Molecular basis of resistance to azole antifungals.
暂无分享,去创建一个
S. Kelly | R. Danesi | A. Lupetti | M. Campa | Romano Danesi | Mario Del Tacca | M. del Tacca | Antonella Lupetti | Mario Campa | Steven Kelly
[1] Ronald N. Jones,et al. National surveillance of nosocomial blood stream infection due to species of Candida other than Candida albicans: frequency of occurrence and antifungal susceptibility in the SCOPE Program. SCOPE Participant Group. Surveillance and Control of Pathogens of Epidemiologic. , 1998, Diagnostic microbiology and infectious disease.
[2] J. Bennett,et al. Genetic Analysis of Azole Resistance in the Darlington Strain of Candida albicans , 2000, Antimicrobial Agents and Chemotherapy.
[3] D. Kerridge,et al. 19F nuclear magnetic resonance study of fluoropyrimidine metabolism in strains of Candida glabrata with specific defects in pyrimidine metabolism , 1990, Antimicrobial Agents and Chemotherapy.
[4] J. Bouchara,et al. In-vitro resistance to azoles associated with mitochondrial DNA deficiency in Candida glabrata. , 1999, Journal of medical microbiology.
[5] R. Filmon,et al. In-vivo selection of an azole-resistant petite mutant of Candida glabrata. , 2000, Journal of medical microbiology.
[6] G. Fadda,et al. Reverse Cross Blot Hybridization Assay for Rapid Detection of PCR-Amplified DNA from Candida Species, Cryptococcus neoformans, and Saccharomyces cerevisiae in Clinical Samples , 2000, Journal of Clinical Microbiology.
[7] J. Nickels,et al. Upregulation of ERG Genes inCandida Species by Azoles and Other Sterol Biosynthesis Inhibitors , 2000, Antimicrobial Agents and Chemotherapy.
[8] D. Sanglard,et al. Role of ATP-Binding-Cassette Transporter Genes in High-Frequency Acquisition of Resistance to Azole Antifungals in Candida glabrata , 2001, Antimicrobial Agents and Chemotherapy.
[9] Elizabeth A. Winzeler,et al. Genomic profiling of drug sensitivities via induced haploinsufficiency , 1999, Nature Genetics.
[10] S. Kohlwein,et al. Biochemical characterization and subcellular localization of the sterol C‐24(28) reductase, Erg4p, from the yeast Saccharomyces cerevisiae , 2000, FEBS letters.
[11] G. Medoff,et al. Amphotericin B-induced oxidative damage and killing of Candida albicans. , 1986, The Journal of infectious diseases.
[12] Dominique Sanglard,et al. Amino Acid Substitutions in the Cytochrome P-450 Lanosterol 14α-Demethylase (CYP51A1) from Azole-Resistant Candida albicans Clinical Isolates Contribute to Resistance to Azole Antifungal Agents , 1998, Antimicrobial Agents and Chemotherapy.
[13] J. Sobel,et al. High-Frequency, In Vitro Reversible Switching of Candida lusitaniae Clinical Isolates from Amphotericin B Susceptibility to Resistance , 1999, Antimicrobial Agents and Chemotherapy.
[14] F. Sherman,et al. Specific Chromosome Alterations in Fluconazole-Resistant Mutants of Candida albicans , 1999, Journal of bacteriology.
[15] D. Sanglard,et al. Experimental Induction of Fluconazole Resistance in Candida tropicalis ATCC 750 , 2000, Antimicrobial Agents and Chemotherapy.
[16] T. C. White,et al. Rapid, Transient Fluconazole Resistance inCandida albicans Is Associated with Increased mRNA Levels of CDR , 1998, Antimicrobial Agents and Chemotherapy.
[17] S. Kelly,et al. Resistance to amphotericin B associated with defective sterol delta 8-->7 isomerase in a Cryptococcus neoformans strain from an AIDS patient. , 1994, FEMS microbiology letters.
