Chromatin-Mediated Regulation of Genome Plasticity in Human Fungal Pathogens
Abstract
:1. Introduction
2. Regulation of Chromatin Structure by Post Translation Modification of Histone Proteins
3. Fungal Model Systems as a Road Map for Understanding Heterochromatin Structure and its Function in Promoting Genome Stability
3.1. Sir2-Dependent Heterochromatin in Saccharomyces cerevisiae
3.1.1. Heterochromatin at the S. cerevisiae the MAT Locus
3.1.2. Heterochromatin at the S. cerevisiae Subtelomeres
3.1.3. Heterochromatin at the S. cerevisiae rDNA Locus
3.2. Heterochromatin in Schizosaccharomyces pombe
3.2.1. Heterochromatin at S. pombe Pericentromeres
3.2.2. S. pombe Heterochromatin at Other Genomic Locations
4. Heterochromatin Structure and Function in Human Fungal Pathogens
4.1. Distinct Chromatin States Mark Different Repetitive Elements in Candida albicans
4.2. Heterochromatin as a Regulator of Secondary Metabolite Gene Clusters in Aspergillus fumigatus
4.3. Distinct Chromatin States Associated With Cryptococcus Neoformans Repetitive Elements
5. Advancing Our Understanding of Heterochromatin Structure and Function in Human Fungal Pathogens
6. Concluding Remarks
Funding
Acknowledgments
Conflicts of Interest
References
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Buscaino, A. Chromatin-Mediated Regulation of Genome Plasticity in Human Fungal Pathogens. Genes 2019, 10, 855. https://doi.org/10.3390/genes10110855
Buscaino A. Chromatin-Mediated Regulation of Genome Plasticity in Human Fungal Pathogens. Genes. 2019; 10(11):855. https://doi.org/10.3390/genes10110855
Chicago/Turabian StyleBuscaino, Alessia. 2019. "Chromatin-Mediated Regulation of Genome Plasticity in Human Fungal Pathogens" Genes 10, no. 11: 855. https://doi.org/10.3390/genes10110855
APA StyleBuscaino, A. (2019). Chromatin-Mediated Regulation of Genome Plasticity in Human Fungal Pathogens. Genes, 10(11), 855. https://doi.org/10.3390/genes10110855