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Bio-energetics Investigation of Candida albicans Using Real-time Extracellular Flux Analysis
Published on: March 19, 2019
Global Transcriptomic Analysis of the Candida albicans Response to Treatment with a Novel Inhibitor of Filamentation
Jesus A Romo1,2, Hao Zhang1,2, Hong Cai1,2
1Department of Biology, The University of Texas at San Antonio, San Antonio, Texas, USA.
Abstract:
The opportunistic pathogenic fungus Candida albicans can cause devastating infections in immunocompromised patients. Its ability to undergo a morphogenetic transition from yeast to filamentous forms allows it to penetrate tissues and damage tissues, and the expression of genes associated with a number of pathogenetic mechanisms is also coordinately regulated with the yeast-to-hypha conversion. Therefore, it is widely considered that filamentation represents one of the main virulence factors of C. albicans We have previously identified N-[3-(allyloxy)-phenyl]-4-methoxybenzamide (compound 9029936) as the lead compound in a series of small-molecule inhibitors of C. albicans filamentation and characterized its activity both in vitro and in vivo This compound appears to be a promising candidate for the development of alternative antivirulence strategies for the treatment of C. albicans infections. In this study, we performed RNA sequencing analysis of samples obtained from C. albicans cells grown under filament-inducing conditions in the presence or absence of this compound. Overall, treatment with compound 9029936 resulted in 618 upregulated and 702 downregulated genes. Not surprisingly, some of the most downregulated genes included well-characterized genes associated with filamentation and virulence such as SAP5, ECE1 (candidalysin), and ALS3, as well as genes that impact metal chelation and utilization. Gene ontology analysis revealed an overrepresentation of cell adhesion, iron transport, filamentation, biofilm formation, and pathogenesis processes among the genes downregulated during treatment with this leading compound. Interestingly, the top upregulated genes suggested an enhancement of vesicular transport pathways, particularly those involving SNARE interactions.IMPORTANCE These results from whole-genome transcriptional profiling provide further insights into the biological activity and mode of action of a small-molecule inhibitor of C. albicans filamentation. This information will assist in the development of novel antivirulence strategies against C. albicans infections.
Insights
A small molecule inhibitor targeting Candida albicans filamentation significantly altered gene expression, downregulating key virulence factors and upregulating vesicular transport pathways. This provides insights for developing new antivirulence strategies against C. albicans infections.
Area of Science:
- Mycology
- Molecular Biology
- Infectious Diseases
Background:
- * Candida albicans is an opportunistic pathogen causing infections in immunocompromised individuals.
- * Filamentation is a key virulence factor enabling tissue invasion and pathogenesis.
- * Compound 9029936 is a novel small-molecule inhibitor of C. albicans filamentation.
Purpose of the Study:
- * To investigate the transcriptomic effects of compound 9029936 on C. albicans.
- * To elucidate the mode of action of this antivirulence compound.
Main Methods:
- * RNA sequencing analysis of C. albicans cells.
- * Comparison of gene expression in the presence and absence of compound 9029936 under filament-inducing conditions.
Main Results:
- * Compound 9029936 treatment resulted in 618 upregulated and 702 downregulated genes.
- * Downregulated genes included those involved in filamentation, virulence (e.g., SAP5, ECE1, ALS3), and metal utilization.
- * Upregulated genes indicated enhanced vesicular transport pathways, particularly SNARE interactions.
Conclusions:
- * Compound 9029936 effectively inhibits C. albicans filamentation and virulence gene expression.
- * The compound modulates host-pathogen interactions via effects on cell adhesion and metal transport.
- * Transcriptional profiling offers valuable insights for developing novel antivirulence therapies against C. albicans.
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