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Rad53 orchestrates divergent pathways governing genotoxic resistance, morphogenesis, and virulence in Candida
Jia Wang1, Shaling Yang1, Yi Zhou1
1Department of Pathogen Biology, School of Medicine, Nantong University, Nantong, Jiangsu, China.
Abstract:
The DNA damage response (DDR), an evolutionarily conserved surveillance mechanism enabling cells to detect genomic lesions and cell cycle arrest for repair, coordinates genomic stability through key effector kinases. In Candida albicans, our prior work characterized Rad53-mediated transcriptional reprogramming based on the RAD53 deletion strain, establishing its canonical DDR functions. However, Rad53 activation dynamically orchestrates cell cycle synchronization and repair coordination during genotoxic challenge. Investigating cellular modifications resulting from increased Rad53 functionality is essential for a deeper understanding of its regulatory response. To this end, we overexpressed Rad53 revealing its dual regulatory capacity in stress adaptation and developmental plasticity. Global transcriptomic profiling demonstrated that RAD53 overexpression enhances methyl methanesulfonate (MMS) resistance while paradoxically stimulating filamentous growth, accompanied by upregulation of DNA repair/replication genes (RFA3, POL30) and non-canonical DDR targets including cell wall remodeling factors. Comparative analysis of RAD53 deletion and overexpression transcriptomes identified enriched transcription factors, notably Sfl1, Yox1, and Rfx1. In particular, Rfx1 mediated the resistance to genotoxic stress resulting from RAD53 overexpression or deletion. Surprisingly, Rad53 overexpression substantially hindered hyphal formation and virulence, whereas its kinase-dead mutation restored these deficiencies. Notably, Rad53's role in mediating morphogenesis was independent of Rfx1. This multi-modal functionality positions Rad53 as a critical node interfacing genomic stability, developmental plasticity, and pathogenicity in C. albicans. Our study enhances the understanding of the DDR pathway in C. albicans, providing a potential target for treating this fungal pathogen.
Insights
The DNA damage response protein Rad53 in Candida albicans has dual roles. Overexpression enhances DNA repair and stress adaptation but hinders virulence, revealing Rad53 as a key regulator of fungal pathogenicity.
Area of Science:
- Mycology
- Molecular Biology
- Genetics
Background:
- The DNA damage response (DDR) is crucial for genomic stability, involving key kinases like Rad53.
- In *Candida albicans*, Rad53's role in transcriptional reprogramming and canonical DDR functions is established.
- Understanding Rad53's dynamic regulation during genotoxic stress is essential for its role in cellular adaptation.
Purpose of the Study:
- To investigate the regulatory roles of Rad53 beyond its canonical DDR functions by examining its overexpression.
- To explore Rad53's impact on stress adaptation, developmental plasticity, and pathogenicity in *C. albicans*.
- To identify novel targets and pathways regulated by Rad53.
Main Methods:
- Overexpression of Rad53 in *Candida albicans*.
- Global transcriptomic profiling (RNA-Seq) of Rad53 overexpression and deletion strains.
- Analysis of methyl methanesulfonate (MMS) resistance and filamentous growth.
- Assessment of virulence and hyphal formation.
- Mutation of Rad53 kinase activity.
Main Results:
- *RAD53* overexpression enhanced resistance to methyl methanesulfonate (MMS) and upregulated DNA repair/replication genes.
- Transcriptomic analysis revealed Rad53 influences non-canonical DDR targets, including cell wall remodeling factors.
- Transcription factors Sfl1, Yox1, and Rfx1 were enriched; Rfx1 mediated genotoxic stress resistance.
- Paradoxically, Rad53 overexpression hindered hyphal formation and virulence, which was restored by a kinase-dead mutation, independent of Rfx1.
Conclusions:
- Rad53 exhibits dual regulatory capacity, impacting both stress adaptation and developmental plasticity in *C. albicans*.
- Rad53 acts as a critical node connecting genomic stability, morphogenesis, and pathogenicity.
- Targeting Rad53 offers a potential strategy for treating *Candida albicans* infections.
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