4.7 Article

Podophyllotoxin Exposure Affects Organelle Distribution and Functions in Mouse Oocyte Meiosis

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出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fcell.2021.672590

关键词

podophyllotoxin; oocyte; meiosis; organelles; mitochondria

资金

  1. National Undergraduate Innovation and Entrepreneurship Training Program of China [202010307023Z/202010307041]
  2. National Key Research and Development Program of China [2018YFC1003802, 2018YFC1004003]
  3. Fundamental Research Funds for the Central Universities of China [KYGD202004]

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In this study, exposure to POD significantly reduced the developmental competence of mouse oocytes, affecting the distribution and function of organelles such as endoplasmic reticulum and Golgi apparatus. This exposure induced vesicle-based protein transport disorder and aberrant accumulation of lysosomes, as well as disruption of the perinuclear distribution of mitochondria.
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.

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