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Updated: Aug 21, 2026

Mouse Oocyte Microinjection, Maturation and Ploidy Assessment
Published on: July 23, 2011
Trichlorfon predisposes to aneuploidy and interferes with spindle formation in in vitro maturing mouse oocytes
Suna Cukurcam1, Fengyun Sun, Ilse Betzendahl
1Institute of Genetechnology/Microbiology, Faculty of Biology, University of Bielefeld, D-33501 Bielefeld, Germany.
Abstract:
The pesticide trichlorfon (TCF) has been implicated in human trisomy 21, and in errors in chromosome segregation at male meiosis II in the mouse. We previously provided evidence that TCF interferes with spindle integrity and cell-cycle control during murine oogenesis. To assess the aneugenic activity of TCF in oogenesis, we presently analysed maturation, spindle assembly, and chromosome constitution in mouse oocytes maturing in vitro in the presence of 50 or 100 microg/ml TCF for 16 h or in pulse-chase experiments. TCF stimulated maturation to meiosis II at 50 microg/ml, but arrested meiosis in some oocytes at 100 microg/ml. TCF at 100 microg/ml was aneugenic causing non-disjunction of homologous chromosomes at meiosis I, a significant increase of the hyperploidy rate at metaphase II, and a significant rise in the numbers of oocytes that contained a 'diploid' set of metaphase II chromosomes (dyads). TCF elevated the rate of precocious chromatid segregation (predivision) at 50 and 100 microg/ml. Pulse-chase experiments with 100 microg/ml TCF present during the first 7 h or the last 9 h of maturation in vitro did not affect meiotic progression and induced intermediate levels of hyperploidy at metaphase II. Exposure to > or =50 microg/ml TCF throughout maturation in vitro induced severe spindle aberrations at metaphase II, and over one-third of the oocytes failed to align all chromosomes at the spindle equator (congression failure). These observations suggest that exposure to high concentrations of TCF induces non-disjunction at meiosis I of oogenesis, while lower doses may preferentially cause errors in chromosome segregation at meiosis II due to disturbances in spindle function, and chromosome congression as well as precocious separation of chromatids prior to anaphase II. The data support evidence from other studies that TCF has to be regarded as a germ cell aneugen.
Insights
The pesticide trichlorfon (TCF) causes chromosome segregation errors in mouse oocytes. High TCF concentrations induce aneuploidy, while lower doses disrupt spindle function, impacting female meiosis.
Area of Science:
- Reproductive toxicology
- Cell biology
- Genetics
Background:
- Trichlorfon (TCF) is a pesticide linked to human trisomy 21 and meiotic errors.
- Previous studies indicated TCF interferes with spindle integrity and cell cycle control in murine oogenesis.
Purpose of the Study:
- To assess the aneugenic activity of trichlorfon (TCF) during mouse oogenesis.
- To analyze maturation, spindle assembly, and chromosome constitution in oocytes exposed to TCF in vitro.
Main Methods:
- Mouse oocytes matured in vitro with 50 or 100 microg/ml TCF for 16 hours.
- Pulse-chase experiments using TCF exposure during specific maturation phases.
- Analysis of meiotic progression, spindle morphology, chromosome alignment, and ploidy.
Main Results:
- TCF at 100 microg/ml induced aneuploidy, including homologous chromosome non-disjunction (meiosis I) and increased hyperploidy (metaphase II).
- TCF elevated precocious chromatid segregation at both 50 and 100 microg/ml.
- Exposure to >=50 microg/ml TCF caused spindle aberrations and chromosome congression failure at metaphase II.
Conclusions:
- TCF acts as a germ cell aneugen, inducing chromosome segregation errors in oogenesis.
- High TCF concentrations cause meiosis I non-disjunction; lower doses may lead to meiosis II errors via spindle dysfunction.
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