[18] Guy H. Grant,et al. Modeling cytochrome P450 14α demethylase (Candida albicans) from P450cam , 1994 .
[19] J. Sobel,et al. Candida glabrata: Review of Epidemiology, Pathogenesis, and Clinical Disease with Comparison toC. albicans , 1999, Clinical Microbiology Reviews.
[20] D. Sanglard,et al. Cloning of Candida albicans genes conferring resistance to azole antifungal agents: characterization of CDR2, a new multidrug ABC transporter gene. , 1997, Microbiology.
[21] T. C. White,et al. The R467K Amino Acid Substitution in Candida albicans Sterol 14α-Demethylase Causes Drug Resistance through Reduced Affinity , 2000, Antimicrobial Agents and Chemotherapy.
[22] L. Koymans,et al. Contribution of mutations in the cytochrome P450 14alpha-demethylase (Erg11p, Cyp51p) to azole resistance in Candida albicans. , 1999, Microbiology.
[23] P. Slonimski,et al. OXA1, a Saccharomyces cerevisiae nuclear gene whose sequence is conserved from prokaryotes to eukaryotes controls cytochrome oxidase biogenesis. , 1994, Journal of molecular biology.
[24] Xiao-Jun Ma,et al. Genomic Profiling of the Response of Candida albicans to Itraconazole Treatment Using a DNA Microarray , 2001, Antimicrobial Agents and Chemotherapy.
[25] T. C. White,et al. Distinct Patterns of Gene Expression Associated with Development of Fluconazole Resistance in Serial Candida albicansIsolates from Human Immunodeficiency Virus-Infected Patients with Oropharyngeal Candidiasis , 1998, Antimicrobial Agents and Chemotherapy.
[26] B. Gazzard,et al. Non-albicans oral candidosis in HIV-positive patients. , 1999, The Journal of antimicrobial chemotherapy.
[27] T. C. White,et al. In vitro antifungal activity of BMS-207147 and itraconazole against yeast strains that are non-susceptible to fluconazole. , 1999, Diagnostic microbiology and infectious disease.
[28] T. C. White,et al. Clinical, Cellular, and Molecular Factors That Contribute to Antifungal Drug Resistance , 1998, Clinical Microbiology Reviews.
[29] P. Verhasselt,et al. Accumulation of 3-Ketosteroids Induced by Itraconazole in Azole-Resistant Clinical Candida albicans Isolates , 1999, Antimicrobial Agents and Chemotherapy.
[30] T. Hallstrom,et al. Multiple Signals from Dysfunctional Mitochondria Activate the Pleiotropic Drug Resistance Pathway in Saccharomyces cerevisiae* , 2000, The Journal of Biological Chemistry.
[31] F. Dromer,et al. Antifungal drug resistance in pathogenic fungi. , 1998, Medical mycology.
[32] S. Katiyar,et al. Identification and expression of multidrug resistance-related ABC transporter genes in Candida krusei. , 2001, Medical mycology.
[33] C. Kirkpatrick,et al. Long-term therapy of chronic mucocutaneous candidiasis with ketoconazole: experience with twenty-one patients. , 1983, The American journal of medicine.
[34] P. Marichal,et al. Origin of differences in susceptibility of Candida krusei to azole antifungal agents , 1995, Mycoses.
[35] T. C. White,et al. The presence of an R467K amino acid substitution and loss of allelic variation correlate with an azole-resistant lanosterol 14alpha demethylase in Candida albicans , 1997, Antimicrobial agents and chemotherapy.
[36] N. Ryder,et al. Multiple amino acid substitutions in lanosterol 14alpha-demethylase contribute to azole resistance in Candida albicans. , 1999, Microbiology.
[37] D. Kelly,et al. Y132H substitution in Candida albicans sterol 14alpha-demethylase confers fluconazole resistance by preventing binding to haem. , 1999, FEMS microbiology letters.
[38] C. Ingles,et al. Interorganellar Communication , 2001, The Journal of Biological Chemistry.
