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MARTRE family proteins negatively regulate CCR4-NOT activity to protect poly(A) tail length and promote translation of maternal mRNA. | LitMetric

AI Article Synopsis

  • The study focuses on the role of a newly discovered protein family called MARTRE in regulating the poly(A) tail length of maternal mRNA during early embryo development in mice.
  • MARTRE proteins inhibit the deadenylase CCR4-NOT, helping to maintain longer poly(A) tails and enhance mRNA translation efficiency.
  • Deleting the Martre genes leads to shortened poly(A) tails, reduced mRNA translation, and delays in early embryonic development, emphasizing the importance of MARTRE in the translation of maternal mRNA.

Article Abstract

The mammalian early embryo development requires translation of maternal mRNA inherited from the oocyte. While poly(A) tail length influences mRNA translation efficiency during the oocyte-to-embryo transition (OET), molecular mechanisms regulating maternal RNA poly(A) tail length are not fully understood. In this study, we identified MARTRE, a previously uncharacterized protein family (MARTRE1-MARTRE6), as regulators expressed during mouse OET that modulate poly(A) tail length. MARTRE inhibits deadenylation through the direct interaction with the deadenylase CCR4-NOT, and ectopic expression of Martre stabilized mRNA by attenuating poly(A) tail shortening. Deletion of the Martre gene locus results in shortened poly(A) tails and decreased translation efficiency of actively translated mRNAs in mouse zygotes, but does not affect maternal mRNA decay. MARTRE proteins thus fine-tune maternal mRNA translation by negatively regulating the deadenylating activity of CCR4-NOT. Moreover, Martre knockout embryos show delayed 2-cell stage progression and compromised preimplantation development. Together, our findings highlight protection of long poly(A) tails from active deadenylation as an important mechanism to coordinate translation of maternal mRNA.

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Source
http://dx.doi.org/10.1038/s41467-024-55610-2DOI Listing
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11696134PMC

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