Transcriptional Reprogramming of Candida tropicalis in Response to Isoespintanol Treatment
Orfa Inés Contreras-Martínez1, Alberto Angulo-Ortíz2, Gilmar Santafé-Patiño2
1Biology Department, Faculty of Basic Sciences, University of Córdoba, Montería 230002, Colombia.
Abstract:
Candida tropicalis, an opportunistic pathogen, ranks among the primary culprits of invasive candidiasis, a condition notorious for its resistance to conventional antifungal drugs. The urgency to combat these drug-resistant infections has spurred the quest for novel therapeutic compounds, with a particular focus on those of natural origin. In this study, we set out to evaluate the impact of isoespintanol (ISO), a monoterpene derived from Oxandra xylopioides, on the transcriptome of C. tropicalis. Leveraging transcriptomics, our research aimed to unravel the intricate transcriptional changes induced by ISO within this pathogen. Our differential gene expression analysis unveiled 186 differentially expressed genes (DEGs) in response to ISO, with a striking 85% of these genes experiencing upregulation. These findings shed light on the multifaceted nature of ISO's influence on C. tropicalis, spanning a spectrum of physiological, structural, and metabolic adaptations. The upregulated DEGs predominantly pertained to crucial processes, including ergosterol biosynthesis, protein folding, response to DNA damage, cell wall integrity, mitochondrial activity modulation, and cellular responses to organic compounds. Simultaneously, 27 genes were observed to be repressed, affecting functions such as cytoplasmic translation, DNA damage checkpoints, membrane proteins, and metabolic pathways like trans-methylation, trans-sulfuration, and trans-propylamine. These results underscore the complexity of ISO's antifungal mechanism, suggesting that it targets multiple vital pathways within C. tropicalis. Such complexity potentially reduces the likelihood of the pathogen developing rapid resistance to ISO, making it an attractive candidate for further exploration as a therapeutic agent. In conclusion, our study provides a comprehensive overview of the transcriptional responses of C. tropicalis to ISO exposure. The identified molecular targets and pathways offer promising avenues for future research and the development of innovative antifungal therapies to combat infections caused by this pathogenic yeast.
Insights
Isoespintanol (ISO), a natural compound, disrupts multiple vital pathways in the drug-resistant yeast Candida tropicalis. This complex mechanism offers a promising avenue for developing new antifungal therapies against resistant infections.
Area of Science:
- Mycology
- Molecular Biology
- Pharmacology
Background:
- Candida tropicalis is a major cause of invasive candidiasis.
- Drug-resistant strains necessitate novel antifungal treatments.
- Natural compounds are a focus for new therapeutic discovery.
Purpose of the Study:
- To investigate the impact of isoespintanol (ISO) on the transcriptome of Candida tropicalis.
- To identify molecular targets and pathways affected by ISO.
Main Methods:
- Transcriptomic analysis of Candida tropicalis exposed to ISO.
- Differential gene expression analysis to identify upregulated and downregulated genes.
Main Results:
- 186 differentially expressed genes (DEGs) were identified in response to ISO.
- 85% of DEGs were upregulated, affecting ergosterol biosynthesis, protein folding, DNA damage response, cell wall integrity, and mitochondrial activity.
- 27 genes were downregulated, impacting translation, DNA damage checkpoints, and metabolic pathways.
Conclusions:
- ISO exhibits a complex antifungal mechanism by targeting multiple essential pathways in Candida tropicalis.
- The multifaceted action of ISO may reduce the likelihood of rapid resistance development.
- ISO is a promising candidate for developing novel antifungal therapies against resistant Candida infections.


