Bisphenol M inhibits mouse oocyte maturation in vitro by disrupting cytoskeleton architecture and cell cycle processes

IF 3.3 4区 医学 Q2 REPRODUCTIVE BIOLOGY Reproductive toxicology Pub Date : 2024-07-24 DOI:10.1016/j.reprotox.2024.108667
Huilei Chen , Yang Liu , Yue Huang , Pin Zhang , Danli Du , Wenhua Yu , Caiyun Wu , Hongzhen Ruan , Ping Zhou , Zhiming Ding , Huifen Xiang
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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.

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双酚 M 通过破坏细胞骨架结构和细胞周期过程抑制小鼠卵母细胞的体外成熟。
双酚 M(BPM)是双酚 A(BPA)的替代品,常用于各种工业应用中。然而,由于双酚 M 对生物有有害影响,因此它并不是双酚 A 的安全替代品。本研究旨在评估暴露于双酚 A 对小鼠卵母细胞体外成熟的影响。研究结果表明,在小鼠卵母细胞的整个减数分裂过程中,暴露于双酚A会对生殖泡破裂(GVBD)率和极体挤出(PBE)率产生显著影响,最终导致减数分裂停止。研究表明,卵母细胞暴露于 BPM 会导致纺锤体组装检查点持续激活。进一步的研究发现,在暴露于 BPM 的卵母细胞中,securin 和细胞周期蛋白 B1 无法降解,减数分裂无法实现从 MI 阶段到 AI 阶段的过渡。从机理上讲,BPM 暴露导致卵母细胞纺锤体组装异常和染色体排列紊乱。此外,微管组织中心相关蛋白的异常定位意味着MTOC可能功能失调。此外,经 BPM 处理后,观察到卵母细胞中的α-微管蛋白乙酰化水平升高,导致微管稳定性下降。除了对微管的影响外,BPM 还导致肌动蛋白的表达减少,这表明肌动蛋白的组装受到了破坏。进一步的研究表明,暴露于 BPM 后,卵母细胞中 DNA 损伤的发生率增加。此外,暴露于 BPM 会诱发组蛋白修饰的改变。本实验的结果表明,暴露于 BPM 会损害卵母细胞的质量并抑制小鼠卵母细胞的减数分裂成熟。
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来源期刊
Reproductive toxicology
Reproductive toxicology 生物-毒理学
CiteScore
6.50
自引率
3.00%
发文量
131
审稿时长
45 days
期刊介绍: Drawing from a large number of disciplines, Reproductive Toxicology publishes timely, original research on the influence of chemical and physical agents on reproduction. Written by and for obstetricians, pediatricians, embryologists, teratologists, geneticists, toxicologists, andrologists, and others interested in detecting potential reproductive hazards, the journal is a forum for communication among researchers and practitioners. Articles focus on the application of in vitro, animal and clinical research to the practice of clinical medicine. All aspects of reproduction are within the scope of Reproductive Toxicology, including the formation and maturation of male and female gametes, sexual function, the events surrounding the fusion of gametes and the development of the fertilized ovum, nourishment and transport of the conceptus within the genital tract, implantation, embryogenesis, intrauterine growth, placentation and placental function, parturition, lactation and neonatal survival. Adverse reproductive effects in males will be considered as significant as adverse effects occurring in females. To provide a balanced presentation of approaches, equal emphasis will be given to clinical and animal or in vitro work. Typical end points that will be studied by contributors include infertility, sexual dysfunction, spontaneous abortion, malformations, abnormal histogenesis, stillbirth, intrauterine growth retardation, prematurity, behavioral abnormalities, and perinatal mortality.
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