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Corzo-Leon, D. E.

Publications and source records attributed to Corzo-Leon, D. E..

2 recordsLinked to original sources

The Cryptococcus neoformans titanide is a pathogenic morphotype that arises from typical yeast cells in response to host-relevant conditions

Fungal morphogenesis is a major driver of disease outcome. For the opportunistic fungal pathogen Cryptococcus neoformans, extreme morphological heterogeneity within the lung environment drives dissemination, immune evasion, and drug resistance. One such morphotype is the small, oval, titanide (2-3 {micro}m). This poorly understood cell type is prevalent in lung histology and under in vitro conditions that mimic the host environment to generate cellular heterogeneity. Titanides appear after 24 hours post-induction and by 72 hours are the dominant morphotype. Despite their prevalence and the significance of cryptococcal morphogenesis for virulence, their origin remains unclear and their biology unstudied. Using TEM and fluorescence microscopy we demonstrate that titanides display distinct morphological features; they possess thin cell walls and capsules with reduced Pathogen Associated Molecular Pattern exposure and altered distribution. These features distinguish titanides from previously described C. neoformans small cells such as in vivo seed cells (4-6 {micro}m, high cell-wall mannan content) and micro cells (round, <1 m, with thick cell walls). Using microfluidics, we answer key questions pertaining to their origin and cell fate and further our understanding of C. neoformans typical cell and titanide morphological plasticity in host-relevant conditions. Interestingly, despite their thin cell walls, we show that titanides display an increased resistance to cell wall/membrane stressors and are an effective infectious propagule in a murine model. Together, these findings establish a definition and essential characterisation of the titanide morphotype and provide new insight into a key player in C. neoformans pathogenesis.

microbiology↗

Malassezia sympodialis Mala s 1 allergen is a potential KELCH protein that cross reacts with human skin

Malassezia yeast species are the dominant commensal fungal species of the human skin microbiota, but are also associated with inflammatory skin diseases, such as seborrheic dermatitis and atopic eczema (AE). Mala s 1, a {beta}-propeller protein, is an allergen identified in Malassezia sympodialis inducing both IgE and T-cell reactivity in the majority of patients with AE. In this study, we aimed to elucidate the role of Mala s 1 allergen in skin disease. An anti-Mala s 1 antibody was used to investigate the cellular localisation of Mala s 1, the potential of Mala s 1 as a therapeutic target and examine cross-reactivity of the anti-Mala s 1 antibody with human skin. We demonstrate by high pressure freezing electron microscopy and immune-staining that Mala s 1 is located in the cell wall of M. sympodialis yeast cells. Despite the ability of the anti-Mala s 1 antibody to bind to yeast cells, it did not inhibit M. sympodialis growth suggesting Mala s 1 may not be an attractive antifungal target. The Mala s 1 predicted protein sequence was analysed in silico and was found to contain a motif indicative of a KELCH protein, a group of {beta}-propeller proteins. Humans express a large number of KELCH proteins including some that are localised in the skin. To test the hypothesis that antibodies against Mala s 1 cross react with human skin proteins we examined the binding of anti-Mala s 1 antibody to human skin explant samples. Reactivity with the antibody was visualised in the epidermal layer of skin. To further characterise putative human targets recognised by the anti-Mala s 1 antibody, proteins were extracted from immunoblot gel bands and proteomic analysis performed. Several candidate human proteins were identified. To conclude, we propose that Mala s 1 is a KELCH-like {beta}-propeller protein with similarity to human skin proteins and Mala s 1 recognition may trigger the production of cross-reactive responses that contribute to skin diseases associated with M. sympodialis.

immunology↗