Ochratoxin a inhibits mouse embryonic development by activating a mitochondrion-dependent apoptotic signaling pathway

Yan-Der Hsuuw1, Wen-Hsiung Chan, Jau-Song Yu

  • 1Department of Life Science, National Pingtung University of Science and Technology, Pingtung 912, Taiwan. whchan@cycu.edu.tw.

Insights

Ochratoxin A (OTA) exposure induces apoptosis in mouse blastocysts, impairing early post-implantation development. While implantation rates were unaffected, OTA exposure led to increased embryo resorption and reduced fetal weight in vivo.

Area of Science:

  • Toxicology
  • Developmental Biology
  • Reproductive Science

Background:

  • Ochratoxin A (OTA) is a widespread mycotoxin with known toxic effects on kidneys, liver, and immune system.
  • The impact of OTA on early embryonic development, particularly at the blastocyst stage, requires further investigation.

Purpose of the Study:

  • To investigate the cytotoxic effects of OTA on mouse blastocysts.
  • To assess OTA's impact on embryonic attachment, in vitro outgrowth, and in vivo implantation and post-implantation development.

Main Methods:

  • Mouse blastocysts were exposed to varying concentrations of OTA (1, 5, 10 μM) for 24 hours.
  • Cell proliferation was assessed using dual differential staining.
  • Apoptosis was quantified via TUNEL assay.
  • In vitro embryonic development and in vivo embryo transfer were performed to evaluate implantation and post-implantation outcomes.

Main Results:

  • Exposure to 10 μM OTA significantly increased blastocyst apoptosis and reduced cell number.
  • No significant difference in implantation success rates was observed in vitro or after in vivo transfer.
  • However, OTA exposure led to increased post-implantation embryo resorption and decreased fetal weight in the in vivo embryo transfer model.

Conclusions:

  • In vitro OTA exposure induces apoptosis in mouse blastocysts through ROS generation and mitochondrion-dependent pathways.
  • OTA exposure retards early post-implantation development, evidenced by increased resorption and reduced fetal weight, despite unaffected initial implantation rates.

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