Related Experiment Video
Updated: Jun 4, 2026

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination
Published on: July 18, 2025
Distinct and overlapping roles of MutLγ, Mus81-Mms4, and STR in meiotic Holliday junction processing
Lucija Orlić1,2,3, Adrian Henggeler1,2, Jázmin Nagy1,2
1Max Perutz Labs, Vienna BioCenter, Vienna, Austria.
Abstract:
Most meiotic crossovers arise from the nucleolytic resolution of recombination intermediates that ZMM proteins stabilize as double Holliday junctions (dHJs). MutLγ is the nuclease thought to resolve these ZMM-bound dHJs into crossovers, but alternative enzymes - including Mus81-Mms4 and the Sgs1-Top3-Rmi1 (STR) complex - can also process meiotic DNA joint molecules. How ZMM-bound dHJs are preferentially steered toward MutLγ-mediated processing has remained unresolved, in part because experimental systems have been unable to uncouple dHJ resolution from upstream recombination events and downstream cell-cycle progression. To overcome this limitation, we engineered a budding yeast system that stabilizes pre-existing ZMM-bound dHJs, eliminates the continued occurrence of upstream recombination events, and enables conditional pathway-specific resolution without cell-cycle advance. Using this approach, we show that MutLγ is uniquely capable of imposing crossover-specific resolution on ZMM-bound dHJs. In contrast, Mus81-Mms4 and STR can access crossover-designated recombination intermediates but generate mixed or exclusively noncrossover products. We further identify an Sgs1-independent role for Top3-Rmi1 in maintaining ZMM-dHJ architecture and preventing their conversion into aberrant, MutLγ-refractory species. Together, our findings reveal that ZMM proteins establish a hierarchy, rather than absolute selectivity, in dHJ processing, one that favours MutLγ-directed crossovers while preserving alternative resolution routes to safeguard chromosome segregation.
Insights
Meiotic crossovers are primarily formed by resolving double Holliday junctions (dHJs). This study shows MutLγ preferentially resolves dHJs into crossovers, while other enzymes produce mixed or non-crossover products, ensuring proper chromosome segregation.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Meiotic crossovers are crucial for accurate chromosome segregation.
- Double Holliday junctions (dHJs) are key recombination intermediates stabilized by ZMM proteins.
- MutLγ is the suspected nuclease for resolving ZMM-bound dHJs into crossovers, but alternative nucleases exist.
Purpose of the Study:
- To investigate the preferential resolution of ZMM-bound dHJs by MutLγ.
- To understand how alternative nucleases (Mus81-Mms4, STR complex) process meiotic recombination intermediates.
- To elucidate the mechanisms governing crossover versus non-crossover pathway selection.
Main Methods:
- Engineered a budding yeast system to stabilize pre-existing ZMM-bound dHJs.
- Uncoupled dHJ resolution from upstream recombination and downstream cell-cycle progression.
- Utilized conditional pathway-specific resolution assays.
Main Results:
- MutLγ uniquely resolves ZMM-bound dHJs into crossovers.
- Mus81-Mms4 and the STR complex generate mixed or non-crossover products from recombination intermediates.
- Top3-Rmi1, independent of Sgs1, maintains dHJ structure and prevents aberrant processing.
Conclusions:
- ZMM proteins establish a hierarchy for dHJ processing, favoring MutLγ for crossovers.
- Alternative resolution pathways exist to ensure chromosome segregation fidelity.
- This provides mechanistic insight into meiotic crossover formation and regulation.
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