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PMID: 27302133 Published · ppublish English Journal Article

Illumina-based RiboMethSeq approach for mapping of 2'-O-Me residues in RNA.

Nucleic acids research ·Vol. 44 ·No. 16 ·2016-00-19 ·Pages e135

Marchand V, Blanloeil-Oillo F, Helm M, Motorin Y

Abstract

RNA 2'-O-methylation is one of the ubiquitous nucleotide modifications found in many RNA types from Bacteria, Archaea and Eukarya. RNAs bearing 2'-O-methylations show increased resistance to degradation and enhanced stability in helices. While the exact role of each 2'-O-Me residue remained elusive, the catalytic protein Fibrillarin (Nop1 in yeast) responsible for 2'-O-methylation in eukaryotes, is associated with human pathologies. Therefore, there is an urgent need to precisely map and quantify hundreds of 2'-O-Me residues in RNA using high-throughput technologies. Here, we develop a reliable protocol using alkaline fragmentation of total RNA coupled to a commonly used ligation approach, and Illumina sequencing. We describe a methodology to detect 2'-O-methylations with high sensitivity and reproducibility even with limited amount of starting material (1 ng of total RNA). The method provides a quantification of the 2'-O-methylation occupancy of a given site, allowing to detect relatively small changes (>10%) in 2'-O-methylation profiles. Altogether this technique unlocks a technological barrier since it will be applicable for routine parallel treatment of biological and clinical samples to decipher the functions of 2'-O-methylations in pathologies.

MeSH Terms
Gene Deletion Gene Library Methylation Nucleotides/metabolism Oligonucleotides/metabolism RNA, Fungal/metabolism RNA, Small Nucleolar/metabolism Reproducibility of Results Saccharomyces cerevisiae/metabolism Sequence Analysis, RNA/methods
Chemicals
Nucleotides Oligonucleotides RNA, Fungal RNA, Small Nucleolar
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Marchand Virginie
IMoPA UMR7365 CNRS-UL, BioPole Lorraine University, 9 avenue de la Foret de Haye, 54505 Vandoeuvre-les-Nancy, France Next-Generation Sequencing Core Facility, FR3209 BMCT, Lorraine University, 9 avenue de la Foret de Haye, 54505 Vandoeuvre-les-Nancy, France.
Blanloeil-Oillo Florence
IMoPA UMR7365 CNRS-UL, BioPole Lorraine University, 9 avenue de la Foret de Haye, 54505 Vandoeuvre-les-Nancy, France Next-Generation Sequencing Core Facility, FR3209 BMCT, Lorraine University, 9 avenue de la Foret de Haye, 54505 Vandoeuvre-les-Nancy, France.
Helm Mark
Institute of Pharmacy and Biochemistry, Johannes Gutenberg University Mainz, Staudingerweg 5, 55128 Mainz, Germany.
Motorin Yuri ORCID
IMoPA UMR7365 CNRS-UL, BioPole Lorraine University, 9 avenue de la Foret de Haye, 54505 Vandoeuvre-les-Nancy, France Next-Generation Sequencing Core Facility, FR3209 BMCT, Lorraine University, 9 avenue de la Foret de Haye, 54505 Vandoeuvre-les-Nancy, France iouri.motorine@univ-lorraine.fr.
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Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
1362-4962
Published
2016-00-19
Epub
2016-00-14
Pages
e135
Language
English
Region
England
NLM ID
0411011
PMCID
PMC5027498
Subset
IM
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