Saccharomyces cerevisiae has large number of genes that can be genetically altered to produce a multiple or pleiotropic drug resistance phenotype. The homologous zinc finger transcription factors Pdr1p and Pdr3p both elevate resistance to many drugs, including cycloheximide, This elevation in cycloheximide tolerance only occurs in the presence of an intact copy of the PDR5 gene that encodes a plasma membrane-localized ATP binding cassette transporter protein. Previously, we have found that a single binding site for Pdr3p present in the PDR5 promoter is sufficient to provide Pdr3p-responsive gene expression. In this study, we have found that there are three sites in the PDR5 5'-noncoding region that are closely related to one another and are...
The network of genes which mediates multiple drug resistance in yeast includes, among others, the PD...
The ATP-binding cassette (ABC) superfamily of transporters is one of the largest classes of proteins...
In Saccharomyces cerevisiae, the transcription factors Pdr1p and Pdr3p activate the expression of se...
Saccharomyces cerevisiae cells possess the ability to simultaneously acquire resistance to an array ...
Pleiotropic drug resistance in the yeast Saccharomyces cerevisiae results mainly from the overexpres...
The Saccharomyces cerevisiae PDR3 gene, located near the centromere of chromosome II, has been compl...
AbstractThe yeast transcription factors Pdr1 and Pdr3 control pleiotropic drug resistance (PDR) deve...
AbstractThe transcription factor Pdr1p recognizes Pdr1p/Pdr3p-response element (PDRE) to activate ge...
Mutations at the yeast PDR1 transcriptional regulator locus are responsible for overexpression of th...
The yeast PDR1 locus encodes a member of the C6 zinc cluster family of transciptional regulatory pro...
This minireview describes a network of genes involved in multiple drug resistance of the yeast S. ce...
The Saccharomyces cerevisiae gene PDR1, responsible for pleiotropic drug resistance, was isolated fr...
AbstractIn Saccharomyces cerevisiae, the transcription factors Pdr1p and Pdr3p activate the expressi...
The yeast transcription factor Pdr1p regulates the expression of a number of genes, several of which...
Overexpression of the yeast Pdr5 ATP-binding cassette transporter leads to pleiotropic drug resistan...
The network of genes which mediates multiple drug resistance in yeast includes, among others, the PD...
The ATP-binding cassette (ABC) superfamily of transporters is one of the largest classes of proteins...
In Saccharomyces cerevisiae, the transcription factors Pdr1p and Pdr3p activate the expression of se...
Saccharomyces cerevisiae cells possess the ability to simultaneously acquire resistance to an array ...
Pleiotropic drug resistance in the yeast Saccharomyces cerevisiae results mainly from the overexpres...
The Saccharomyces cerevisiae PDR3 gene, located near the centromere of chromosome II, has been compl...
AbstractThe yeast transcription factors Pdr1 and Pdr3 control pleiotropic drug resistance (PDR) deve...
AbstractThe transcription factor Pdr1p recognizes Pdr1p/Pdr3p-response element (PDRE) to activate ge...
Mutations at the yeast PDR1 transcriptional regulator locus are responsible for overexpression of th...
The yeast PDR1 locus encodes a member of the C6 zinc cluster family of transciptional regulatory pro...
This minireview describes a network of genes involved in multiple drug resistance of the yeast S. ce...
The Saccharomyces cerevisiae gene PDR1, responsible for pleiotropic drug resistance, was isolated fr...
AbstractIn Saccharomyces cerevisiae, the transcription factors Pdr1p and Pdr3p activate the expressi...
The yeast transcription factor Pdr1p regulates the expression of a number of genes, several of which...
Overexpression of the yeast Pdr5 ATP-binding cassette transporter leads to pleiotropic drug resistan...
The network of genes which mediates multiple drug resistance in yeast includes, among others, the PD...
The ATP-binding cassette (ABC) superfamily of transporters is one of the largest classes of proteins...
In Saccharomyces cerevisiae, the transcription factors Pdr1p and Pdr3p activate the expression of se...