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Updated: Apr 11, 2026

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination
Published on: July 18, 2025
Critical roles of MCM8 in meiotic recombination during mouse spermatogenesis
Lava Kumar Surarapu1, Kevin Tilton1, Maria Rosaria Dello Stritto2
1Department of Genetics and Human Genetics Institute of New Jersey, Rutgers University, Piscataway, NJ, USA.
Abstract:
Meiotic DNA double-strand break (DSB) formation and repair by homologous recombination is crucial for ensuring proper chromosome segregation. In mice, the mini-chromosome maintenance family protein, MCM8, has been proposed to function in meiotic recombination and its loss leads to infertility, but the underlying mechanisms are poorly understood. Here we used cytological and genomic assays to infer the role of MCM8 during meiotic recombination in mouse spermatocytes. We show that MCM8-deficient spermatocytes exhibit increased levels of SPO11-dependent DSBs at recombination hotspots during early prophase. DSBs are resected normally and accumulate strand-exchange proteins. However, downstream recombination intermediates are barely detected and recombination intermediate-associated MutSgamma foci do not form efficiently. Consistent with a role in early recombination intermediate processing, MCM8 binds to displacement loop (D-loop) structures in vitro. We propose that MCM8 controls meiotic recombination in at least two ways. MCM8 participates in regulating meiotic DSB number. Further, MCM8 plays a role in the formation and/or stability of post-resection recombination intermediates, steps that are critical for DSB repair via recombination and for efficient synapsis of homologous chromosomes during mouse meiosis.
Insights
MCM8 protein is essential for mouse meiosis, regulating DNA double-strand break (DSB) numbers and processing recombination intermediates to ensure proper chromosome pairing and fertility.
Area of Science:
- Reproductive Biology
- Molecular Genetics
- Cell Biology
Background:
- Meiotic DNA double-strand breaks (DSBs) are vital for homologous recombination and accurate chromosome segregation.
- The mini-chromosome maintenance protein MCM8's role in mouse meiosis and infertility is not well understood.
Purpose of the Study:
- To investigate the function of MCM8 in meiotic recombination in mouse spermatocytes.
- To elucidate the molecular mechanisms underlying MCM8's role in DSB repair and chromosome synapsis.
Main Methods:
- Cytological assays to visualize meiotic events.
- Genomic assays to analyze DNA breaks and recombination intermediates.
- In vitro binding assays with displacement loop (D-loop) structures.
Main Results:
- MCM8-deficient spermatocytes show increased SPO11-dependent DSBs at hotspots.
- DSB resection and strand-exchange protein accumulation are normal.
- Downstream recombination intermediates and MutSgamma foci formation are impaired.
- MCM8 binds to D-loop structures in vitro.
Conclusions:
- MCM8 regulates meiotic DSB formation and is crucial for processing early recombination intermediates.
- MCM8 is essential for the stability of post-resection intermediates, enabling DSB repair and homologous chromosome synapsis.
- MCM8 dysfunction contributes to infertility by disrupting meiotic recombination fidelity.
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