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Updated: Jul 9, 2026

Multi-Photon Laser Ablation of Cytoplasmic Microtubule Organizing Centers in Mouse Oocytes
Published on: November 11, 2022
Trichlorfon effects on mouse oocytes following in vivo exposure
Roberto Ranaldi1, Gloria Gambuti, Ursula Eichenlaub-Ritter
1Section of Toxicology and Biomedical Sciences, ENEA CR Casaccia, Via Anguillarese 301, I-00123 Rome, Italy.
Abstract:
Trichlorfon (TCF) is a widely used pesticide, which according to some epidemiological and experimental data, is suspected of being aneugenic in human and mouse cells. In particular, in vitro studies in mouse oocytes showed the induction of aneuploidy and polyploidy at the first meiotic division and of severe morphological alterations of the second meiotic spindle. We have tested the hypothesis that an acute treatment of mice with TCF might similarly affect chromosome segregation in maturing oocytes. Superovulated MF-1 mice were intraperitoneally injected with 400mg/kg TCF or orally administered with 600mg/kg TCF either at the time of or 4h after human chorionic gonadotrophin (HCG) injection. Oocytes were harvested 17h after HCG and metaphase II chromosomes were cytogenetically analyzed. No significant increase of aneuploid or polyploid cells was detected at any treatment condition. A significant (p<0.001) decrease of metaphases showing premature chromatid separation or premature anaphase II in all TCF-treated groups with respect to controls suggested that TCF treatment may have delayed the first meiotic division. To evaluate possible effects of the pesticide upon the second meiotic division, a group of females orally treated with 600mg/kg TCF at resumption of meiosis was mated with untreated males and zygotes were collected for cytogenetic analysis. No evidence of aneuploidy induction was obtained, but the frequency of polyploid zygotes was increased fivefold over the control level (p<0.01). Such polyploid embryos might have arisen from fertilization of oocytes that were either meiotically delayed and still in metaphase I at fertilization or progressed through anaphase II without cytokinesis. These findings show that in vivo studies on aneuploidy induction in oocytes may yield results different from those obtained by in vitro experiments and that both kinds of data may be necessary for risk assessment of environmentally relevant exposures.
Insights
Trichlorfon (TCF) pesticide exposure in mice did not induce aneuploidy in oocytes. However, TCF treatment increased polyploid zygotes, suggesting potential risks for reproductive health and necessitating further in vivo risk assessment.
Area of Science:
- Toxicology
- Reproductive Biology
- Genetics
Background:
- Trichlorfon (TCF) is a widely used pesticide with suspected aneugenic properties.
- In vitro studies indicate TCF can induce aneuploidy and polyploidy in mouse oocytes.
Purpose of the Study:
- To investigate the in vivo effects of acute Trichlorfon (TCF) exposure on chromosome segregation during mouse oocyte maturation.
- To determine if TCF induces aneuploidy or polyploidy in oocytes and zygotes following in vivo administration.
Main Methods:
- MF-1 mice were treated with Trichlorfon (TCF) via intraperitoneal injection or oral administration at specific times relative to HCG injection.
- Oocytes were harvested for cytogenetic analysis of metaphase II chromosomes.
- Zygotes were collected from mated females treated with TCF to assess effects on the second meiotic division and fertilization.
Main Results:
- No significant increase in aneuploid or polyploid oocytes was observed in TCF-treated mice.
- A significant decrease in metaphases with premature chromatid separation or anaphase II was noted, suggesting meiotic delay.
- A fivefold increase in polyploid zygotes was observed in TCF-treated groups, indicating potential issues with oocyte maturation or fertilization.
Conclusions:
- In vivo Trichlorfon (TCF) exposure did not induce aneuploidy in mouse oocytes, contrasting with some in vitro findings.
- TCF treatment led to an increased frequency of polyploid zygotes, possibly due to meiotic delay or failed cytokinesis.
- In vivo and in vitro data are both crucial for comprehensive risk assessment of pesticide exposure.
