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Pereira de Sa, N.

Publications and source records attributed to Pereira de Sa, N..

2 recordsLinked to original sources

Micafungin exposure drives multidrug resistance in Clavispora lusitaniae

Fungal infections are an escalating global health concern, with rare Candida species posing an urgent threat due to emerging multidrug resistance. Clavispora (Candida) lusitaniae is an uncommon pathogen in which multidrug resistance has been documented during antifungal therapy, yet the selective forces driving this phenotype remain unclear. Here, we show that exposure to the echinocandin micafungin (MCF) alone can select for multidrug resistance in C. lusitaniae. Through controlled evolution experiments we identified individual point mutations in genes encoding ergosterol biosynthesis enzymes (ERGs), sterol trafficking proteins (OSH2), and the echinocandin drug target (FKS1) that confer a significant fitness benefit to one or more classes of antifungals. We find that ERG3 loss-of-function is the primary and independent driver of pan-antifungal resistance to echinocandins, azoles and polyenes. The ERG3 mutants have <1% ergosterol, increased levels of non-toxic sterol intermediates, and increased chitin content, consistent with both cell membrane and cell wall remodeling that enables the fungal pathogen to evade all three drug classes. The convergence of sterol reprogramming and compensatory cell wall remodeling that occurs during adaptation to echinocandin monotherapy can evolve through a single point mutation and parallels our recent case study of acquired multidrug resistance. IMPORTANCEMultidrug resistance in Candida species severely limits treatment options and increases mortality, particularly in immunocompromised patients. Despite increasing reports of multidrug resistance, the molecular mechanisms driving multidrug resistance remain poorly understood. We find that in vitro MCF exposure alone can drive multidrug resistance in C. lusitaniae via acquisition of de novo point mutations in ERG3, an observation that parallels our recent patient case study. By identifying causative mutations and associated physiological changes, we provide mechanistic insight into the emergence of multidrug resistance and highlight the need for surveillance strategies that account for resistance evolution under echinocandin monotherapy.

microbiology↗

Cholesterol and sphingomyelin are critical for Fcγ receptor-mediated phagocytosis of Cryptococcus neoformans by macrophages

Cryptococcus neoformans is a fungal pathogen that causes life-threatening meningoencephalitis in lymphopenic patients. Pulmonary macrophages comprise the first line of host defense upon inhalation of fungal spores, whereby macrophages either aid in clearance or serve as a niche for its dissemination. Given that macrophages play a key role in the outcome of a cryptococcal infection, it is crucial to understand factors that mediate phagocytosis of C. neoformans. Since lipid rafts (high order plasma membrane domains enriched in cholesterol and sphingomyelin) have been implicated in facilitating phagocytosis, we evaluated whether these ordered domains govern macrophages ability to phagocytose C. neoformans. We found that cholesterol or sphingomyelin depletion resulted in significantly deficient IgG-mediated phagocytosis of the fungus. Moreover, repletion of macrophage cells with a raft-promoting sterol (7-dehydrocholesterol) rescued this phagocytic deficiency while a raft-inhibiting sterol (coprostanol) significantly decreased IgG-mediated phagocytosis of C. neoformans. Using a photoswitchable sphingomyelin (AzoSM), we observed that the raft-promoting conformation (trans-AzoSM) resulted in efficient phagocytosis whereas raft-inhibiting conformation (cis-AzoSM) significantly blunted phagocytosis in a reversible manner. We observed that the effect on phagocytosis may be mediated by facilitating Fc{gamma} receptor (Fc{gamma}R) function, whereby IgG immune complexes cross-link to Fc{gamma}RIII, resulting in tyrosine phosphorylation of FcR {gamma}-subunit (FcR{gamma}), an important accessory protein in the Fc{gamma}R signaling cascade. Correspondingly, cholesterol or sphingomyelin depletion resulted in decreased FcR{gamma} phosphorylation. Repletion with 7-dehydrocholesterol restored phosphorylation, whereas repletion with coprostanol showed FcR{gamma} phosphorylation comparable to unstimulated cells. Together, these data suggest that lipid rafts are critical for facilitating Fc{gamma}RIII-mediated phagocytosis of C. neoformans.

microbiology↗