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Exhibition of antifungal resistance by sterol-auxotrophic strains ofCandida glabratawith intact virulence
Author(s) -
Minoru Nagi,
Koichi Tanabe,
Kazuko Tanaka,
Keigo Ueno,
Hironobu Nakayama,
Jun Ishikawa,
Masahiro Abe,
Satoshi Yamagoe,
Takashi Umeyama,
Shigeki Nakamura,
Motoyuki Sugai,
Kevin C. Hazen,
Yoshitsugu Miyazaki
Publication year - 2022
Publication title -
jac-antimicrobial resistance
Language(s) - English
Resource type - Journals
ISSN - 2632-1823
DOI - 10.1093/jacamr/dlac018
Subject(s) - ergosterol , sterol , auxotrophy , biology , microbiology and biotechnology , candida glabrata , virulence , antifungal drug , strain (injury) , gene , antifungal , biochemistry , cholesterol , mutant , anatomy
Background Candida glabrata is an emerging fungal pathogen in immune-compromised hosts. Previously undetected C. glabrata isolates were successfully recovered from clinical specimens by adding sterols to the growth medium. The clinical isolates are unable to synthesize ergosterol but can take up exogenous sterols under aerobic conditions. Objectives This study characterizes the sterol-auxotrophic C. glabrata strains, examines the mutation(s) in sterol synthesis genes, characterizes the drug susceptibility and evaluates the virulence in a mouse infection model. Methods Drug susceptibility of the C. glabrata strains was evaluated in a sterol-supplemented medium. The coding sequences of the sterol synthesis genes were analysed in six sterol-auxotrophic strains of C. glabrata. The fungal burden of mice infected with C. glabrata strain was determined. Results The sterol-auxotrophic strains showed high-level resistance to both azoles and amphotericin B when sterols were supplied in the test medium. Additionally, the strains harbour missense mutations in either ERG1 or ERG7. Significant differences in fungal burden were not observed between the sterol-auxotrophic strain and the sterol-competent strain with the mice infection models. Conclusions The sterol-auxotrophic C. glabrata strain investigated in this study seemed to maintain intact virulence, probably due to the supply of exogenous sterols from host organ(s). This suggests that exogenous sterol uptake develops antifungal resistance during infection.

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