. 103–111
Stefan StarkeIsabelle JostOliver RoßbachTim SchneiderSilke SchreinerLee-Hsueh HungAlbrecht Bindereif

Abstract

Circular RNAs (circRNAs), an abundant class of noncoding RNAs in higher eukaryotes, are generated from pre-mRNAs by circularization of adjacent exons. Using a set of 15 circRNAs, we demonstrated their cell-type-specific expression and circular versus linear processing in mammalian cells. Northern blot analysis combined with RNase H cleavage conclusively proved a circular configuration for two examples, LPAR1 and HIPK3. To address the circularization mechanism, we analyzed the sequence requirements using minigenes derived from natural circRNAs. Both canonical splice sites are required for circularization, although they vary in flexibility and potential use of cryptic sites. Surprisingly, we found that no specific circRNA exon sequence is necessary and that potential flanking intron structures can modulate circularization efficiency. In combination with splice inhibitor assays, our results argue that the canonical spliceosomal machinery functions in circRNA biogenesis, constituting an alternative splicing mode.

Circular RNAs in diseasesRNA Research and SplicingRNA modifications and cancerBiologyIntronExonRNA splicingGeneticsspliceCircular RNARNase PNon canonicalBiogenesis

MeSH terms

ExonsHumansIntronsNucleic Acid ConformationRNA PrecursorsProtein Serine-Threonine KinasesSpliceosomesAlternative SplicingRNA, UntranslatedRNA Splice SitesIntracellular Signaling Peptides and ProteinsHEK293 Cells

Funding

  • Deutsche Forschungsgemeinschaft
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