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Updated: Apr 8, 2026

Use of Time-Lapse Microscopy and Stage-Specific Nuclear Depletion of Proteins to Study Meiosis in S. cerevisiae
Published on: October 11, 2022
Separable Crossover-Promoting and Crossover-Constraining Aspects of Zip1 Activity during Budding Yeast Meiosis
Karen Voelkel-Meiman1, Cassandra Johnston1, Yashna Thappeta1
1Department of Molecular Biology and Biochemistry, Wesleyan University, Middletown, Connecticut, United States of America.
Abstract:
Accurate chromosome segregation during meiosis relies on the presence of crossover events distributed among all chromosomes. MutSγ and MutLγ homologs (Msh4/5 and Mlh1/3) facilitate the formation of a prominent group of meiotic crossovers that mature within the context of an elaborate chromosomal structure called the synaptonemal complex (SC). SC proteins are required for intermediate steps in the formation of MutSγ-MutLγ crossovers, but whether the assembled SC structure per se is required for MutSγ-MutLγ-dependent crossover recombination events is unknown. Here we describe an interspecies complementation experiment that reveals that the mature SC is dispensable for the formation of Mlh3-dependent crossovers in budding yeast. Zip1 forms a major structural component of the budding yeast SC, and is also required for MutSγ and MutLγ-dependent crossover formation. Kluyveromyces lactis ZIP1 expressed in place of Saccharomyces cerevisiae ZIP1 in S. cerevisiae cells fails to support SC assembly (synapsis) but promotes wild-type crossover levels in those nuclei that progress to form spores. While stable, full-length SC does not assemble in S. cerevisiae cells expressing K. lactis ZIP1, aggregates of K. lactis Zip1 displayed by S. cerevisiae meiotic nuclei are decorated with SC-associated proteins, and K. lactis Zip1 promotes the SUMOylation of the SC central element protein Ecm11, suggesting that K. lactis Zip1 functionally interfaces with components of the S. cerevisiae synapsis machinery. Moreover, K. lactis Zip1-mediated crossovers rely on S. cerevisiae synapsis initiation proteins Zip3, Zip4, Spo16, as well as the Mlh3 protein, as do the crossovers mediated by S. cerevisiae Zip1. Surprisingly, however, K. lactis Zip1-mediated crossovers are largely Msh4/Msh5 (MutSγ)-independent. This separation-of-function version of Zip1 thus reveals that neither assembled SC nor MutSγ is required for Mlh3-dependent crossover formation per se in budding yeast. Our data suggest that features of S. cerevisiae Zip1 or of the assembled SC in S. cerevisiae normally constrain MutLγ to preferentially promote resolution of MutSγ-associated recombination intermediates.
Insights
The synaptonemal complex (SC) is not essential for Mlh3-dependent crossovers in budding yeast. Interspecies complementation shows that Kluyveromyces lactis Zip1 supports Mlh3 crossovers independently of MutSγ and SC assembly.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Accurate chromosome segregation during meiosis requires crossover events, facilitated by MutSγ and MutLγ homologs.
- These crossovers mature within the synaptonemal complex (SC), a chromosomal structure essential for intermediate steps.
- The requirement of the assembled SC structure for MutSγ-MutLγ-dependent crossovers remains unclear.
Purpose of the Study:
- To investigate whether the mature synaptonemal complex (SC) structure is essential for Mlh3-dependent crossover formation.
- To determine the role of MutSγ (Msh4/5) in Mlh3-dependent crossovers when SC assembly is impaired.
Main Methods:
- Interspecies complementation experiment using Kluyveromyces lactis ZIP1 in Saccharomyces cerevisiae.
- Analysis of SC assembly, synapsis, and crossover formation in S. cerevisiae expressing K. lactis ZIP1.
- Assessment of the requirement for SC-associated proteins (Zip3, Zip4, Spo16) and MutSγ (Msh4/5) in K. lactis Zip1-mediated crossovers.
Main Results:
- The mature SC is dispensable for Mlh3-dependent crossover formation in budding yeast.
- Kluyveromyces lactis Zip1 expression in S. cerevisiae supports wild-type crossover levels without stable SC assembly.
- K. lactis Zip1-mediated crossovers are largely MutSγ-independent, unlike those mediated by S. cerevisiae Zip1.
Conclusions:
- Assembled SC and MutSγ are not required for Mlh3-dependent crossover formation in budding yeast.
- K. lactis Zip1 functionally interacts with S. cerevisiae synapsis machinery components.
- S. cerevisiae Zip1 or the assembled SC normally constrains MutLγ to resolve MutSγ-associated recombination intermediates.
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