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Shimanski, B.

Publications and source records attributed to Shimanski, B..

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FTO separation-of-function mutations alter m6A versus m6Am demethylation selectivity on RNA

The RNA demethylase FTO erases N6-methyladenosine (m6A) and cap-associated N6,2'-O-dimethyladenosine (m6Am) modifications. However, the molecular basis of its substrate selectivity and the biological effects of m6A versus m6Am demethylation in cells remain poorly understood. Here we report two engineered FTO separation-of-function mutants to selectively demethylate either m6A or m6Am modifications on RNA. While investigating the propensity of FTO active site residues to undergo self-hydroxylation, we found that mutations of FTO residue L203 resulted in impaired m6A demethylation but retained wild-type levels of m6Am demethylation, and that FTO L203A could function as a selective m6Am demethylase. Conversely, building on our recent work that identified conserved aromatic residues on FTO involved in mRNA 5' cap recognition, we found that the FTO H232A/W278A double mutant efficiently demethylates m6A modifications while exhibiting substantially impaired m6Am demethylation, making it a selective m6A demethylase. Together, these complementary FTO variants represent the first set of engineered mutations that shift FTO demethylation selectivity between m6A and m6Am substrates. These tools enable selective enzymatic removal of m6A or m6Am modifications in vitro for sequencing applications, and may facilitate understanding of FTO-mediated m6A versus m6Am demethylation in cellular and disease model systems.

biochemistry↗

RNA demethylase FTO uses conserved aromatic residues to recognize the mRNA 5' cap and promote efficient m6Am demethylation

The RNA demethylase FTO acts as a methyl eraser to remove either internal N6-methyladenosine (m6A) or 5' end N6-2'-O-dimethyladenosine (m6Am) modifications on mRNA. FTO has an intrinsic preference and significantly faster demethylation rates in vitro for m6Am modifications located at the 5' mRNA cap structure, but the structural basis for FTOs ability to discriminate m6A versus m6Am modifications has remained unknown. Here we utilize molecular dynamics simulations of FTO-RNA cap complexes to identify conserved aromatic residues on the surface of FTO involved in 5 cap recognition. Subsequent mutagenesis and enzymology experiments validate the specificity of these residues in engaging the 5' cap structure to promote m6Am demethylation. We also identify a nonpolar surface on FTO that interacts with the 2'-O-methyl group of m6Am to impact demethylation kinetics. This work provides the first structure-level insights into how FTO selectively catalyzes m6Am versus m6A demethylation on mRNA and advances our understanding of how FTO activity is regulated by diverse mechanisms to help control the epitranscriptome.

biochemistry↗