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Jia, L.-J.

Publications and source records attributed to Jia, L.-J..

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Biotinylated surfome profiling identifies potential biomarkers for diagnosis and therapy of Aspergillus fumigatus infection

Aspergillus fumigatus is one of the most common airborne fungi capable of causing invasive mycoses in immunocompromised patients and allergic diseases in susceptible individuals. In both cases, fungal surface proteins mediate the first contact with the human immune system to evade immune responses or to induce hypersensitivity. Several methods have been established to study the surface proteome (surfome) of A. fumigatus, like trypsin shaving, glucanase treatment, or formic acid extraction. Biotinylation coupled with LC-MS/MS identification of peptides is a particularly efficient method to identify the surface exposed regions of proteins that potentially mediate interaction with the host. After biotinylation of surface proteins during spore germination, we detected 314 different surface proteins, including several well-known proteins like RodA, CcpA, and DppV, as well as several allergens, heat shock proteins (HSPs), and previously undescribed surface proteins. Using immunofluorescence microscopy, we confirmed the surface localization of three HSPs, which may have moonlighting functions. Collectively, our study generated a comprehensive data set of the A. fumigatus surfome, which complements already existing A. fumigatus surface proteome data and allows us to propose a common core set of A. fumigatus surface proteins. In addition, our study uncovers the surface-exposed regions of many proteins on the surface of spores or hyphae. These surface exposed regions are candidates for direct interaction with host cells and may represent antigenic epitopes that either induce protective immune responses or mediate immune evasion. Thus, the comprehensive datasets provided and compiled here represent reasonable immunotherapy and diagnostic targets for future investigations. HIGHLIGHTSO_LISurface protein biotinylation coupled with LC-MS/MS analysis provides a comprehensive dataset of the A. fumigatus surface proteome. C_LIO_LI314 different A. fumigatus proteins (including immunoreactive proteins, and virulence factors) with surface exposed regions were detected. C_LIO_LISurface localization of three Hsp70 chaperones was confirmed by protein tagging coupled with immunofluorescence. C_LIO_LIBy comparison with other surfome datasets, a core surfome of A. fumigatus was defined, which provides possible biomarkers for diagnosis or therapy. C_LI SIGNIFICANCEAspergillus fumigatus is the most important airborne human pathogenic mold, capable of causing both life-threatening invasive pulmonary aspergillosis in immunocompromised patients and allergic infections in atopic individuals. Despite its obvious medical relevance, timely diagnosis and efficient antifungal treatment of A. fumigatus infection remains a major challenge. Proteins on the surface of conidia (asexually produced spores) and mycelium directly mediate host-pathogen interaction and also may serve as targets for diagnosis and immunotherapy. However, the similarity of protein sequences between A. fumigatus and other organisms, and sometimes even the human host, makes selection of targets for immunological-based studies difficult. Here, using surface protein biotinylation coupled with LC-MS/MS analysis, we identified hundreds of A. fumigatus surface proteins with exposed regions, further defining putative targets for possible diagnostic and immunotherapeutic design.

microbiology

The dynamic surface proteomes of allergenic fungal conidia

Fungal spores and hyphal fragments play an important role as allergens in respiratory diseases. In this study, we performed trypsin shaving and secretome analyses to identify the surface-exposed proteins and secreted/shed proteins of Aspergillus fumigatus conidia, respectively. We investigated the surface proteome under different conditions, including temperature variation and germination. We found that the surface proteome of resting A. fumigatus conidia is not static, but instead unexpectedly dynamic, as evidenced by drastically different surface proteomes under different growth conditions. Knockouts of two abundant A. fumigatus surface proteins, ScwA and CweA, were found to function only in fine-tuning the cell wall stress response, implying that the conidial surface is very robust against perturbations. We then compared the surface proteome of A. fumigatus to other allergy-inducing molds, including Alternaria alternata, Penicillium rubens, and Cladosporium herbarum, and performed comparative proteomics on resting and swollen conidia, as well as secreted proteins from germinating conidia. We detected 125 protein ortholog groups, including 80 with putative catalytic activity, in the extracellular region of all four molds, and 42 nonorthologous proteins produced solely by A. fumigatus. Ultimately, this study highlights the dynamic nature of the A. fumigatus conidial surface and provides targets for future diagnostics and immunotherapy.

microbiology