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Pickering, B. F.

Publications and source records attributed to Pickering, B. F..

2 recordsLinked to original sources

m6a governs length-dependent enrichment of mRNAs in stress granules

Stress granules are biomolecular condensates composed of protein and mRNA. Long mRNAs are enriched in stress granules, which is thought to reflect the ability of long mRNAs to form multiple RNA-RNA interactions with other mRNAs. RNA-RNA interactions are thus thought to be critical for stress granule formation. Stress granule-enriched mRNAs also often contain multiple N6-methyladenosine (m6A) residues. YTHDF proteins bind m6A, creating mRNA-protein complexes that partition into stress granules. Here we determine the basis of length-dependent enrichment of mRNAs in stress granules. We show that depletion of m6A is sufficient to abrogate the length-dependent enrichment of mRNAs in stress granules. We show that the presence of m6A predicts which mRNAs are enriched. m6A formation is triggered by long exons, which are often found in long mRNAs, accounting for the link between m6A, length and stress granule enrichment. Thus, length-dependent enrichment of mRNAs in stress granules is driven by YTHDF-mRNA interactions.

molecular biology↗

Understanding the source of METTL3-independent m6A in mRNA

N6-methyladenosine (m6A) is a highly prevalent mRNA modification which promotes degradation of transcripts encoding proteins that have roles in cell development, differentiation, and other pathways. METTL3 is the major methyltransferase that catalyzes the formation of m6A in mRNA. As 30-80% of m6A can remain in mRNA after METTL3 depletion by CRISPR/Cas9-based methods, other enzymes are thought to catalyze a sizable fraction of m6A. Here, we re-examined the source of m6A in the mRNA transcriptome. We characterized mouse embryonic stem cell lines which continue to have m6A in their mRNA after Mettl3 knockout. We show that these cells express alternatively spliced Mettl3 transcript isoforms that bypass the CRISPR/Cas9 mutations and produce functionally active methyltransferases. We similarly show that other reported METTL3 knockout cell lines express altered METTL3 proteins. We find that gene dependency datasets show that most cell lines fail to proliferate after METTL3 deletion, suggesting that reported METTL3 knockout cell lines express altered METTL3 proteins rather than have full knockout. Finally, we reassessed METTL3s role in synthesizing m6A using a genomic deletion of Mettl3, and found that METTL3 is responsible for >95% of m6A in mRNA. Overall, these studies suggest that METTL3 is responsible for the vast majority of m6A in the transcriptome, and that remaining m6A in putative METTL3 knockout cell lines is due to the expression of altered but functional METTL3 isoforms.

molecular biology↗