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Use of Time-Lapse Microscopy and Stage-Specific Nuclear Depletion of Proteins to Study Meiosis in S. cerevisiae
Published on: October 11, 2022
Php4 Is a Key Player for Iron Economy in Meiotic and Sporulating Cells
Ariane Brault1, Charalampos Rallis2, Vincent Normant1
1Département de Biochimie, Faculté de Médecine et des Sciences de la Santé, Université de Sherbrooke, Quebec, J1E 4K8, Canada.
Abstract:
Meiosis is essential for sexually reproducing organisms, including the fission yeast Schizosaccharomyces pombe In meiosis, chromosomes replicate once in a diploid precursor cell (zygote), and then segregate twice to generate four haploid meiotic products, named spores in yeast. In S. pombe, Php4 is responsible for the transcriptional repression capability of the heteromeric CCAAT-binding factor to negatively regulate genes encoding iron-using proteins under low-iron conditions. Here, we show that the CCAAT-regulatory subunit Php4 is required for normal progression of meiosis under iron-limiting conditions. Cells lacking Php4 exhibit a meiotic arrest at metaphase I. Microscopic analyses of cells expressing functional GFP-Php4 show that it colocalizes with chromosomal material at every stage of meiosis under low concentrations of iron. In contrast, GFP-Php4 fluorescence signal is lost when cells undergo meiosis under iron-replete conditions. Global gene expression analysis of meiotic cells using DNA microarrays identified 137 genes that are regulated in an iron- and Php4-dependent manner. Among them, 18 genes are expressed exclusively during meiosis and constitute new putative Php4 target genes, which include hry1+ and mug14+ Further analysis validates that Php4 is required for maximal and timely repression of hry1+ and mug14+ genes. Using a chromatin immunoprecipitation approach, we show that Php4 specifically associates with hry1+ and mug14+ promoters in vivo Taken together, the results reveal that in iron-starved meiotic cells, Php4 is essential for completion of the meiotic program since it participates in global gene expression reprogramming to optimize the use of limited available iron.
Insights
The CCAAT-binding subunit Php4 is crucial for meiosis progression in fission yeast under iron-limiting conditions. Without Php4, meiosis arrests, highlighting its role in iron metabolism and gene regulation during this process.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Meiosis is a fundamental process for sexual reproduction, producing haploid spores from diploid cells.
- In fission yeast (Schizosaccharomyces pombe), the transcription factor Php4 regulates iron-dependent genes.
- Iron availability is critical for cellular processes, including meiosis.
Purpose of the Study:
- To investigate the role of Php4 in meiosis under iron-limiting conditions in S. pombe.
- To identify genes regulated by Php4 during meiosis.
- To understand how iron homeostasis is maintained during meiotic progression.
Main Methods:
- Meiotic progression analysis in wild-type and Php4-deficient yeast strains.
- Microscopy to track GFP-tagged Php4 localization.
- DNA microarray analysis for global gene expression profiling.
- Chromatin immunoprecipitation (ChIP) to assess Php4 binding to target gene promoters.
Main Results:
- Php4 is essential for normal meiotic progression, with its absence causing metaphase I arrest.
- GFP-Php4 localizes with chromosomal material during meiosis under low iron but is lost under iron-replete conditions.
- Global gene expression analysis revealed 137 iron- and Php4-dependent genes, including 18 novel meiotic targets like hry1+ and mug14+.
- Php4 is required for the repression of hry1+ and mug14+ and directly binds their promoters.
Conclusions:
- Php4 plays a critical role in completing meiosis under iron-limiting conditions.
- Php4 contributes to global gene expression reprogramming to manage iron scarcity during meiosis.
- The findings reveal a novel function of Php4 in coordinating iron metabolism with the meiotic program.
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