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Published on: October 11, 2022
Meiosis-specific genes play roles in ploidy reduction in Cryptococcus neoformans titan cells
Zhuyun Bian1, Kayla Wilhoit2, Julian Liber2
1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, North Carolina, USA.
Abstract:
Cryptococcus neoformans is a fungal pathogen of humans that causes life-threatening meningoencephalitis. During infection, enlarged, polyploid titan cells are produced that promote survival, evade immune cells, and generate diverse progeny. These titan cells divide to produce haploid, aneuploid or diploid daughter cells with enhanced stress tolerance; however, how ploidy reduction occurs is poorly understood. Here, we show that titan cells developed from diploid strains predominantly produce diploid daughter cells with haploid daughters observed infrequently. We further demonstrate that meiosis-specific genes, including DMC1 and SPO11, are critical for stable inheritance of a diploid genome in the daughter cells. Specifically, deletion of these genes in a heterozygous diploid background results in: 1) titan cells with a significantly reduced capacity to produce daughter cells; 2) increased phenotypic variation among daughter cells produced by the titan cells, including traits that could be relevant to cell growth and viability; and 3) daughter cells produced by the titan cells exhibiting high levels of loss of heterozygosity (LOH) and aneuploidy, suggested elevated genome instability. Taken together, these findings demonstrate the importance of meiosis-specific genes in the ploidy reduction process of titan cells derived from a heterozygous diploid background in an important human fungal pathogen.
Insights
Meiosis genes like DMC1 and SPO11 are vital for Cryptococcus neoformans titan cells to reduce ploidy and stably pass on genomes. Their absence causes genome instability and reduced daughter cell production.
Area of Science:
- Mycology
- Genetics
- Pathogenesis
Background:
- Cryptococcus neoformans causes life-threatening meningoencephalitis in humans.
- During infection, polyploid titan cells enhance pathogen survival and immune evasion.
- The mechanism of ploidy reduction in titan cells remains poorly understood.
Purpose of the Study:
- To investigate the role of meiosis-specific genes in ploidy reduction during titan cell division.
- To understand how these genes affect genome stability and daughter cell characteristics.
Main Methods:
- Analysis of titan cell division in diploid Cryptococcus neoformans strains.
- Gene deletion studies focusing on meiosis-specific genes (DMC1, SPO11).
- Assessment of daughter cell ploidy, genome stability (LOH, aneuploidy), and phenotypic variation.
Main Results:
- Titan cells from diploid strains primarily produce diploid daughter cells.
- Deletion of DMC1 or SPO11 in heterozygous diploids significantly reduced daughter cell production.
- Gene deletions led to increased phenotypic variation, loss of heterozygosity, and aneuploidy in daughter cells.
Conclusions:
- Meiosis-specific genes are crucial for stable diploid genome inheritance during titan cell division.
- Disruption of these genes in Cryptococcus neoformans leads to genomic instability and altered daughter cell phenotypes.
- These findings highlight the importance of meiosis in the life cycle of this fungal pathogen.
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