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Published on: January 26, 2018
H3K4 methylation regulates development, DNA repair, and virulence in Mucorales
Macario Osorio-Concepción1, Carlos Lax1, Damaris Lorenzo-Gutiérrez1
1Departamento de Genética y Microbiología, Facultad de Biología, Universidad de Murcia, Murcia, Spain.
Abstract:
Mucorales are basal fungi that opportunistically cause a potentially fatal infection known as mucormycosis (black fungus disease), which poses a significant threat to human health due to its high mortality rate and its recent association with SARS-CoV-2 infections. On the other hand, histone methylation is a regulatory mechanism with pleiotropic effects, including the virulence of several pathogenic fungi. However, the role of epigenetic changes at the histone level never has been studied in Mucorales. Here, we dissected the functional role of Set1, a histone methyltransferase that catalyzes the methylation of H3K4, which is associated with the activation of gene transcription and virulence. A comparative analysis of the Mucor lusitanicus genome (previously known as Mucor circinelloides f. lusitanicus) identified only one homolog of Set1 from Candida albicans and Saccharomyces cerevisiae that contains the typical SET domain. Knockout strains in the gene set1 lacked H3K4 monomethylation, dimethylation, and trimethylation enzymatic activities. These strains also showed a significant reduction in vegetative growth and sporulation. Additionally, set1 null strains were more sensitive to SDS, EMS, and UV light, indicating severe impairment in the repair process of the cell wall and DNA lesions and a correlation between Set1 and these processes. During pathogen-host interactions, strains lacking the set1 gene exhibited shortened polar growth within the phagosome and attenuated virulence both in vitro and in vivo. Our findings suggest that the histone methyltransferase Set1 coordinates several cell processes related to the pathogenesis of M. lusitanicus and may be an important target for future therapeutic strategies against mucormycosis.
Insights
The histone methyltransferase Set1 is crucial for Mucor lusitanicus growth, DNA repair, and virulence. Its absence significantly reduces the fungus's ability to cause mucormycosis, suggesting it as a therapeutic target.
Area of Science:
- Mycology
- Epigenetics
- Pathogen Biology
Background:
- Mucorales fungi cause life-threatening mucormycosis (black fungus disease), a growing concern amplified by SARS-CoV-2 co-infections.
- Histone methylation, a key epigenetic regulator, influences fungal virulence, but its role in Mucorales remains unexplored.
- Set1, a histone methyltransferase, catalyzes H3K4 methylation, a mark associated with gene activation and virulence.
Purpose of the Study:
- To investigate the functional role of the histone methyltransferase Set1 in the pathogenesis of Mucor lusitanicus.
- To determine Set1's involvement in essential cellular processes, including growth, stress response, and virulence.
Main Methods:
- Comparative genomic analysis identified the Set1 homolog in Mucor lusitanicus.
- Generation and characterization of set1 knockout strains to assess H3K4 methylation activity.
- Evaluation of growth, sporulation, stress sensitivity (SDS, EMS, UV), and virulence (in vitro and in vivo) of wild-type versus set1 null strains.
Main Results:
- Set1 is essential for H3K4 mono-, di-, and trimethylation in M. lusitanicus.
- set1 null strains exhibited significantly reduced vegetative growth, sporulation, and increased sensitivity to cell wall and DNA damaging agents.
- Loss of Set1 attenuated M. lusitanicus virulence, characterized by impaired polar growth within host phagosomes and reduced pathogenicity in vivo.
Conclusions:
- The histone methyltransferase Set1 plays a critical role in coordinating cell processes vital for M. lusitanicus pathogenesis.
- Set1 is implicated in growth, stress resistance, and virulence, highlighting its importance in fungal development and host interaction.
- Targeting Set1 may offer a promising therapeutic strategy to combat mucormycosis.
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