Related Experiment Video
Updated: Jun 8, 2026

Frequency and Distribution of Crossovers in Caenorhabditis elegans Meiosis by SNP Genotyping using Real-time PCR
Published on: July 11, 2025
Genetic analysis of baker's yeast Msh4-Msh5 reveals a threshold crossover level for meiotic viability
K T Nishant1, Cheng Chen, Miki Shinohara
1Department of Molecular Biology and Genetics, Cornell University, Ithaca, New York, United States of America.
Abstract:
During meiosis, the Msh4-Msh5 complex is thought to stabilize single-end invasion intermediates that form during early stages of recombination and subsequently bind to Holliday junctions to facilitate crossover formation. To analyze Msh4-Msh5 function, we mutagenized 57 residues in Saccharomyces cerevisiae Msh4 and Msh5 that are either conserved across all Msh4/5 family members or are specific to Msh4 and Msh5. The Msh5 subunit appeared more sensitive to mutagenesis. We identified msh4 and msh5 threshold (msh4/5-t) mutants that showed wild-type spore viability and crossover interference but displayed, compared to wild-type, up to a two-fold decrease in crossing over on large and medium sized chromosomes (XV, VII, VIII). Crossing over on a small chromosome, however, approached wild-type levels. The msh4/5-t mutants also displayed synaptonemal complex assembly defects. A triple mutant containing a msh4/5-t allele and mutations that decreased meiotic double-strand break levels (spo11-HA) and crossover interference (pch2Δ) showed synergistic defects in spore viability. Together these results indicate that the baker's yeast meiotic cell does not require the ∼90 crossovers maintained by crossover homeostasis to form viable spores. They also show that Pch2-mediated crossover interference is important to maintain meiotic viability when crossovers become limiting.
Insights
The Msh4-Msh5 complex is crucial for stable recombination during meiosis. Mutants show reduced crossing over on larger chromosomes, highlighting its role in ensuring proper genetic exchange for viable spore formation.
Area of Science:
- Genetics
- Molecular Biology
- Cell Biology
Background:
- The Msh4-Msh5 complex plays a key role in stabilizing recombination intermediates during meiosis.
- It is believed to facilitate crossover formation by binding to Holliday junctions.
Purpose of the Study:
- To investigate the function of the Msh4-Msh5 complex in Saccharomyces cerevisiae.
- To identify specific residues critical for Msh4-Msh5 function through targeted mutagenesis.
Main Methods:
- Site-directed mutagenesis of 57 conserved and specific residues in Msh4 and Msh5.
- Analysis of spore viability, crossover frequencies, and synaptonemal complex assembly in mutant strains.
- Construction and analysis of a triple mutant combining msh4/5-t, spo11-HA, and pch2Δ mutations.
Main Results:
- Msh4-Msh5 threshold (msh4/5-t) mutants exhibited reduced crossing over on large and medium chromosomes but not small ones.
- These mutants also displayed defects in synaptonemal complex assembly.
- A triple mutant showed synergistic defects in spore viability, indicating the importance of Pch2-mediated crossover interference when crossovers are limited.
Conclusions:
- The baker's yeast meiotic cell does not require the full complement of crossovers maintained by homeostasis for spore viability.
- Pch2-mediated crossover interference is essential for maintaining meiotic viability under conditions of limited crossovers.
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