Genetic separation of FK506 susceptibility and drug transport in the yeast Pdr5 ATP-binding cassette multidrug resistance transporter

被引:129
作者
Egner, R
Rosenthal, FE
Kralli, A
Sanglard, D
Kuchler, K
机构
[1] Univ & Bioctr Vienna, Dept Mol Genet, A-1030 Vienna, Austria
[2] Univ Basel, Biozentrum, Dept Biochem, CH-4506 Basel, Switzerland
[3] CHU Vaudois, Inst Microbiol, CH-1011 Lausanne, Switzerland
关键词
D O I
10.1091/mbc.9.2.523
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Overexpression of the yeast Pdr5 ATP-binding cassette transporter leads to pleiotropic drug resistance to a variety of structurally unrelated cytotoxic compounds. To identify Pdr5 residues involved in substrate recognition and/or drug transport, we used a combination of random in vitro mutagenesis and phenotypic screening to isolate novel mutant Pdr5 transporters with altered substrate specificity. A plasmid library containing randomly mutagenized PDR5 genes was transformed into appropriate drug-sensitive yeast cells followed by phenotypic selection of Pdr5 mutants. Selected mutant Pdr5 transporters were analyzed with respect to their expression levels, subcellular localization, drug resistance profiles to cycloheximide, rhodamines, antifungal atoles, steroids, and sensitivity to the inhibitor FK506. DNA sequencing of six PDR5 mutant genes identified amino acids important for substrate recognition, drug transport, and specific inhibition of the Pdr5 transporter. Mutations were found in each nucleotide-binding domain, the transmembrane domain 10, and, most surprisingly, even in predicted extracellular hydrophilic loops. At least some point mutations identified appear to influence folding of Pdr5, suggesting that the folded structure is a major substrate specificity determinant. Surprisingly, a S1360F exchange in transmembrane domain 10 not only caused limited substrate specificity, but also abolished Pdr5 susceptibility to inhibition by the immunosuppressant FK506. This is the first report of a mutation in a yeast ATP-binding cassette transporter that allows for the functional separation of substrate transport and inhibitor susceptibility.
引用
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页码:523 / 543
页数:21
相关论文
共 68 条
[51]   KAR1, A GENE REQUIRED FOR FUNCTION OF BOTH INTRANUCLEAR AND EXTRANUCLEAR MICROTUBULES IN YEAST [J].
ROSE, MD ;
FINK, GR .
CELL, 1987, 48 (06) :1047-1060
[52]  
Rosenberg MF, 1997, J BIOL CHEM, V272, P10685
[53]   COMBINING EVOLUTIONARY INFORMATION AND NEURAL NETWORKS TO PREDICT PROTEIN SECONDARY STRUCTURE [J].
ROST, B ;
SANDER, C .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 1994, 19 (01) :55-72
[54]   PREDICTION OF PROTEIN SECONDARY STRUCTURE AT BETTER THAN 70-PERCENT ACCURACY [J].
ROST, B ;
SANDER, C .
JOURNAL OF MOLECULAR BIOLOGY, 1993, 232 (02) :584-599
[55]   DNA SEQUENCING WITH CHAIN-TERMINATING INHIBITORS [J].
SANGER, F ;
NICKLEN, S ;
COULSON, AR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1977, 74 (12) :5463-5467
[56]   Susceptibilities of Candida albicans multidrug transporter mutants to various antifungal agents and other metabolic inhibitors [J].
Sanglard, D ;
Ischer, F ;
Monod, M ;
Bille, J .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 1996, 40 (10) :2300-2305
[57]   MECHANISMS OF RESISTANCE TO AZOLE ANTIFUNGAL AGENTS IN CANDIDA-ALBICANS ISOLATES FROM AIDS PATIENTS INVOLVE SPECIFIC MULTIDRUG TRANSPORTERS [J].
SANGLARD, D ;
KUCHLER, K ;
ISCHER, F ;
PAGANI, JL ;
MONOD, M ;
BILLE, J .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 1995, 39 (11) :2378-2386
[58]   Cloning of Candida albicans genes conferring resistance to azole antifungal agents: Characterization of CDR2, a new multidrug ABC transporter gene [J].
Sanglard, D ;
Ischer, F ;
Monod, M ;
Bille, J .
MICROBIOLOGY-UK, 1997, 143 :405-416
[59]   GENE SNQ2 OF SACCHAROMYCES-CEREVISIAE, WHICH CONFERS RESISTANCE TO 4-NITROQUINOLINE-N-OXIDE AND OTHER CHEMICALS, ENCODES A 169-KDA PROTEIN HOMOLOGOUS TO ATP-DEPENDENT PERMEASES [J].
SERVOS, J ;
HAASE, E ;
BRENDEL, M .
MOLECULAR AND GENERAL GENETICS, 1993, 236 (2-3) :214-218
[60]  
SIKORSKI RS, 1989, GENETICS, V122, P19