Taxol-induced meiotic maturation delay, spindle defects, and aneuploidy in mouse oocytes and zygotes

J B Mailhes1, M J Carabatsos, D Young

  • 1Department of Obstetrics and Gynecology, Louisiana State University Medical Center, P.O. Box 33932, Shreveport LA 71130, USA. jmailh@lsumc.edu

Mutation Research
|February 25, 1999
PubMed

Insights

Taxol, a chemical that alters microtubule dynamics, was found to induce meiotic delay and spindle defects in mouse oocytes and zygotes. This leads to increased rates of aneuploidy (abnormal chromosome numbers) in germ cells.

Area of Science:

  • Reproductive biology
  • Cell biology
  • Toxicology

Background:

  • Aneuploidy, an abnormal chromosome number, poses risks during reproduction.
  • Understanding chemical induction of aneuploidy in germ cells is crucial.
  • Taxol uniquely affects microtubule dynamics by enhancing polymerization.

Purpose of the Study:

  • To investigate if taxol induces meiotic delay, spindle defects, and aneuploidy in mouse oocytes and zygotes.
  • To determine the dose-response relationship of taxol's effects.

Main Methods:

  • Super-ovulated mice were administered varying doses of taxol.
  • Oocytes and zygotes were collected at specific time points post-treatment.
  • Cytogenetic analyses (C-banding) and in situ chromatin/microtubule assessments were performed.

Main Results:

  • Taxol significantly increased parthenogenetic activation, spindle-displaced chromosomes, and sister-chromatid separation.
  • Higher taxol doses led to increased metaphase I oocytes, diploid oocytes, and polyploid zygotes.
  • A significant dose-dependent increase in hyperploidy was observed in oocytes and zygotes.

Conclusions:

  • Taxol-induced meiotic delay and spindle defects contribute to aneuploidy in mouse oocytes and zygotes.
  • These findings highlight taxol's potential risks to germ cell chromosome integrity.

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