Investigating Conservation of the Cell-Cycle-Regulated Transcriptional Program in the Fungal Pathogen, Cryptococcus
Christina M Kelliher1, Adam R Leman1, Crystal S Sierra1
1Department of Biology, Duke University, Durham, North Carolina, United States of America.
Abstract:
The pathogenic yeast Cryptococcus neoformans causes fungal meningitis in immune-compromised patients. Cell proliferation in the budding yeast form is required for C. neoformans to infect human hosts, and virulence factors such as capsule formation and melanin production are affected by cell-cycle perturbation. Thus, understanding cell-cycle regulation is critical for a full understanding of virulence factors for disease. Our group and others have demonstrated that a large fraction of genes in Saccharomyces cerevisiae is expressed periodically during the cell cycle, and that proper regulation of this transcriptional program is important for proper cell division. Despite the evolutionary divergence of the two budding yeasts, we found that a similar percentage of all genes (~20%) is periodically expressed during the cell cycle in both yeasts. However, the temporal ordering of periodic expression has diverged for some orthologous cell-cycle genes, especially those related to bud emergence and bud growth. Genes regulating DNA replication and mitosis exhibited a conserved ordering in both yeasts, suggesting that essential cell-cycle processes are conserved in periodicity and in timing of expression (i.e. duplication before division). In S. cerevisiae cells, we have proposed that an interconnected network of periodic transcription factors (TFs) controls the bulk of the cell-cycle transcriptional program. We found that temporal ordering of orthologous network TFs was not always maintained; however, the TF network topology at cell-cycle commitment appears to be conserved in C. neoformans. During the C. neoformans cell cycle, DNA replication genes, mitosis genes, and 40 genes involved in virulence are periodically expressed. Future work toward understanding the gene regulatory network that controls cell-cycle genes is critical for developing novel antifungals to inhibit pathogen proliferation.
Insights
Cryptococcus neoformans cell cycle gene expression shows conserved periodicity but diverged timing for some genes compared to Saccharomyces cerevisiae. Understanding this regulation is key for developing new antifungals against fungal meningitis.
Area of Science:
- Mycology
- Molecular Biology
- Genetics
Background:
- Cryptococcus neoformans causes fungal meningitis in immunocompromised individuals.
- Cell proliferation and virulence factors like capsule formation are linked to cell-cycle regulation in C. neoformans.
Purpose of the Study:
- To investigate and compare cell-cycle-regulated gene expression between C. neoformans and Saccharomyces cerevisiae.
- To understand the conservation and divergence of cell-cycle transcriptional programs and their implications for virulence.
Main Methods:
- Comparative genomics analysis of periodically expressed genes during the cell cycle in C. neoformans and S. cerevisiae.
- Examination of temporal ordering and network topology of cell-cycle transcription factors.
Main Results:
- Approximately 20% of genes are periodically expressed in both yeasts, indicating conserved transcriptional regulation.
- Temporal ordering of some orthologous cell-cycle genes, particularly those for bud emergence, has diverged.
- Core cell-cycle processes like DNA replication and mitosis show conserved expression timing.
- The transcription factor network topology at cell-cycle commitment is conserved in C. neoformans.
Conclusions:
- Despite evolutionary divergence, fundamental aspects of cell-cycle gene expression are conserved between C. neoformans and S. cerevisiae.
- Divergence in specific gene expression timing may contribute to differences in virulence.
- Further research into the cell-cycle gene regulatory network is crucial for developing novel antifungal therapies.
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