AI Article Synopsis

  • Maternal mRNA clearance is vital for embryo development, achieved through two main pathways: M-decay and Z-decay, though the triggers for maternal mRNA decay are poorly understood in mammals.
  • This study identified the zygotic protein PABPN1 as essential for the decay of maternal mRNA by recruiting specific enzymes to help eliminate transcripts, revealing a new role for PABPN1 in the cytoplasm.
  • Knockout of PABPN1 in mice led to early embryonic death due to failure in removing maternal mRNAs, highlighting its crucial role in early development and potential implications for human fertility.

Article Abstract

An embryo starts its life with maternal mRNA clearance, which is crucial for embryonic development. The elimination of maternal transcripts occurs by the joint action of two pathways: the maternally encoded mRNA decay pathway (M-decay) and the zygotic genome activation (ZGA)-dependent pathway (Z-decay). However, zygotic factors triggering maternal mRNA decay in early mammalian embryos remain largely unknown. In this study, we identified the zygotically encoded nuclear poly(A) binding protein 1 (PABPN1) as a factor required for maternal mRNA turnover, with a previously undescribed cytoplasmic function. Cytoplasmic PABPN1 docks on 3'-uridylated transcripts, downstream of terminal uridylyl transferases TUT4 and TUT7, and recruits 3'-5' exoribonuclease DIS3L2 to its targets, facilitating maternal mRNA decay. Pabpn1-knockout in mice resulted in preimplantation stage mortality due to early developmental arrest at the morula stage. Maternal mRNAs to be eliminated via the Z-decay pathway failed to be removed from Pabpn1-depleted embryos. Furthermore, PABPN1-mediated Z-decay is essential for major ZGA and regulates the expression of cell fate-determining factors in mouse preimplantation embryos. This study revealed an unforeseen cytoplasmic function of PABPN1 coupled with early embryonic development, characterized the presence of a zygotic destabilizer of maternal mRNA, and elucidated the Z-decay process mechanisms, which potentially contribute to human fertility.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8855302PMC
http://dx.doi.org/10.1093/nar/gkab1213DOI Listing

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