m<sup>6</sup>A RNA modifications are measured at single-base resolution across the mammalian transcriptome.

Hu, Lulu; Liu, Shun; Peng, Yong; Ge, Ruiqi; Su, Rui; Senevirathne, Chamara; Harada, Bryan T; Dai, Qing et al. · Nat Biotechnol · 2022

basic_science · Level V

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Abstract

Functional studies of the RNA N<sup>6</sup>-methyladenosine (m<sup>6</sup>A) modification have been limited by an inability to map individual m<sup>6</sup>A-modified sites in whole transcriptomes. To enable such studies, here, we introduce m<sup>6</sup>A-selective allyl chemical labeling and sequencing (m<sup>6</sup>A-SAC-seq), a method for quantitative, whole-transcriptome mapping of m<sup>6</sup>A at single-nucleotide resolution. The method requires only ~30 ng of poly(A) or rRNA-depleted RNA. We mapped m<sup>6</sup>A modification stoichiometries in RNA from cell lines and during in vitro monocytopoiesis from human hematopoietic stem and progenitor cells (HSPCs). We identified numerous cell-state-specific m<sup>6</sup>A sites whose methylation status was highly dynamic during cell differentiation. We observed changes of m<sup>6</sup>A stoichiometry as well as expression levels of transcripts encoding or regulated by key transcriptional factors (TFs) critical for HSPC differentiation. m<sup>6</sup>A-SAC-seq is a quantitative method to dissect the dynamics and functional roles of m<sup>6</sup>A sites in diverse biological processes using limited input RNA.

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