Combinatorial control of Drosophila circular RNA expression by intronic repeats, hnRNPs, and SR proteins

Комбинаторный контроль экспрессии кольцевых РНК Drosophila интронными повторами, hnRNP- и SR-белками
Marianne C. Kramer, Dongming Liang, Deirdre C. Tatomer, Beth Gold, Zachary M. March, Sara Cherry, Jeremy E. Wilusz
2015-10-08

Drosophila circular RNAsbacksplicinghnRNP and SR proteinsintronic repeatstransposable element base-pairing
Thousands of eukaryotic protein-coding genes are noncanonically spliced to produce circular RNAs. Bioinformatics has indicated that long introns generally flank exons that circularize in Drosophila, but the underlying mechanisms by which these circular RNAs are generated are largely unknown. Here, using extensive mutagenesis of expression plasmids and RNAi screening, we reveal that circularization of the Drosophila laccase2 gene is regulated by both intronic repeats and trans-acting splicing factors. Analogous to what has been observed in humans and mice, base-pairing between highly complementary transposable elements facilitates backsplicing. Long flanking repeats (∼ 400 nucleotides [nt]) promote circularization cotranscriptionally, whereas pre-mRNAs containing minimal repeats (<40 nt) generate circular RNAs predominately after 3' end processing. Unlike the previously characterized Muscleblind (Mbl) circular RNA, which requires the Mbl protein for its biogenesis, we found that Laccase2 circular RNA levels are not controlled by Mbl or the Laccase2 gene product but rather by multiple hnRNP (heterogeneous nuclear ribonucleoprotein) and SR (serine-arginine) proteins acting in a combinatorial manner. hnRNP and SR proteins also regulate the expression of other Drosophila circular RNAs, including Plexin A (PlexA), suggesting a common strategy for regulating backsplicing. Furthermore, the laccase2 flanking introns support efficient circularization of diverse exons in Drosophila and human cells, providing a new tool for exploring the functional consequences of circular RNA expression across eukaryotes.
1
Base-pairing between highly complementary transposable elements promotes backsplicing, paralleling mechanisms reported in mammals.
2
Drosophila laccase2 circular RNA production is regulated by both intronic repeats and trans-acting splicing factors.
3
Long flanking repeats of approximately 400 nucleotides promote cotranscriptional circularization, whereas repeats shorter than 40 nucleotides favor post-3′-end-processing circularization.
4
Unlike Muscleblind-dependent circular RNA biogenesis, Laccase2 circular RNA levels are controlled combinatorially by multiple hnRNP and SR proteins, not by Muscleblind or Laccase2 protein.
5
hnRNP and SR proteins also regulate Plexin A circular RNA, suggesting a common regulatory strategy; laccase2 flanking introns efficiently circularize diverse exons in Drosophila and human cells.

Drosophila circular RNAs, particularly the laccase2 circular RNA and its flanking introns

Combinatorial regulation of circular RNA biogenesis and backsplicing by intronic repeats and trans-acting hnRNP and SR splicing factors, including the dependence on transcriptional timing and 3′-end processing

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2015-10-08
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Marianne C. Kramer
Dongming Liang
Deirdre C. Tatomer
Beth Gold
Zachary M. March
Sara Cherry
Jeremy E. Wilusz
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