Reactivity-dependent profiling of RNA 5-methylcytidine dioxygenases.

Arguello, A Emilia; Li, Ang; Sun, Xuemeng; Eggert, Tanner W; Mairhofer, Elisabeth; Kleiner, Ralph E · Nat Commun · 2022

basic_science · Level V

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Abstract

Epitranscriptomic RNA modifications can regulate fundamental biological processes, but we lack approaches to map modification sites and probe writer enzymes. Here we present a chemoproteomic strategy to characterize RNA 5-methylcytidine (m<sup>5</sup>C) dioxygenase enzymes in their native context based upon metabolic labeling and activity-based crosslinking with 5-ethynylcytidine (5-EC). We profile m<sup>5</sup>C dioxygenases in human cells including ALKBH1 and TET2 and show that ALKBH1 is the major hm<sup>5</sup>C- and f<sup>5</sup>C-forming enzyme in RNA. Further, we map ALKBH1 modification sites transcriptome-wide using 5-EC-iCLIP and ARP-based sequencing to identify ALKBH1-dependent m<sup>5</sup>C oxidation in a variety of tRNAs and mRNAs and analyze ALKBH1 substrate specificity in vitro. We also apply targeted pyridine borane-mediated sequencing to measure f<sup>5</sup>C sites on select tRNA. Finally, we show that f<sup>5</sup>C at the wobble position of tRNA-Leu-CAA plays a role in decoding Leu codons under stress. Our work provides powerful chemical approaches for studying RNA m<sup>5</sup>C dioxygenases and mapping oxidative m<sup>5</sup>C modifications and reveals the existence of novel epitranscriptomic pathways for regulating RNA function.

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