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Kordana, N.

Publications and source records attributed to Kordana, N..

2 recordsLinked to original sources

A strain-specific metabolic role for the UDP-glucose 4-epimerase Uge3 in Aspergillus fumigatus virulence

Expression of a fungal-specific sub-telomeric gene, hrmA, in Aspergillus fumigatus is important for a colony biofilm morphology termed H-MORPH, increased hypoxic fitness, and virulence in a murine model of invasive pulmonary aspergillosis (IPA). How expression of hrmA contributes to virulence and worse disease progression is ill-defined. Increased hrmA expression results in reduced attachment of the extracellular matrix (ECM) to the fungal cell wall resulting in decreased strain adherence. Fungal strains that are less adherent in vitro are typically less virulent as the ECM heteropolysaccharide galactosaminogalactan (GAG) aids in adhesion to host cells and confers protection from host responses. Here we report that the UDP-glucose 4-epimerase encoding gene required for GAG biosynthesis, uge3, is necessary for full virulence of the H-MORPH strain, hrmAREV (AF293::hrmAD304G). In contrast, loss of uge3 in the reference strain AF293 did not significantly impact virulence in the tested IPA murine model. Phenotypic, transcriptomic, and metabolic analyses of uge3 loss in the respective strain backgrounds revealed a key role for Uge3 in central carbon metabolism in a strain specific context that promotes disease progression. These results complement the known role of Uge3 in GAG biosynthesis and highlight strain specific metabolic differences in pathogenic A. fumigatus strains. IMPORTANCEAspergillus fumigatus forms adherent biofilms that contribute to its ability to persist and cause disease. However, significant strain diversity exists with regard to the morphology of A. fumigatus biofilms. A distinct colony morphotype associated with increased disease progression and low oxygen fitness, termed H-MORPH, was recently described. An additional defining feature of the H-MORPH biofilm morphotype is reduced in vitro adherence to surfaces. While reduced fungal strain adherence is most commonly associated with reductions in virulence, H-MORPH strains exhibit increased virulence relative to the well-studied N-MORPH reference strain AF293. Here we discover that the UDP-glucose 4-epimerase, Uge3, plays an important role in H-MORPH central carbon metabolism complementary to its role in production of the extracellular matrix polysaccharide galactosaminogalactan (GAG). In H-MORPH strains, this metabolic role for Uge3 becomes central to virulence. These data highlight A. fumigatus strain specific mechanisms of fungal carbon metabolism related to biofilm matrix production and fungal virulence.

microbiology↗

Insights into Aspergillus fumigatus morphogenesis and pathogenesis through the putative lipid transporter ArvA

Aspergillus fumigatus poses a significant threat to human well-being, in part due to the increasing emergence of strains resistant to frontline antifungal therapy. In this study, we observe that the gene, arvA, is required for A. fumigatus morphogenesis, antifungal drug susceptibility, and cell wall homeostasis. Intriguingly, our study reveals novel morphological and growth aberrations in the absence of arvA. Loss of arvA results in hyper-swollen conidia that give rise to stunted, polarity-deficient hyphae in numerous environmental conditions, indicating a pivotal role for arvA in A. fumigatus morphogenesis. Surprisingly, despite these severe in vitro morphological and cell wall defects, arvA was not required for morbidity and mortality in immunologically distinct murine models of invasive pulmonary aspergillosis (IPA). However, growth in natural calf lung surfactant was able to normalize{Delta} arvA growth with the wild-type strain suggesting lung surfactant may partially complement the severe in vitro morphological defects of arvA loss in vivo. Taken together our observations reveal arvA as a mediator of A. fumigatus antifungal drug susceptibility and highlight the complex and ill-defined pulmonary nutrient environments role in mediating A. fumigatus pathogenesis and disease progression. IMPORTANCEAspergillus fumigatus is a challenging fungal pathogen in the clinic in part due to increasing azole drug resistance. In this study, we observe that loss of the A. fumigatus gene arvA results in increased azole susceptibility and significant in vitro morphological changes highlighted by hyper-swollen conidia that yield stunted and polarity deficient hyphae. Importantly, despite these severe in vitro morphological and growth abnormalities,{Delta} arvA surprisingly retains full pathogenicity and virulence in two immunologically distinct murine models of invasive pulmonary aspergillosis. These results challenge our understanding of the in-host environment and how it mediates fungal morphogenesis and pathogenesis. These results, consequently, not only enhances our understanding of the role of arvA in A. fumigatus morphogenesis and drug susceptibility, but further emphasizes the importance of in vivo animal models in fully evaluating potential antifungal drug targets.

microbiology↗