Genome-Wide Analysis of RNA Secondary Structure

Annu Rev Genet. 2016 Nov 23:50:235-266. doi: 10.1146/annurev-genet-120215-035034. Epub 2016 Sep 14.

Abstract

Single-stranded RNA molecules fold into extraordinarily complicated secondary and tertiary structures as a result of intramolecular base pairing. In vivo, these RNA structures are not static. Instead, they are remodeled in response to changes in the prevailing physicochemical environment of the cell and as a result of intermolecular base pairing and interactions with RNA-binding proteins. Remarkable technical advances now allow us to probe RNA secondary structure at single-nucleotide resolution and genome-wide, both in vitro and in vivo. These data sets provide new glimpses into the RNA universe. Analyses of RNA structuromes in HIV, yeast, Arabidopsis, and mammalian cells and tissues have revealed regulatory effects of RNA structure on messenger RNA (mRNA) polyadenylation, splicing, translation, and turnover. Application of new methods for genome-wide identification of mRNA modifications, particularly methylation and pseudouridylation, has shown that the RNA "epitranscriptome" both influences and is influenced by RNA structure. In this review, we describe newly developed genome-wide RNA structure-probing methods and synthesize the information emerging from their application.

Keywords: DMS-seq; RNA structurome; SHAPE; Structure-seq; genome-wide; in vivo RNA folding.

Publication types

  • Review

MeSH terms

  • Biochemistry / methods
  • Genome
  • Genomics / methods*
  • Nucleic Acid Conformation
  • Polyadenylation
  • Protein Biosynthesis
  • RNA / chemistry*
  • RNA / metabolism
  • RNA Processing, Post-Transcriptional
  • RNA Splicing
  • RNA Stability
  • Spliceosomes / genetics
  • Spliceosomes / metabolism

Substances

  • RNA