1. Academic Validation
  2. Picolinafen exposure induces ROS accumulation and calcium depletion, leading to apoptosis in porcine embryonic trophectoderm and uterine luminal epithelial cells during the peri-implantation period

Picolinafen exposure induces ROS accumulation and calcium depletion, leading to apoptosis in porcine embryonic trophectoderm and uterine luminal epithelial cells during the peri-implantation period

  • Theriogenology. 2023 Apr 15:201:12-23. doi: 10.1016/j.theriogenology.2023.02.015.
Wonhyoung Park 1 Junho Park 1 Sunwoo Park 2 Whasun Lim 3 Gwonhwa Song 4
Affiliations

Affiliations

  • 1 Institute of Animal Molecular Biotechnology and Department of Biotechnology, College of Life Sciences and Biotechnology, Korea University, Seoul, 02841, Republic of Korea.
  • 2 Department of Plant & Biomaterials Science, Gyeongsang National University, Jinju, 52725, Republic of Korea.
  • 3 Department of Biological Sciences, Sungkyunkwan University, Suwon, 16419, Republic of Korea. Electronic address: wlim@skku.edu.
  • 4 Institute of Animal Molecular Biotechnology and Department of Biotechnology, College of Life Sciences and Biotechnology, Korea University, Seoul, 02841, Republic of Korea. Electronic address: ghsong@korea.ac.kr.
Abstract

The global use of herbicides accounts for more than 48% of total pesticide usage. Picolinafen is a pyridine carboxylic acid Herbicide that is predominantly used to control broadleaf weeds in wheat, barley, corn, and soybeans. Despite its widespread use in agriculture, its toxicity in mammals has rarely been studied. In this study, we first identified the cytotoxic effects of picolinafen on porcine trophectoderm (pTr) and luminal epithelial (pLE) cells, which are involved in the implantation process during early pregnancy. Picolinafen treatment significantly decreased the viability of pTr and pLE cells. Our results demonstrate that picolinafen increased the number of sub-G1 phase cells and early/late Apoptosis. In addition, picolinafen disrupted mitochondrial function and resulted in the accumulation of intracellular ROS, leading to a reduction in calcium levels in both the mitochondria and cytoplasm of pTr and pLE cells. Moreover, picolinafen was found to significantly inhibit the migration of pTr. These responses were accompanied by the activation of the MAPK and PI3K signal transduction pathways by picolinafen. Our data suggest that the deleterious effects of picolinafen on the viability and migration of pTr and pLE cells might impair their implantation potential.

Keywords

Apoptosis; Implantation; Intracellular calcium; Picolinafen; Reactive oxygen species; Trophectoderm.

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