Related Experiment Video
Updated: Apr 29, 2026

Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
MFS transporters required for multidrug/multixenobiotic (MD/MX) resistance in the model yeast: understanding their
Sandra C Dos Santos1, Miguel C Teixeira1, Paulo J Dias1
1Institute for Biotechnology and Bioengineering, Centre for Biological and Chemical Engineering, Department of Bioengineering, Instituto Superior Técnico, Universidade de Lisboa Lisbon, Portugal.
Abstract:
Multidrug/Multixenobiotic resistance (MDR/MXR) is a widespread phenomenon with clinical, agricultural and biotechnological implications, where MDR/MXR transporters that are presumably able to catalyze the efflux of multiple cytotoxic compounds play a key role in the acquisition of resistance. However, although these proteins have been traditionally considered drug exporters, the physiological function of MDR/MXR transporters and the exact mechanism of their involvement in resistance to cytotoxic compounds are still open to debate. In fact, the wide range of structurally and functionally unrelated substrates that these transporters are presumably able to export has puzzled researchers for years. The discussion has now shifted toward the possibility of at least some MDR/MXR transporters exerting their effect as the result of a natural physiological role in the cell, rather than through the direct export of cytotoxic compounds, while the hypothesis that MDR/MXR transporters may have evolved in nature for other purposes than conferring chemoprotection has been gaining momentum in recent years. This review focuses on the drug transporters of the Major Facilitator Superfamily (MFS; drug:H(+) antiporters) in the model yeast Saccharomyces cerevisiae. New insights into the natural roles of these transporters are described and discussed, focusing on the knowledge obtained or suggested by post-genomic research. The new information reviewed here provides clues into the unexpectedly complex roles of these transporters, including a proposed indirect regulation of the stress response machinery and control of membrane potential and/or internal pH, with a special emphasis on a genome-wide view of the regulation and evolution of MDR/MXR-MFS transporters.
Insights
Multidrug/multixenobiotic resistance (MDR/MXR) transporters in yeast may have natural roles beyond drug export. Post-genomic research suggests complex functions in stress response and cellular homeostasis.
Area of Science:
- Molecular Biology
- Biochemistry
- Genomics
Background:
- Multidrug/multixenobiotic resistance (MDR/MXR) is crucial in clinical and agricultural settings.
- MDR/MXR transporters are traditionally viewed as drug exporters, but their exact function remains debated.
- The broad substrate range of these transporters challenges the direct export hypothesis.
Purpose of the Study:
- To review the natural roles of Major Facilitator Superfamily (MFS) drug:H(+) antiporters in Saccharomyces cerevisiae.
- To explore insights from post-genomic research on MDR/MXR transporter functions.
- To emphasize the regulation and evolution of MDR/MXR-MFS transporters.
Main Methods:
- Literature review focusing on Saccharomyces cerevisiae.
- Analysis of post-genomic research findings.
- Exploration of genome-wide data on MDR/MXR-MFS transporters.
Main Results:
- Evidence suggests MDR/MXR transporters may have evolved for purposes other than conferring chemoprotection.
- These transporters might play roles in indirect regulation of stress response machinery.
- Potential involvement in controlling membrane potential and internal pH is indicated.
Conclusions:
- MDR/MXR transporters, particularly MFS types in yeast, exhibit complex physiological roles.
- Their functions extend beyond simple drug efflux, potentially influencing cellular homeostasis.
- Understanding their evolution and regulation provides new perspectives on resistance mechanisms.
Related Concept Videos
Carrier-Mediated Transport
Active transport involves two types of membrane-spanning transporters: uptake and efflux. Uptake transporters are expressed in the small...
Drug Absorption Mechanism: Carrier-Mediated Membrane Transport
Facilitated diffusion is a passive process that utilizes human Solute Carrier (SLC) transporters. These transporters bind to the drug, undergo structural...
Membrane Transporters
Transporters are mainly composed of alpha-helices, built from bundles of ten or more helices traversing the plasma membrane. The solute-binding sites are located midway, where some of the helices are broken or distorted, making space for the binding site through...
Facilitated Diffusion
In this process, substrates such as organic compounds and ions interact with a transporter on one side, triggering conformational changes in proteins that enable...
ABC Transporters: Exporter
Glucose Transporters
Facilitated diffusion-glucose transporters (GLUTs) are encoded by the solute-linked carrier (SLC) family 2, subfamily A gene family, or SLC2A. The 14 GLUT protein members are distributed into three classes:

