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Updated: Aug 9, 2025

Defining the Program of Maternal mRNA Translation during In vitro Maturation using a Single Oocyte Reporter Assay
Published on: June 16, 2021
mRNA 3' -UTR-mediate translational control through PAS and CPE in sheep oocyte
Chun-Ru Song1, Ru-Jing Zhang1, Fang-Rui Xue1
1State Key Laboratory of Reproductive Regulation & Breeding of Grassland Livestock, School of Life Sciences, Inner Mongolia University, People's Republic of China.
Abstract:
In oocytes, the cytoplasmic polyadenylation and maternal mRNAs translation is regulated by cis-elements, including polyadenylation signal (PAS) and cytoplasmic polyadenylation element (CPE) in 3'-UTR. Recent studies illustrate non-canonical polyadenylation mechanisms of translational regulation in mouse oocytes, which is different from that in Xenopus oocytes. However, it is still unclear if this regulation in rodent oocytes functions in the domestic animal oocyte. Here, by using sheep as an animal model, we cloned the 3'-UTRs of Cpeb1 or Btg4 and ligated it into the pRK5-Flag-Gfp vector. Variant numbers and positions of PASs and CPEs within the 3'-UTRs were constructed to detect their effects on translational control. After in vitro-transcription and microinjection into sheep fully grown germinal vesicle stage oocytes, the expression efficiency of mRNAs was detected by the GFP and flag expression. Our results show that: (i) PAS located at the proximal end of 3'-UTR can mediate the translation of the maternal mRNAs, as long as they locate far from CPEs; (ii) The proximal PAS has higher efficiency in regulating transcription than the distal one; (iii) increase of PAS number can promote the translational activity more efficiently; (iv) a single CPE located close to PAS (<50 bp) in 3'-UTRs of Cpeb1 or Btg4 could partially repress translation. In 3'-UTRs of Btg4, two CPEs have a higher inhibitory effect, and three CPEs can completely inhibit mRNA translation. These results confirm the existence of the non-canonical mechanism in domestic animal oocytes.
Insights
This study reveals that non-canonical polyadenylation mechanisms regulate maternal mRNA translation in sheep oocytes. Key elements like polyadenylation signals (PAS) and cytoplasmic polyadenylation elements (CPE) control gene expression.
Area of Science:
- Reproductive Biology
- Molecular Biology
- Developmental Biology
Background:
- Maternal mRNA translation in oocytes is crucial for early development.
- Regulation involves cis-elements like polyadenylation signal (PAS) and cytoplasmic polyadenylation element (CPE) in the 3'-UTR.
- Non-canonical polyadenylation mechanisms are known in mouse and Xenopus oocytes but their function in domestic animals is unclear.
Purpose of the Study:
- To investigate the role of non-canonical polyadenylation in domestic animal oocytes, using sheep as a model.
- To determine the effects of PAS and CPE number and position on translational control in sheep oocytes.
Main Methods:
- Cloned 3'-UTRs of Cpeb1 and Btg4 genes in sheep.
- Constructed variants with different numbers and positions of PAS and CPE.
- In vitro transcribed and microinjected mRNAs into sheep oocytes.
- Assessed mRNA expression efficiency via GFP and flag protein levels.
Main Results:
- Proximal PAS mediates maternal mRNA translation when located far from CPEs.
- Proximal PAS exhibits higher regulatory efficiency than distal PAS.
- Increased PAS numbers enhance translational activity.
- Single CPE near PAS (<50 bp) partially represses translation; multiple CPEs (especially three in Btg4 3'-UTR) strongly inhibit translation.
Conclusions:
- Confirms the existence and function of non-canonical mRNA translational regulation mechanisms in domestic animal oocytes.
- Demonstrates the significant impact of PAS and CPE arrangement on translational control in sheep oocytes.
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