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Shenasa, H.

Publications and source records attributed to Shenasa, H..

2 recordsLinked to original sources

Nano-Mod-Amp reveals RNA sequence, structural and cell type specific features of pseudouridylation by PUS7

Pseudouridines are abundant mRNA modifications that can impact splicing, translation, and stability to tune gene expression. PUS7 is one of the major mRNA pseudouridine synthase whose dysregulation leads to neurodevelopmental disorders and cancer, underscoring the critical function of PUS7-dependent pseudouridines. Beyond a short and degenerate consensus sequence, the molecular mechanisms underlying PUS7-mediated pseudouridylation remain unknown. A lack of targeted, high-throughput pseudouridine detection methods limits simultaneous interrogation of PUS7 regulatory features across many experimental conditions. We developed novel Nanopore sequencing tools, including Nano-Mod-Amp, to reveal pseudouridine stoichiometry, its RNA structural context, and dependence on PUS7 levels at specific sites across biological conditions. We identified a novel RNA structural signature that is associated with more efficient mRNA modification by PUS7. Pseudouridines are largely responsive to modulations in PUS7 protein levels, demonstrating the regulatory potential of varying PUS7 levels across cellular conditions. Conversely, PUS7 activity is also regulated in a cell-type specific manner, independent of PUS7 expression levels in a manner consistent with regulation by RNA structure and RNA binding proteins. Together, we developed Nanopore sequencing tools and uncovered new mechanisms of PUS7 regulation with a framework that can be applied to other RNA-modifying enzymes to query the regulation of the epitranscriptome. HighlightsO_LINanopore direct RNA sequencing identifies PUS7-dependent pseudouridines with stoichiometry. C_LIO_LINano-Mod-Amp quantifies PUS7-dependent pseudouridines at hundreds of sites in high-throughput. C_LIO_LIMPRAs define RNA sequence and structural features associated with modification by PUS7. C_LIO_LIIndividual PUS7 target pseudouridines are substoichiometric and poised for regulation. C_LIO_LIPUS7 activity is regulated by cell type in the absence of differences in PUS7 protein levels. C_LI

molecular biology↗

CAR-SPLASH identifies nascent pre-mRNA structures implicated in kinetic coupling and alternative splicing

Pre-mRNA splicing is kinetically coupled to transcription as shown by the widespread effects of transcription speed on alternative splicing outcomes. The molecular basis for such kinetic coupling is incompletely understood, but one potential mechanism is through elongation rate dependent alternative folding pathways of the nascent pre-mRNA. To search for RNA structures in nascent pre-mRNA, we modified SPLASH (1) (Sequencing of Psoralen Crosslinked, Ligated And Selected Hybrids) for use with Chromatin Associated RNA. We applied this new method called CAR-SPLASH to cells expressing WT and slow mutant RNA polymerase II and identified > 3000 intramolecular RNA structures of which > 400 are proximal to splice sites. Antisense oligonucleotide (ASO) disruption of several such structures that sequester splice sites has a major impact on alternative splicing outcomes, even though the ASOs do not directly disrupt splice sites. ASO disruption of novel regulatory elements that we designate "RNA kinetic switches", modified alternative splicing of NISCH Exon 18, GAK Exon 7 and MEGF8 Exon 14 in a way that depends on the rate of transcription elongation. We propose that these switches mediate kinetic coupling via effects of transcription speed on folding of nascent RNA structures that modulate alternative splicing, and that many nascent RNA structures can thereby serve as new targets for splice modifying ASOs. Significance StatementAlternative splicing (AS) of mRNAs is a major regulator of gene expression that is frequently disrupted is disease. AS is affected by the speed of RNA polymerase II that synthesizes mRNA precursors, but how such kinetic coupling works is not well understood. We developed a method, CAR-SPLASH, to capture RNA structures in nascent RNA chains by cross-linking with psoralen. CAR-SPLASH identified novel structural regulatory elements we call "RNA kinetic switches" that control AS in a way that depends on the speed of transcription. RNA kinetic switches are new targets for splice modifying antisense oligonucleotides that could have therapeutic value.

molecular biology↗