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Published on: August 21, 2014
MicroRNA-Mediated Obstruction of Stem-loop Alternative Splicing (MIMOSAS) regulates long-range alternative splicing
Kai Ruan1,2, Jiaqi Liu1,2, Melanie Xia3
1Department of Neurology, Division of Biological Sciences, The University of Chicago, Chicago, IL 60637, United States.
Abstract:
RNA secondary structures are key regulators of long-range pre-messenger RNA (mRNA) alternative splicing, yet the rules governing these structures and their effects on splice site selection are not well understood. We uncover a direct role for microRNAs in controlling alternative splicing by remodeling splice-relevant stem-loop structures in pre-mRNAs, a mechanism we term MicroRNA-mediated Obstruction of Stem-loop Alternative Splicing (MIMOSAS). Using a curated set of Drosophila genes containing conserved complementary regions ("boxes"), we developed a bioinformatic pipeline that integrates genome-wide structural prediction with energetic modeling to identify microRNAs that disrupt long-range stem-loop structures associated with alternative donor/acceptor usage or putative polyadenylation sites. We experimentally validated these predictions in vivo in Drosophila and in mammalian cell lines incorporating several split fluorescent protein-based splicing reporters. Our data show that microRNAs bidirectionally modulate splice isoform ratios by engaging structured pre-mRNA regions in an AGO1-dependent process. MIMOSAS-active microRNAs often use noncanonical pairing and optimize local folding energies rather than strict seed matches, underscoring the importance of RNA secondary structure in functional specificity. These findings broaden microRNA function beyond canonical silencing or translation repression and reveal a structurally grounded, potentially widespread layer of alternative splicing regulation with implications for RNA-based therapies.
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