Study / S1GHHVVCD2018-01-15
High-throughput identification of RNA nuclear enrichment sequences
Chinmay J Shukla, Alexandra L McCorkindale, Chiara Gerhardinger, Keegan D Korthauer, Moran N Cabili et al.
About this study
In the post-genomic era, thousands of putative noncoding regulatory regions have been identified, such as enhancers, promoters, long noncoding RNAs (lncRNAs), and a cadre of small peptides. These ever-growing catalogs require high-throughput assays to test their functionality at scale. Massively parallel reporter assays have greatly enhanced the understanding of noncoding DNA elements en masse. Here, we present a massively parallel RNA assay (MPRNA) that can assay 10,000 or more RNA segments for RNA-based functionality. We applied MPRNA to identify RNA-based nuclear localization domains harbored in lncRNAs. We examined a pool of 11,969 oligos densely tiling 38 human lncRNAs that were fused to a cytosolic transcript. After cell fractionation and barcode sequencing, we identified 109 unique RNA regions that significantly enriched this cytosolic transcript in the nucleus including a cytosine-rich motif. These nuclear enrichment sequences are highly conserved and over-represented in global nuclear fractionation sequencing. Importantly, many of these regions were independently validated by single-molecule RNA fluorescence in situ hybridization. Overall, we demonstrate the utility of MPRNA for future investigation of RNA-based functionalities.
Full author list & citation
Chinmay J Shukla, Alexandra L McCorkindale, Chiara Gerhardinger, Keegan D Korthauer, Moran N Cabili, David M Shechner, Rafael A Irizarry, Philipp G Maass, John L Rinn. High-throughput identification of RNA nuclear enrichment sequences. 2018-01-15. https://doi.org/10.15252/embj.201798452
Experiments 1
E1LTB5QEW
A pool of 11,969 153-nt oligos densely tiled 38 lncRNA transcripts (mostly 10-nt spacing; 40-nt spacing for kcnq1ot1) was cloned 3' of noncoding fsSox2 and transiently transfected into HeLa. Six biological replicates were fractionated into nuclei and matched total-RNA samples, and barcode RNA-seq quantified nuclear enrichment.