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An Ex vivo Assay to Study Candida albicans Hyphal Morphogenesis in the Gastrointestinal Tract
Published on: July 1, 2020
Filamentation Is Associated with Reduced Pathogenicity of Multiple Non-albicans Candida Species
Mohua Banerjee1, Anna L Lazzell2, Jesus A Romo2
1Department of Microbiology, Immunology and Molecular Genetics, University of Texas Health Science Center at San Antonio, San Antonio, Texas, USA.
Abstract:
Candidiasis affects a wide variety of immunocompromised and medically compromised patients. Candida albicans, a major human fungal pathogen, accounts for about 50% of all cases, while the remainder are caused by the less pathogenic non-albicans Candida species (NACS). These species are believed to be less pathogenic, in part, because they do not filament as readily or robustly as C. albicans, although definitive evidence is lacking. To address this question, we used strains for two NACS, Candida tropicalis and Candida parapsilosis, which were genetically engineered to constitutively express the key transcriptional regulator UME6 and drive strong filamentation both in vitro and during infection in vivo Unexpectedly, both strains showed a dramatic reduction in organ fungal burden in response to UME6 expression. Consistent with these findings, we observed that a C. tropicalis hyperfilamentous mutant was significantly reduced and a filamentation-defective mutant was slightly increased for organ fungal burden. Comprehensive immune profiling generally did not reveal any significant changes in the host response to UME6 expression in the NACS that could explain the increased clearance of infection. Interestingly, whole-genome transcriptional profiling indicated that while genes important for filamentation were induced by UME6 expression in C. tropicalis and C. parapsilosis, other genes involved in a variety of processes important for pathogenesis were strongly downregulated. These findings suggest that there are fundamental evolutionary differences in the relationship between morphology and pathogenicity among Candida species and that NACS do not necessarily possess the same virulence properties as C. albicansIMPORTANCE Many immunocompromised individuals, including HIV/AIDS and cancer patients, are susceptible to candidiasis. About half of all cases are caused by the major fungal pathogen Candida albicans, whereas the remainder are due to less pathogenic non-albicans Candida species (NACS). Generation of filamentous cells represents a major virulence property of C. albicans, and the NACS are believed to be less pathogenic, in part, because they do not filament as well as C. albicans does. To address this question, we determined the pathogenicity of two NACS strains that have been genetically engineered to promote filamentation during infection. Surprisingly, these strains showed a dramatic reduction in pathogenicity. The host immune response did not appear to be affected. However, unlike C. albicans, filamentation of the NACS was associated with downregulation of several genes important for pathogenicity processes. Our results suggest that there are fundamental evolutionary differences in the relationship between filamentation and pathogenesis in NACS compared to C. albicans.
Insights
Non-albicans Candida species (NACS) engineered for enhanced filamentation showed reduced pathogenicity, contrary to expectations for Candida albicans. This suggests evolutionary differences in how morphology impacts virulence between Candida species.
Area of Science:
- Medical Mycology
- Infectious Diseases
- Molecular Biology
Background:
- Candidiasis is a significant opportunistic infection, particularly in immunocompromised patients.
- Candida albicans is the primary pathogen, while non-albicans Candida species (NACS) are less virulent, partly due to reduced filamentation.
- The relationship between filamentation and pathogenicity in NACS remains poorly understood compared to C. albicans.
Purpose of the Study:
- To investigate the role of filamentation in the pathogenicity of NACS.
- To determine if enhanced filamentation in NACS, similar to C. albicans, increases virulence.
- To explore the underlying molecular mechanisms and host responses associated with NACS filamentation.
Main Methods:
- Genetic engineering of Candida tropicalis and Candida parapsilosis strains to constitutively express the UME6 transcriptional regulator, inducing hyperfilamentation.
- In vivo infection models to assess organ fungal burden and pathogenicity.
- Comprehensive immune profiling to analyze host response.
- Whole-genome transcriptional profiling to identify gene expression changes.
Main Results:
- Engineered NACS strains with strong filamentation exhibited a dramatic reduction in organ fungal burden.
- A hyperfilamentous C. tropicalis mutant showed reduced fungal burden, while a filamentation-defective mutant showed a slight increase.
- Host immune responses were largely unchanged, but NACS filamentation led to downregulation of key virulence-associated genes.
- Genes involved in filamentation were induced, but other pathogenesis-related genes were repressed by UME6 expression.
Conclusions:
- Enhanced filamentation in NACS does not increase, but rather decreases, pathogenicity.
- Fundamental evolutionary differences exist in the morphology-pathogenicity relationship between C. albicans and NACS.
- NACS may possess distinct virulence strategies not solely reliant on robust filamentation.
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