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Updated: May 2, 2026

Defining the Program of Maternal mRNA Translation during In vitro Maturation using a Single Oocyte Reporter Assay
Published on: June 16, 2021
An oocyte-specific ELAVL2 isoform is a translational repressor ablated from meiotically competent antral oocytes
Katerina Chalupnikova1, Petr Solc2, Vadym Sulimenko1
1Institute of Molecular Genetics AS CR; Prague, Czech Republic.
Abstract:
At the end of the growth phase, mouse antral follicle oocytes acquire full developmental competence. In the mouse, this event is marked by the transition from the so-called non-surrounded nucleolus (NSN) chromatin configuration into the transcriptionally quiescent surrounded nucleolus (SN) configuration, which is named after a prominent perinucleolar condensed chromatin ring. However, the SN chromatin configuration alone is not sufficient for determining the developmental competence of the SN oocyte. There are additional nuclear and cytoplamic factors involved, while a little is known about the changes occurring in the cytoplasm during the NSN/SN transition. Here, we report functional analysis of maternal ELAVL2 an AU-rich element binding protein. Elavl2 gene encodes an oocyte-specific protein isoform (denoted ELAVL2°), which acts as a translational repressor. ELAVL2° is abundant in fully grown NSN oocytes, is ablated during the NSN/SN transition and remains low during the oocyte-to-embryo transition (OET). ELAVL2° overexpression during meiotic maturation causes errors in chromosome segregation, indicating the significance of naturally reduced ELAVL2° levels in SN oocytes. On the other hand, during oocyte growth, prematurely reduced Elavl2 expression results in lower yields of fully grown and meiotically matured oocytes, suggesting that Elavl2 is necessary for proper oocyte maturation. Moreover, Elavl2 knockdown showed stimulating effects on translation in fully grown oocytes. We propose that ELAVL2 has an ambivalent role in oocytes: it functions as a pleiotropic translational repressor in efficient production of fully grown oocytes, while its disposal during the NSN/SN transition contributes to the acquisition of full developmental competence.
Insights
Maternal ELAVL2 protein is crucial for mouse oocyte development, acting as a translational repressor. Its reduction during the NSN/SN transition is key for acquiring full developmental competence.
Area of Science:
- Reproductive Biology
- Molecular Biology
- Developmental Biology
Background:
- Oocyte developmental competence is acquired during the growth phase, marked by chromatin configuration changes (NSN to SN).
- Cytoplasmic factors influencing the NSN/SN transition and developmental competence remain largely unknown.
- ELAVL2 (embryonic lethal abnormal vision 2) is an RNA-binding protein with known roles in post-transcriptional regulation.
Purpose of the Study:
- To investigate the functional role of maternal ELAVL2 in mouse oocyte maturation and developmental competence.
- To elucidate the dynamic changes of ELAVL2 expression during oocyte development and its impact on chromatin configuration.
- To understand ELAVL2's function as a translational repressor in the context of oocyte quality.
Main Methods:
- Functional analysis of the Elavl2 gene and its oocyte-specific isoform (ELAVL2°).
- Manipulation of Elavl2 expression (overexpression and knockdown) during meiotic maturation.
- Assessment of oocyte developmental competence, chromosome segregation, and translational activity.
Main Results:
- ELAVL2° is abundant in fully grown NSN oocytes and decreases during the NSN/SN transition.
- Overexpression of ELAVL2° leads to chromosome segregation errors, while its premature reduction impairs oocyte maturation.
- Elavl2 knockdown stimulates translation in fully grown oocytes, indicating its repressive role.
Conclusions:
- ELAVL2 acts as a pleiotropic translational repressor essential for efficient oocyte growth and maturation.
- The regulated decrease of ELAVL2 during the NSN/SN transition is critical for acquiring full developmental competence.
- ELAVL2 plays an ambivalent role, supporting oocyte growth and enabling competence acquisition upon its removal.
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