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Updated: Aug 19, 2025

Meiotic Spindle Assessment in Mouse Oocytes by siRNA-mediated Silencing
Published on: October 11, 2015
Overexpression of Tfap2a in Mouse Oocytes Impaired Spindle and Chromosome Organization
Juan Lin1, Zhuqing Ji1, Zhengyang Di1
1National Engineering Laboratory for Animal Breeding, Key Laboratory of Animal Genetics, Breeding, and Reproduction of the Ministry of Agriculture and Rural Affairs, College of Animal Science and Technology, China Agricultural University, Beijing 100193, China.
Abstract:
Transcription factor AP-2-alpha (Tfap2a) is an important sequence-specific DNA-binding protein that can regulate the transcription of multiple genes by collaborating with inducible viral and cellular enhancer elements. In this experiment, the expression, localization, and functions of Tfap2a were investigated in mouse oocytes during maturation. Overexpression via microinjection of Myc-Tfap2a mRNA into the ooplasm, immunofluorescence, and immunoblotting were used to study the role of Tfap2a in mouse oocyte meiosis. According to our results, Tfap2a plays a vital role in mouse oocyte maturation. Levels of Tfap2a in GV oocytes of mice suffering from type 2 diabetes increased considerably. Tfap2a was distributed in both the ooplasm and nucleoplasm, and its level gradually increased as meiosis resumption progressed. The overexpression of Tfap2a loosened the chromatin, accelerated germinal vesicle breakdown (GVBD), and blocked the first polar body extrusion 14 h after maturation in vitro. The width of the metaphase plate at metaphase I stage increased, and the spindle and chromosome organization at metaphase II stage were disrupted in the oocytes by overexpressed Tfap2a. Furthermore, Tfap2a overexpression dramatically boosted the expression of p300 in mouse GV oocytes. Additionally, the levels of pan histone lysine acetylation (Pan Kac), histone H4 lysine 12 acetylation (H4K12ac), and H4 lysine 16 acetylation (H4K16ac), as well as pan histone lysine lactylation (Pan Kla), histone H3 lysine18 lactylation (H3K18la), and H4 lysine12 lactylation (H4K12la), were all increased in GV oocytes after Tfap2a overexpression. Collectively, Tfap2a overexpression upregulated p300, increased the levels of histone acetylation and lactylation, impeded spindle assembly and chromosome alignment, and ultimately hindered mouse oocyte meiosis.
Insights
Transcription factor AP-2-alpha (Tfap2a) is crucial for mouse oocyte maturation. Its overexpression disrupts meiosis by affecting chromatin, spindle assembly, and chromosome alignment, impacting fertility.
Area of Science:
- Reproductive Biology
- Molecular Endocrinology
- Epigenetics
Background:
- Transcription factor AP-2-alpha (Tfap2a) regulates gene transcription.
- Oocyte maturation is a complex meiotic process essential for fertility.
- Aberrant Tfap2a levels are observed in type 2 diabetes, suggesting a role in reproductive health.
Purpose of the Study:
- To investigate the expression, localization, and functional role of Tfap2a during mouse oocyte maturation.
- To determine the impact of Tfap2a overexpression on meiotic progression and epigenetic modifications.
Main Methods:
- Microinjection of Myc-Tfap2a mRNA for overexpression studies.
- Immunofluorescence and immunoblotting to assess protein levels and localization.
- Analysis of meiotic stages, chromatin structure, spindle organization, and histone modifications.
Main Results:
- Tfap2a levels increased during meiosis resumption and were elevated in oocytes from diabetic mice.
- Overexpression of Tfap2a led to chromatin loosening, accelerated germinal vesicle breakdown (GVBD), and blocked polar body extrusion.
- Disrupted spindle assembly, metaphase plate width, and chromosome alignment were observed in Tfap2a-overexpressing oocytes.
- Tfap2a overexpression upregulated p300 and increased histone acetylation (Pan Kac, H4K12ac, H4K16ac) and lactylation (Pan Kla, H3K18la, H4K12la).
Conclusions:
- Tfap2a plays a critical role in regulating mouse oocyte meiosis.
- Overexpression of Tfap2a impairs oocyte maturation through epigenetic modifications and disruption of meiotic machinery.
- These findings highlight Tfap2a as a potential factor influencing female reproductive competence, particularly in conditions like diabetes.
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