A mutation of the H-loop selectively affects rhodamine transport by the yeast multidrug ABC transporter Pdr5
Open Access
- 1 April 2008
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (13), 5069-5074
- https://doi.org/10.1073/pnas.0800191105
Abstract
The yeast ABC transporter Pdr5 plays a major role in drug resistance against a large number of structurally unrelated compounds. Although Pdr5 has been extensively studied, many important aspects regarding its molecular mechanisms remain unresolved. For example, a striking degeneration of conserved amino acid residues exists in the nucleotide binding domains (NBDs), but their functional relevance is unknown. Here, we performed in vivo and in vitro experiments to address the functional asymmetry of NBDs. It became evident by ATPase activity and drug transport studies that catalysis at only one of the two NBD composite sites is crucial for protein function. Furthermore, mutations of the proposed “catalytic carboxylate” (E1036) and the “catalytic dyad histidine” (H1068) were characterized. Although a mutation of the glutamate abolished ATPase activity and substrate transport, mutation of H1068 had no influence on ATP consumption. However, the H1068A mutation abolished rhodamine transport in vivo and in vitro, while leaving the transport of other substrates unaffected. By contrast to mammalian P-glycoprotein (P-gp), the ATPase activity of yeast Pdr5 is not stimulated by the addition of substrates, indicating that Pdr5 is an uncoupled ABC transporter that constantly hydrolyses ATP to ensure active substrate transport. Taken together, our data provide important insights into the molecular mechanism of Pdr5 and suggest that not solely the transmembrane domains dictate substrate selection.Keywords
This publication has 44 references indexed in Scilit:
- Membrane-active Compounds Activate the Transcription Factors Pdr1 and Pdr3 Connecting Pleiotropic Drug Resistance and Membrane Lipid Homeostasis inSaccharomyces cerevisiaeMolecular Biology of the Cell, 2007
- The yeast Pdr5p multidrug transporter: How does it recognize so many substrates?Biochemical and Biophysical Research Communications, 2007
- Engineering ATPase Activity in the Isolated ABC Cassette of Human TAP1Journal of Biological Chemistry, 2006
- Characterization of Cdr1p, A Major Multidrug Efflux Protein of Candida albicans: Purified Protein Is Amenable to Intrinsic Fluorescence AnalysisBiochemistry, 2006
- The Remarkable Transport Mechanism of P-Glycoprotein: A Multidrug TransporterJournal of Bioenergetics and Biomembranes, 2005
- Phosphorylation of Candida glabrata ATP-binding Cassette Transporter Cdr1p Regulates Drug Efflux Activity and ATPase StabilityPublished by Elsevier ,2005
- ABC multidrug transporter Cdr1p of Candida albicans has divergent nucleotide-binding domains which display functional asymmetryFEMS Yeast Research, 2004
- The Conserved Glutamate Residue Adjacent to the Walker-B Motif Is the Catalytic Base for ATP Hydrolysis in the ATP-binding Cassette Transporter BmrAJournal of Biological Chemistry, 2003
- Role of Carboxylate Residues Adjacent to the Conserved Core Walker B Motifs in the Catalytic Cycle of Multidrug Resistance Protein 1 (ABCC1)Published by Elsevier ,2003
- Studies with Novel Pdr5p Substrates Demonstrate a Strong Size Dependence for Xenobiotic EffluxPublished by Elsevier ,2003