EMD-26990

Single-particle
3.3 Å
EMD-26990 Deposition: 14/05/2022
Map released: 07/12/2022
Last modified: 12/06/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-26990

Cryo-EM structure of human METTL1-WDR4-tRNA(Phe) complex

EMD-26990

Single-particle
3.3 Å
EMD-26990 Deposition: 14/05/2022
Map released: 07/12/2022
Last modified: 12/06/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Homo sapiens, Saccharomyces cerevisiae
Sample: METTL1-WDR4-tRNA_Phe complex
Fitted models: 8cth (Avg. Q-score: 0.375)

Deposition Authors: Li J , Wang L, Fontana P , Hunkeler M , Roy-Burman SS, Wu H, Fishcer ES, Gregory RI
Structural basis of regulated m 7 G tRNA modification by METTL1-WDR4.
PUBMED: 36599985
DOI: doi:10.1038/s41586-022-05566-4
ISSN: 1476-4687
ASTM: NATUAS
Abstract:
Chemical modifications of RNA have key roles in many biological processes1-3. N7-methylguanosine (m7G) is required for integrity and stability of a large subset of tRNAs4-7. The methyltransferase 1-WD repeat-containing protein 4 (METTL1-WDR4) complex is the methyltransferase that modifies G46 in the variable loop of certain tRNAs, and its dysregulation drives tumorigenesis in numerous cancer types8-14. Mutations in WDR4 cause human developmental phenotypes including microcephaly15-17. How METTL1-WDR4 modifies tRNA substrates and is regulated remains elusive18. Here we show,  through structural, biochemical and cellular studies of human METTL1-WDR4, that WDR4 serves as a scaffold for METTL1 and the tRNA T-arm. Upon tRNA binding, the αC region of METTL1 transforms into a helix, which together with the α6 helix secures both ends of the tRNA variable loop. Unexpectedly, we find that the predicted disordered N-terminal region of METTL1 is part of the catalytic pocket and essential for methyltransferase activity. Furthermore, we reveal that S27 phosphorylation in the METTL1 N-terminal region inhibits methyltransferase activity by locally disrupting the catalytic centre. Our results provide a molecular understanding of tRNA substrate recognition and phosphorylation-mediated regulation of METTL1-WDR4, and reveal the presumed disordered N-terminal region of METTL1 as a nexus of methyltransferase activity.