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A cryptic pocket in METTL3-METTL14 regulates m6A conversion and sensing.


ABSTRACT: The nuclear METTL3-METTL14 enzyme complex transfers a methyl group from S-adenosyl-L-methionine (SAM) to the N6 amino group of an adenosine (A) base in RNA to convert it to m6A and in ssDNA to 6mA. m6A marks are prevalent in eukaryotic mRNAs and lncRNAs and modulate their stability and fate in a context-dependent manner. The cytoplasmic METTL3 can act as a m6A reader to regulate mRNA translation. However, the precise mechanism that actuates the switch from m6A writer to reader/sensor is unclear. Here, we present a ~2.5Å crystal structure of the methyltransferase core of human METTL3-METTL14 in complex with the reaction product, N6-methyladenosine monophosphate (m6A), representing a state post-catalysis but before the release of m6A. m6A occupies a novel evolutionarily conserved cryptic pocket in METTL3-METTL14 located ~16Å away from the SAM pocket that frequently mutates in cancer. We propose a two-step model of swiveling of target A upon conversion to m6A and sensing its methylation status by the cryptic pocket, enabling it to actuate enzymes' switch from writer to an m6A-sensor. Cancer-associated mutations cannot distinguish methylated from unmethylated adenine and show impaired RNA binding, de-stacking, and defective m6A writing and sensing.

SUBMITTER: Qi S 

PROVIDER: S-EPMC10441475 | biostudies-literature | 2023 Aug

REPOSITORIES: biostudies-literature

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Structure of METTL3-METTL14 with an m6A nucleotide reveals insights into m6A conversion and sensing.

Qi Shan S   Kumar Abhay A   Chen Shuang S   Zhou Shuo S   Parihar Manish M   Villalobos Carmen C   Gupta Navom N   Chan Siu-Hong SH   Rao Manjeet K MK   McHardy Stanton F SF   Haider Shozeb S   Gupta Yogesh K YK  

Research square 20241023


The nuclear METTL3-METTL14 transfers a methyl group from SAM to convert the <i>N</i> <sup><i>6</i></sup> of adenosine (A) in RNA to m<sup>6</sup>A and in ssDNA to 6mA. m<sup>6</sup>A marks are prevalent in eukaryotic mRNAs and lncRNAs and modulate their stability and fate in a context-dependent manner. The cytoplasmic METTL3 can act as a m<sup>6</sup>A reader. However, the precise mechanism during m6A writing, reading, or sensing is unclear. Here, we present a ~2.5 Å structure of the methyltrans  ...[more]

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