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Updated: Aug 20, 2026

Detection of DNA Double-Stranded Breaks in Mouse Oocytes
Published on: June 23, 2023
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
Abstract:
In experiments involving different germ-cell stages, we had previously found meiotic prophase of the male mouse to be vulnerable to the induction of several types of genetic damage by the topoisomerase-II inhibitor etoposide. The present study of etoposide effects involved two end points of meiotic events known to occur in primary spermatocytes--chromosomal crossing-over and segregation. By following assortment of 13 microsatellite markers in two chromosomes (Ch 7 and Ch 15) it was shown that etoposide significantly affected crossing-over, but did not do so in a uniform fashion. Treatment generally changed the pattern for each chromosome, leading to local decreases in recombination, a distal shift in locations of crossing-over, and an overall decrease in double crossovers; at least some of these results might be interpreted as evidence for increased interference. Two methods were used to explore etoposide effects on chromosome segregation: a genetic experiment capable of detecting sex-chromosome nondisjunction in living progeny; and the use of FISH (fluorescence in situ hybridization) technology to score numbers of Chromosomes X, Y, and 8 in spermatozoa. Taken together these two approaches indicated that etoposide exposure of pachytene spermatocytes induces malsegregation, and that the findings of the genetic experiment probably yielded a marked underestimate of nondisjunction. As indicated by certain segregants, at least part of the etoposide effect could be due to disrupted pairing of achiasmatic homologs, followed by precocious sister-centromere separation. It has been shown for several organisms that absent or reduced levels of recombination, as well as suboptimally positioned recombination events, may be associated with abnormal segregation. Etoposide is the only chemical tested to date for which living progeny indicates an effect on both male meiotic crossing-over and chromosome segregation. Whether, however, etoposide-induced changes in recombination patterns are direct causes of the observed malsegregation requires additional investigation.
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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