Nanopore direct RNA sequencing maps the complexity of Arabidopsis mRNA processing and m<sup>6</sup>A modification.

Parker, Matthew T; Knop, Katarzyna; Sherwood, Anna V; Schurch, Nicholas J; Mackinnon, Katarzyna; Gould, Peter D; Hall, Anthony Jw; Barton, Geoffrey J et al. · Elife · 2020

basic_science · Level V

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Abstract

Understanding genome organization and gene regulation requires insight into RNA transcription, processing and modification. We adapted nanopore direct RNA sequencing to examine RNA from a wild-type accession of the model plant <i>Arabidopsis thaliana</i> and a mutant defective in mRNA methylation (m<sup>6</sup>A). Here we show that m<sup>6</sup>A can be mapped in full-length mRNAs transcriptome-wide and reveal the combinatorial diversity of cap-associated transcription start sites, splicing events, poly(A) site choice and poly(A) tail length. Loss of m<sup>6</sup>A from 3' untranslated regions is associated with decreased relative transcript abundance and defective RNA 3' end formation. A functional consequence of disrupted m<sup>6</sup>A is a lengthening of the circadian period. We conclude that nanopore direct RNA sequencing can reveal the complexity of mRNA processing and modification in full-length single molecule reads. These findings can refine Arabidopsis genome annotation. Further, applying this approach to less well-studied species could transform our understanding of what their genomes encode.

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