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Updated: Jun 19, 2025

Evaluation of the Spindle Assembly Checkpoint Integrity in Mouse Oocytes
Published on: September 13, 2022
Bisphenol M inhibits mouse oocyte maturation in vitro by disrupting cytoskeleton architecture and cell cycle
Huilei Chen1, Yang Liu2, Yue Huang2
1Reproductive Medicine Center, Department of Obstetrics and Gynecology, The First Affiliated Hospital of Anhui Medical University, No.218 Jixi Road, Hefei 230022, China; NHC Key Laboratory of Study on Abnormal Gametes and Reproductive Tract, Anhui Medical University, No.81 Meishan Road, Hefei 230032, China; Key Laboratory of Population Health Across Life Cycle, Anhui Medical University, Ministry of Education of the People's Republic of China, No.81 Meishan Road, Hefei 230032, China; Reproductive Medicine Center, Department of Obstetrics and Gynecology, The First Affiliated Hospital of Bengbu Medical University, No.287 Changhuai Road, Bengbu 233000, China.
Abstract:
Bisphenol M (BPM), an alternative to bisphenol A (BPA), is commonly utilized in various industrial applications. However, BPM does not represent a safe substitute for BPA due to its detrimental effects on living beings. This research aimed to assess the influence of BPM exposure on the in vitro maturation of mouse oocytes. The findings revealed that BPM exposure had a notable impact on the germinal vesicle breakdown (GVBD) rate and polar body extrusion (PBE) rate throughout the meiotic progression of mouse oocytes, ultimately resulting in meiotic arrest. Investigations demonstrated that oocytes exposure to BPM led to continued activation of spindle assembly checkpoint. Further studies revealed that securin and cyclin B1 could not be degraded in BPM-exposed oocytes, and meiosis could not realize the transition from the MI to the AI stage. Mechanistically, BPM exposure resulted in abnormal spindle assembly and disrupted chromosome alignment of oocytes. Additionally, abnormal positioning of microtubule organizing center-associated proteins implied that MTOC may be dysfunctional. Furthermore, an elevation in the acetylation level of α-tubulin in oocytes was observed after BPM treatment, leading to decreased microtubule stability. In addition to its impact on microtubules, BPM exposure led to a reduction in the expression of the actin, signifying the disruption of actin assembly. Further research indicated a heightened incidence of DNA damage in oocytes following BPM exposure. Besides, BPM exposure induced alterations in histone modifications. The outcomes of this experiment demonstrate that BPM exposure impairs oocyte quality and inhibits meiotic maturation of mouse oocytes.
Insights
Bisphenol M (BPM) exposure harms mouse oocyte maturation by disrupting meiosis, spindle assembly, and DNA integrity. This chemical, an alternative to Bisphenol A (BPA), poses risks to reproductive health.
Area of Science:
- Reproductive biology
- Toxicology
- Cell biology
Background:
- Bisphenol M (BPM) is a BPA alternative used industrially.
- BPM poses detrimental health effects.
- Its impact on oocyte maturation requires investigation.
Purpose of the Study:
- To assess BPM's in vitro effects on mouse oocyte maturation.
- To elucidate the molecular mechanisms underlying BPM-induced oocyte dysfunction.
Main Methods:
- In vitro maturation of mouse oocytes.
- Assessment of meiotic progression markers (GVBD, PBE).
- Analysis of spindle assembly, chromosome alignment, protein degradation (securin, cyclin B1), microtubule dynamics (α-tubulin acetylation), actin assembly, DNA damage, and histone modifications.
Main Results:
- BPM exposure inhibited germinal vesicle breakdown and polar body extrusion rates.
- BPM caused meiotic arrest by activating the spindle assembly checkpoint.
- BPM disrupted spindle assembly, chromosome alignment, microtubule stability, and actin assembly, while increasing DNA damage and altering histone modifications.
Conclusions:
- BPM exposure significantly impairs mouse oocyte quality.
- BPM inhibits meiotic maturation through multiple molecular disruptions.
- BPM is not a safe alternative to BPA regarding reproductive health.
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