Etoposide exposure during male mouse pachytene has complex effects on crossing-over and causes nondisjunction

Liane B Russell1, Patricia R Hunsicker, Marilyn Kerley

  • 1Life Sciences Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831-6420, USA. russelllb@ornl.gov

Mutation Research
|December 4, 2004
PubMed

Insights

Etoposide exposure in male mice disrupts male meiosis, affecting chromosome crossing-over and segregation. This chemical is the first shown to impact both male meiotic recombination and chromosome segregation in living progeny.

Area of Science:

  • Genetics
  • Reproductive Biology
  • Toxicology

Background:

  • Male meiosis is crucial for producing genetically diverse gametes.
  • The topoisomerase-II inhibitor etoposide has been previously shown to induce genetic damage in male mouse meiotic prophase.
  • Understanding etoposide's impact on meiotic events is vital for reproductive health assessment.

Purpose of the Study:

  • To investigate the effects of etoposide on chromosomal crossing-over and segregation during male mouse meiosis.
  • To determine if etoposide-induced alterations in recombination correlate with segregation abnormalities.
  • To identify potential mechanisms underlying etoposide's impact on male gametogenesis.

Main Methods:

  • Microsatellite marker analysis on chromosomes 7 and 15 to assess crossing-over patterns.
  • Genetic experiments to detect sex-chromosome nondisjunction in progeny.
  • Fluorescence in situ hybridization (FISH) to quantify X, Y, and chromosome 8 in spermatozoa.

Main Results:

  • Etoposide significantly altered crossing-over patterns, causing local decreases, distal shifts, and reduced double crossovers, suggesting increased interference.
  • Combined genetic and FISH data indicated etoposide induces malsegregation in pachytene spermatocytes.
  • Evidence suggests disrupted homologous pairing and precocious sister-centromere separation contribute to etoposide's effects.

Conclusions:

  • Etoposide uniquely affects both male meiotic crossing-over and chromosome segregation, as evidenced by living progeny.
  • Abnormal recombination patterns may be linked to segregation errors during male meiosis.
  • Further research is needed to confirm if etoposide-induced recombination changes directly cause malsegregation.

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