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Stuckey, P. V.

Publications and source records attributed to Stuckey, P. V..

2 recordsLinked to original sources

Real-time visualization of phagosomal pH manipulation by Cryptococcus neoformans in an immune signal-dependent way

Understanding of how intracellular pathogens survive in their host cells is important to improve management of their diseases. This has been fruitful for intracellular bacteria but it is an understudied area in fungal pathogens. Here we start elucidating and characterizing the strategies used by one of the commonest fungal pathogens, Cryptococcus neoformans, to survive intracellularly. The ability of the fungus to survive inside host cells is one of the main drivers of disease progression, yet it is unclear whether C. neoformans resides in a fully acidified, partially acidic, or neutral phagosome. Using a dye that only fluoresce under acidic conditions to stain C. neoformans, a hypha-defective Candida albicans mutant, and the nonpathogenic Saccharomyces cerevisiae, we characterized the fungal behaviors in infected macrophages by live microscopy. The main behavior in the C. albicans mutant strain and S. cerevisiae-phagosomes was rapid acidification after internalization, which remained for the duration of the imaging. In contrast, a significant number of C. neoformans-phagosomes exhibited alternative behaviors distinct from the normal phagosomal maturation: some phagosomes acidified with subsequent loss of acidification, and other phagosomes never acidified. Moreover, the frequency of these behaviors was affected by the immune status of the host cell. We applied the same technique to a flow cytometry analysis and found that a substantial percentage of C. neoformans-phagosomes showed impaired acidification, whereas almost 100% of the S. cerevisiae-phagosomes acidify. Lastly, using a membrane-damage reporter, we show phagosome permeabilization correlates with acidification alterations, but it is not the only strategy that C. neoformans uses to manipulate phagosomal acidification. The different behaviors described here provide an explanation to the confounding literature regarding cryptococcal-phagosome acidification and the methods can be applied to study other intracellular fungal pathogens.

microbiology↗

Catheterized-bladder environment induces hyphal Candida albicans formation, promoting fungal colonization and persistence.

Catheter-associated urinary tract infections (CAUTIs) account for 40% of all hospital-acquired infections. Given that 20-50% of all hospitalized patients receive a catheter, CAUTIs are one of the most common hospital-acquired infections and a significant medical complication as they result in increased morbidity, mortality, and an estimated annual cost of $340-370 million. Candida spp. - specifically Candida albicans - are a major causative agent of CAUTIs (17.8%), making it the second most common CAUTI uropathogen. Despite this frequent occurrence, the cellular and molecular details of C. albicans infection in the CAUTI microenvironment are poorly understood. Here, we characterize fungal virulence mechanisms and fungal biofilm formation during CAUTI for the first time. We found that the catheterized bladder environment triggers Candida virulence programs and robust biofilm formation through Efg1-dependent hyphal morphogenesis and Als1, an Efg1-downstream effector. Additionally, we show that the adhesin Als1 is necessary for in vitro and in vivo C. albicans biofilm formation dependent on the presence of fibrinogen (Fg), a coagulation factor released in the bladder due to the mechanical damage caused by urinary catheterization. Furthermore, in the presence of Fg, overexpression of ALS1 in C. albicans led to enhanced colonization and dissemination, while deletion of ALS1 reduced both outcomes during CAUTIs. Our study ultimately unveils the mechanism that contributes to fungal CAUTI, which may provide more effective targets for future therapies to prevent these infections.

microbiology↗