Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
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Emerging Threats in Antifungal-Resistant Fungal PathogensAntifungal Therapy: New Advances in the Understanding and Treatment of MycosisMultilaboratory study of epidemiological cutoff values for detection of resistance in eight Candida species to fluconazole, posaconazole, and voriconazole.Evaluation of amphotericin B and chloramphenicol as alternative drugs for treatment of chytridiomycosis and their impacts on innate skin defenses.Genetic dissection of azole resistance mechanisms in Candida albicans and their validation in a mouse model of disseminated infectionLongitudinal genotyping of Candida dubliniensis isolates reveals strain maintenance, microevolution, and the emergence of itraconazole resistance.Aspergillus fumigatus C-5 sterol desaturases Erg3A and Erg3B: role in sterol biosynthesis and antifungal drug susceptibility.Upregulation of the ERG11 gene in Candida krusei by azolesCandida tropicalis antifungal cross-resistance is related to different azole target (Erg11p) modifications.Mechanisms of antifungal drug resistance in Candida dubliniensis.Effect of traditional Chinese medicinal herbs on Candida spp. from patients with HIV/AIDS.Current status of antifungal resistance and its impact on clinical practice.Epidemiology and molecular mechanisms of antifungal resistance in Candida and Aspergillus.Antifungal resistance and new strategies to control fungal infections.Multidrug-Resistant Candida: Epidemiology, Molecular Mechanisms, and Treatment.Rapamycin control of exocrine protein levels in saliva after adenoviral vector-mediated gene transfer.Candida albicans zinc cluster protein Upc2p confers resistance to antifungal drugs and is an activator of ergosterol biosynthetic genes.Reduced azole susceptibility in genotype 3 Candida dubliniensis isolates associated with increased CdCDR1 and CdCDR2 expression.Influence of doxorubicin on fluconazole susceptibility and efflux pump gene expression of Candida dubliniensis.Loss of Upc2p-Inducible ERG3 Transcription Is Sufficient To Confer Niche-Specific Azole Resistance without Compromising Candida albicans Pathogenicity.Cdr2p contributes to fluconazole resistance in Candida dubliniensis clinical isolates
P2860
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P2860
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
description
2003 nî lūn-bûn
@nan
2003 թուականի Օգոստոսին հրատարակուած գիտական յօդուած
@hyw
2003 թվականի օգոստոսին հրատարակված գիտական հոդված
@hy
2003年の論文
@ja
2003年論文
@yue
2003年論文
@zh-hant
2003年論文
@zh-hk
2003年論文
@zh-mo
2003年論文
@zh-tw
2003年论文
@wuu
name
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
@ast
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
@en
type
label
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
@ast
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
@en
prefLabel
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
@ast
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
@en
P2093
P2860
P50
P1476
Molecular mechanisms of itraconazole resistance in Candida dubliniensis.
@en
P2093
Colin J Jackson
Emmanuelle Pinjon
Steven L Kelly
P2860
P304
P356
10.1128/AAC.47.8.2424-2437.2003
P407
P577
2003-08-01T00:00:00Z