Small-molecule inhibition of METTL3 as a strategy against myeloid leukaemia

癌症研究 甲基转移酶 髓系白血病 体内 核糖核酸 生物 细胞生物学 化学 生物化学 基因 遗传学 甲基化
作者
Eliza Yankova,Wesley Blackaby,Mark R. Albertella,Justyna Rak,Étienne De Braekeleer,Georgia Tsagkogeorga,Ewa S. Pilka,Demetrios Aspris,Dan Leggate,Alan G. Hendrick,Natalie Webster,Byron Andrews,Richard Fosbeary,Patrick Guest,Nerea Irigoyen,Maria Eleftheriou,Malgorzata Gozdecka,João M.L. Dias,Andrew J. Bannister,Binje Vick
出处
期刊:Nature [Nature Portfolio]
卷期号:593 (7860): 597-601 被引量:1286
标识
DOI:10.1038/s41586-021-03536-w
摘要

N6-methyladenosine (m6A) is an abundant internal RNA modification1,2 that is catalysed predominantly by the METTL3–METTL14 methyltransferase complex3,4. The m6A methyltransferase METTL3 has been linked to the initiation and maintenance of acute myeloid leukaemia (AML), but the potential of therapeutic applications targeting this enzyme remains unknown5–7. Here we present the identification and characterization of STM2457, a highly potent and selective first-in-class catalytic inhibitor of METTL3, and a crystal structure of STM2457 in complex with METTL3–METTL14. Treatment of tumours with STM2457 leads to reduced AML growth and an increase in differentiation and apoptosis. These cellular effects are accompanied by selective reduction of m6A levels on known leukaemogenic mRNAs and a decrease in their expression consistent with a translational defect. We demonstrate that pharmacological inhibition of METTL3 in vivo leads to impaired engraftment and prolonged survival in various mouse models of AML, specifically targeting key stem cell subpopulations of AML. Collectively, these results reveal the inhibition of METTL3 as a potential therapeutic strategy against AML, and provide proof of concept that the targeting of RNA-modifying enzymes represents a promising avenue for anticancer therapy. Treatment with a specific inhibitor of the N6-methyladenosine methyltransferase METTL3 leads to reduced growth of cancer cells, indicating the potential of approaches targeting RNA-modifying enzymes for anticancer therapy.
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