Genetic Analysis of Azole Resistance in the Darlington Strain of Candida albicans (original) (raw)

Structural Insights into the Azole Resistance of the Candida albicans Darlington Strain Using Saccharomyces cerevisiae Lanosterol 14α-Demethylase as a Surrogate

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Copyright © 1997, American Society for Microbiology Molecular Biological Characterization of an Azole-Resistant

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Amino Acid Substitutions in the Cytochrome P-450 Lanosterol 14a-Demethylase (CYP51A1) from Azole-Resistant Candida albicans Clinical Isolates Contribute to Resistance to Azole Antifungal Agents

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The Candida glabrata putative sterol transporter gene CgAUS1 protects cells against azoles in the presence of serum

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Reduced Azole Susceptibility in Genotype 3 Candida dubliniensis Isolates Associated with Increased CdCDR1 and CdCDR2 Expression

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Relative Contributions of the Candida albicans ABC Transporters Cdr1p and Cdr2p to Clinical Azole Resistance

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Point Mutations in the 14-α Sterol Demethylase Cyp51A or Cyp51C Could Contribute to Azole Resistance in Aspergillus flavus

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In Vitro Low-Level Resistance to Azoles in Candida albicans Is Associated with Changes in Membrane Lipid Fluidity and Asymmetry

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UPC2A Is Required for High-Level Azole Antifungal Resistance in Candida glabrata

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