[39] J. Thatcher,et al. Mitochondrial Fusion in Yeast Requires the Transmembrane GTPase Fzo1p , 1998, The Journal of cell biology.
[40] D. Kontoyiannis. Modulation of fluconazole sensitivity by the interaction of mitochondria and erg3p in Saccharomyces cerevisiae. , 2000, The Journal of antimicrobial chemotherapy.
[41] D. Kelly,et al. Resistance to fluconazole and amphotericin in Candida albicans from AIDS patients , 1996, The Lancet.
[42] Brian C. Baldwin,et al. The Mutation T315A in Candida albicans Sterol 14α-Demethylase Causes Reduced Enzyme Activity and Fluconazole Resistance through Reduced Affinity* , 1997, The Journal of Biological Chemistry.
[43] D. Soll,et al. In Vitro Susceptibilities of Candida dubliniensisIsolates Tested against the New Triazole and Echinocandin Antifungal Agents , 1999, Journal of Clinical Microbiology.
[44] J. Rex,et al. Resistance of Candida species to fluconazole , 1995, Antimicrobial agents and chemotherapy.
[45] N. Pfanner,et al. Identification of the essential yeast protein MIM17, an integral mitochondrial inner membrane protein involved in protein import , 1994, FEBS letters.
[46] D. Kelly,et al. Resistance to fluconazole and cross‐resistance to amphotericin B in Candida albicans from AIDS patients caused by defective sterol Δ5,6‐desaturation , 1997, FEBS letters.
[47] D. Kelly,et al. Molecular aspects of azole antifungal action and resistance. , 1999, Drug resistance updates : reviews and commentaries in antimicrobial and anticancer chemotherapy.
[48] D. Sanglard,et al. The ATP Binding Cassette Transporter GeneCgCDR1 from Candida glabrata Is Involved in the Resistance of Clinical Isolates to Azole Antifungal Agents , 1999, Antimicrobial Agents and Chemotherapy.
[49] M. Ghannoum,et al. Mechanism of Fluconazole Resistance inCandida krusei , 1998, Antimicrobial Agents and Chemotherapy.
[50] J. Fostel,et al. Genome-Wide Expression Patterns inSaccharomyces cerevisiae: Comparison of Drug Treatments and Genetic Alterations Affecting Biosynthesis of Ergosterol , 2000, Antimicrobial Agents and Chemotherapy.
[51] S. Kelly,et al. Genetic and physiological analysis of azole sensitivity in Saccharomyces cerevisiae. , 1989, Journal of medical and veterinary mycology : bi-monthly publication of the International Society for Human and Animal Mycology.
[52] D. Kelly,et al. The G464S amino acid substitution in Candida albicans sterol 14alpha-demethylase causes fluconazole resistance in the clinic through reduced affinity. , 1999, Biochemical and biophysical research communications.
[53] C. van Broeckhoven,et al. Molecular biological characterization of an azole-resistant Candida glabrata isolate , 1997, Antimicrobial agents and chemotherapy.
[54] T. C. White,et al. Increased mRNA levels of ERG16, CDR, and MDR1 correlate with increases in azole resistance in Candida albicans isolates from a patient infected with human immunodeficiency virus , 1997, Antimicrobial agents and chemotherapy.
[55] T. C. White,et al. Inducible Azole Resistance Associated with a Heterogeneous Phenotype in Candida albicans , 2001, Antimicrobial Agents and Chemotherapy.
[56] H. Einsele,et al. Phospholipid and sterol analysis of plasma membranes of azole-resistant Candida albicans strains. , 2000, FEMS microbiology letters.
[57] S. Kelly,et al. Molecular analysis of cyp51 from fluconazole-resistant Candida albicans strains. , 1997, FEMS microbiology letters.
[58] T. C. White,et al. Transcriptional Analyses of Antifungal Drug Resistance in Candida albicans , 2000, Antimicrobial Agents and Chemotherapy.