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Efficient Sporulation of Saccharomyces cerevisiae in a 96 Multiwell Format
Published on: September 17, 2016
Mre11 mediates gene regulation in yeast spore development
Kazuto Kugou1, Hiroyuki Sasanuma, Kouji Matsumoto
1Genetic System Regulation Laboratory, RIKEN, Discovery Research Institute, Wako, Saitama, Japan.
Abstract:
Mre11, together with Rad50 and Xrs2/NBS, plays pivotal roles in homologous recombination, repair of DNA double strand breaks (DSBs), activation of damage-induced checkpoint, and telomere maintenance. Here we demonstrate that the absence of Mre11 in yeast causes specific effects on regulation of a class of meiotic genes for spore development. Using DNA microarray assays to analyze yeast mutants defective for meiotic DSB formation, we revealed that the meiotic expression profile in the mre11Delta cells was generally unaffected when compared to the one in the wild-type strain, although the activation of about 90 meiotic genes were severely and specifically impaired in early meiosis. These defects were confirmed by northern and lacZ reporter gene assays. Interestingly, a substantial portion of the severely affected genes includes genes responsible for spore wall biogenesis, the defects of which may account for the fragile spore wall phenotype of the mre11Delta strain. The transcriptional deficiency was not observed in other DSB mutants such as rad50Delta, xrs2Delta, spo11Delta, and spo11Y135F, suggesting the transcriptional defect in mre11Delta is due to neither lack of meiotic DSB formation, nor disintegrity of Mre11-Rad50-Xrs2 complex. In addition, the deficiency of mre11Delta in gene activation was not alleviated by the deletion of RAD24. Therefore, it is unlikely that DNA damage checkpoint activation by mre11Delta caused transcriptional deficiency. We also found that a C-terminus DNA binding domain truncation mutant (mre11DeltaC49), which has meiosis-specific defects, exhibited transcriptional defects as observed in mre11Delta, whereas an N-terminal phosphoesterase mutant (mre11D16A) does not. Taken together, we propose that Mre11 is involved in the regulation of a specific class of genes during spore development through its C-terminus domain.
Insights
The Mre11 protein is crucial for DNA repair and telomere maintenance. Its absence in yeast specifically impairs the activation of meiotic genes essential for spore development, impacting spore wall formation.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Mre11, Rad50, and Xrs2 form a complex vital for DNA repair, checkpoint activation, and telomere maintenance.
- Mre11's role in regulating meiotic gene expression, particularly during spore development, is not fully understood.
Purpose of the Study:
- To investigate the specific effects of Mre11 absence on meiotic gene regulation in yeast.
- To elucidate the mechanism by which Mre11 influences spore development gene activation.
Main Methods:
- DNA microarray analysis to assess meiotic gene expression profiles in mre11Δ yeast mutants.
- Northern blot and lacZ reporter gene assays to validate gene expression defects.
- Analysis of various yeast mutants (rad50Δ, xrs2Δ, spo11Δ, mre11ΔC49, mre11D16A) to differentiate Mre11's functions.
Main Results:
- Absence of Mre11 (mre11Δ) severely impairs the activation of approximately 90 meiotic genes, particularly those involved in spore wall biogenesis.
- This transcriptional defect is specific to Mre11 and not caused by general DNA double-strand break (DSB) formation defects or the integrity of the Mre11-Rad50-Xrs2 complex.
- The C-terminus DNA binding domain of Mre11 is essential for regulating this specific class of meiotic genes, as indicated by the mre11ΔC49 mutant phenotype.
Conclusions:
- Mre11 plays a critical, specific role in the transcriptional regulation of meiotic genes essential for yeast spore development.
- The C-terminus domain of Mre11 is crucial for this regulatory function, independent of its role in DSB repair or checkpoint activation.
- Defects in Mre11-dependent gene activation contribute to the observed fragile spore wall phenotype in mre11Δ mutants.
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