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Published on: June 25, 2013
Mus81 nuclease and Sgs1 helicase are essential for meiotic recombination in a protist lacking a synaptonemal complex
Agnieszka Lukaszewicz1, Rachel A Howard-Till, Josef Loidl
1Department of Chromosome Biology, Max F. Perutz Laboratories, Center for Molecular Biology, University of Vienna, A-1030 Vienna, Austria.
Abstract:
Mus81 resolvase and Sgs1 helicase have well-established roles in mitotic DNA repair. Moreover, Mus81 is part of a minor crossover (CO) pathway in the meiosis of budding yeast, plants and vertebrates. The major pathway depends on meiosis-specific synaptonemal complex (SC) formation, ZMM proteins and the MutLγ complex for CO-directed resolution of joint molecule (JM)-recombination intermediates. Sgs1 has also been implicated in this pathway, although it may mainly promote the non-CO outcome of meiotic repair. We show in Tetrahymena, that homologous chromosomes fail to separate and JMs accumulate in the absence of Mus81 or Sgs1, whereas deletion of the MutLγ-component Mlh1 does not affect meiotic divisions. Thus, our results are consistent with Mus81 being part of an essential, if not the predominant, CO pathway in Tetrahymena. Sgs1 may exert functions similar to those in other eukaryotes. However, we propose an additional role in supporting homologous CO formation by promoting homologous over intersister interactions. Tetrahymena shares the predominance of the Mus81 CO pathway with the fission yeast. We propose that in these two organisms, which independently lost the SC during evolution, the basal set of mitotic repair proteins is sufficient for executing meiotic recombination.
Insights
In Tetrahymena, the Mus81 resolvase and Sgs1 helicase are crucial for homologous chromosome separation during meiosis. Their absence disrupts crossover formation, highlighting their essential role in this process.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Mus81 resolvase and Sgs1 helicase are known for DNA repair during mitosis.
- In meiosis, Mus81 is involved in a minor crossover (CO) pathway, while the major pathway relies on synaptonemal complex (SC) formation and ZMM proteins.
Purpose of the Study:
- To investigate the roles of Mus81 and Sgs1 in meiotic recombination and chromosome segregation in Tetrahymena.
- To determine the predominant pathway for crossover formation in Tetrahymena meiosis.
Main Methods:
- Gene deletion experiments in Tetrahymena.
- Microscopic analysis of meiotic divisions and chromosome behavior.
- Analysis of joint molecule (JM) accumulation.
Main Results:
- Absence of Mus81 or Sgs1 leads to homologous chromosome non-disjunction and JM accumulation.
- Deletion of Mlh1 (a MutLγ component) does not impact meiotic divisions.
- Mus81 appears to be part of an essential, potentially predominant, CO pathway in Tetrahymena.
Conclusions:
- Mus81 plays a critical role in the essential crossover pathway in Tetrahymena meiosis.
- Sgs1 may have conserved functions and an additional role in promoting homologous interactions for CO formation.
- Tetrahymena and fission yeast, lacking SC, utilize mitotic repair proteins for meiotic recombination.
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