Lu Ping-Shuang, Xie Lan-Ping, Kong Xiao-Han, Xu Yi, Sun Shao-Chen
College of Animal Science and Technology, Nanjing Agricultural University, Nanjing, China.
Front Cell Dev Biol. 2021 May 19;9:672590. doi: 10.3389/fcell.2021.672590. eCollection 2021.
Podophyllotoxin (POD) is one of the most characterized lignans that is commonly found in podophyllum, and its preparations and derivatives are widely used in clinical treatment due to strong antitumor and antivirus activities. POD has been reported for its neurotoxicity, liver toxicity, and potential reproductive toxicity. In the present study, we investigated the effects of POD on the organelles of mouse oocytes during meiosis. Our results showed that exposure to POD significantly reduced the developmental competence of mouse oocytes. Further analysis revealed that the endoplasmic reticulum (ER) failed to accumulate to the spindle periphery, suggesting that POD exposure might affect protein synthesis during oocyte meiotic maturation. Similarly, abnormal Golgi apparatus distribution was found after POD exposure, which could be confirmed by the aberrant localization of Rab11a-related vesicles, indicating that POD induced vesicle-based protein transport disorder. We also found the aberrant accumulation of lysosomes in the cytoplasm of POD-exposed oocytes, which implied that POD might lead to aberrant protein degradation. Moreover, the perinuclear distribution of mitochondria was also significantly disturbed, indicating the mitochondrial dysfunction after POD exposure. In all, our study illustrated that exposure to POD might disrupt protein synthesis, transport, degradation, and ATP production by its effects on the distribution and functions of organelles during mouse oocyte meiotic maturation.
鬼臼毒素(POD)是最具特征的木脂素之一,常见于鬼臼属植物中,由于其强大的抗肿瘤和抗病毒活性,其制剂和衍生物在临床治疗中被广泛应用。POD已被报道具有神经毒性、肝毒性和潜在的生殖毒性。在本研究中,我们研究了POD对小鼠卵母细胞减数分裂过程中细胞器的影响。我们的结果表明,暴露于POD会显著降低小鼠卵母细胞的发育能力。进一步分析显示,内质网(ER)未能聚集到纺锤体周围,这表明暴露于POD可能会影响卵母细胞减数分裂成熟过程中的蛋白质合成。同样,在暴露于POD后发现高尔基体分布异常,这可以通过Rab11a相关囊泡的异常定位得到证实,表明POD诱导了基于囊泡的蛋白质运输紊乱。我们还发现暴露于POD的卵母细胞细胞质中溶酶体异常聚集,这意味着POD可能导致蛋白质降解异常。此外,线粒体的核周分布也受到显著干扰,表明暴露于POD后线粒体功能障碍。总之,我们的研究表明,暴露于POD可能通过影响小鼠卵母细胞减数分裂成熟过程中细胞器的分布和功能来破坏蛋白质合成、运输、降解和ATP生成。