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Updated: Aug 22, 2026

Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
ABC multidrug transporter Cdr1p of Candida albicans has divergent nucleotide-binding domains which display functional
Sudhakar Jha1, Neelam Dabas, Neerja Karnani
1Membrane Biology Laboratory, School of Life Sciences, Jawaharlal Nehru University, New Delhi 110067, India.
Abstract:
In order to ascertain the molecular basis of ATP-mediated drug extrusion by Cdr1p, a multidrug transporter of Candida albicans, we recently have reported that the Walker A motif of the N-terminal nucleotide biding domain (NBD) of this protein contains an uncommon cysteine residue (C193; GXXGXGCS/T) which is indispensable for ATP hydrolysis. This residue is exceptionally conserved in N-terminal NBDs of fungal ABC transporters and hence makes these transporters an evolutionarily divergent group. However, the presence of a conventional lysine residue at a similar position in the Walker A motif of the C-terminal NBD warrants the individual contribution of both the NBDs in the ATP-driven efflux function of such transporters. In this study we have investigated the contribution of this divergent Walker A motif in the context of the full Cdr1p protein under in vivo conditions by swapping these two crucial amino acids (C193K in Walker A motif of N-terminal NBD and K901C in Walker A motif of C-terminal NBD) between the two NBDs. Both the native and the mutant variants of Cdr1p were integrated at the PDR5 locus as GFP-tagged fusion proteins and were hyper-expressed. Our study shows that both C193K- and K901C-expressing cells elicit a severe impairment of Cdr1p's ATPase function. However, both these mutations have distinct phenotypes with respect to other functional parameters such as substrate efflux and drug resistance profiles. In contrast to C193K, K901C mutant cells were substantially hypersensitive to the tested drugs (fluconazole, ansiomycin, miconazole and cycloheximide) and were unable to expel rhodamine 6G. Our results for the first time show that both NBDs influence the Cdr1p function asymmetrically, and that the positioning of the cysteine and lysine residues within the respective Walker A motifs is functionally not interchangeable.
Insights
Investigating Candida albicans Cdr1p, this study reveals that swapping key residues in its nucleotide-binding domains impairs ATP hydrolysis. Distinct drug resistance profiles highlight asymmetric NBD roles in transporter function.
Area of Science:
- Biochemistry
- Molecular Biology
- Mycology
Background:
- Cdr1p is a multidrug transporter in Candida albicans crucial for ATP-mediated drug extrusion.
- Its N-terminal nucleotide-binding domain (NBD) has a unique cysteine in the Walker A motif, essential for ATP hydrolysis.
- The C-terminal NBD has a conventional lysine, prompting investigation into the roles of both NBDs.
Purpose of the Study:
- To investigate the functional contribution of the divergent Walker A motif in Cdr1p.
- To explore the individual roles of the N-terminal and C-terminal NBDs in ATP-driven drug efflux.
- To determine if the cysteine and lysine residues in the Walker A motifs are interchangeable.
Main Methods:
- Swapping key amino acids (C193K and K901C) between the N-terminal and C-terminal NBDs of Cdr1p.
- Expressing GFP-tagged native and mutant Cdr1p variants at the PDR5 locus in Candida albicans.
- Assessing ATPase activity, drug resistance profiles, and substrate efflux (rhodamine 6G) of mutant strains.
Main Results:
- Both C193K and K901C mutations severely impaired Cdr1p's ATPase function.
- Mutations exhibited distinct functional phenotypes regarding drug resistance and substrate efflux.
- K901C mutants showed hypersensitivity to multiple drugs and failed to efflux rhodamine 6G, unlike C193K mutants.
Conclusions:
- Both NBDs of Cdr1p contribute asymmetrically to its function.
- The specific positioning of cysteine and lysine residues in the Walker A motifs is critical and not functionally interchangeable.
- This study provides novel insights into the differential roles of NBDs in fungal ABC transporter mechanisms.
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