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Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
Cryo-EM structures of Candida albicans Cdr1 reveal azole-substrate recognition and inhibitor blocking mechanisms
1Affiliated Hospital of Hunan University/Xiangtan Central Hospital, School of Biomedical Sciences, Hunan University, Changsha, China.
Abstract:
In Candida albicans, Cdr1 pumps azole drugs out of the cells to reduce intracellular accumulation at detrimental concentrations, leading to azole-drug resistance. Milbemycin oxime, a veterinary anti-parasitic drug, strongly and specifically inhibits Cdr1. However, how Cdr1 recognizes and exports azole drugs, and how milbemycin oxime inhibits Cdr1 remain unclear. Here, we report three cryo-EM structures of Cdr1 in distinct states: the apo state (Cdr1Apo), fluconazole-bound state (Cdr1Flu), and milbemycin oxime-inhibited state (Cdr1Mil). Both the fluconazole substrate and the milbemycin oxime inhibitor are primarily recognized within the central cavity of Cdr1 through hydrophobic interactions. The fluconazole is suggested to be exported from the binding site into the environment through a lateral pathway driven by TM2, TM5, TM8 and TM11. Our findings uncover the inhibitory mechanism of milbemycin oxime, which inhibits Cdr1 through competition, hindering export, and obstructing substrate entry. These discoveries advance our understanding of Cdr1-mediated azole resistance in C. albicans and provide the foundation for the development of innovative antifungal drugs targeting Cdr1 to combat azole-drug resistance.
Insights
This study reveals how Candida albicans
Area of Science:
- Biochemistry
- Structural Biology
- Mycology
Background:
- Candida albicans develops azole-drug resistance via the Cdr1 efflux pump.
- Milbemycin oxime, an anti-parasitic drug, inhibits Cdr1, but its mechanism is unknown.
Purpose of the Study:
- To elucidate the structural mechanisms of Cdr1's substrate recognition, azole drug export, and milbemycin oxime inhibition.
Main Methods:
- Three-dimensional cryo-electron microscopy (cryo-EM) was used to determine the structures of Cdr1 in apo, fluconazole-bound, and milbemycin oxime-inhibited states.
Main Results:
- Cryo-EM structures reveal fluconazole and milbemycin oxime binding in Cdr1's central cavity via hydrophobic interactions.
- Azole export is facilitated by a lateral pathway involving transmembrane helices TM2, TM5, TM8, and TM11.
- Milbemycin oxime inhibits Cdr1 by competing with substrates, blocking export, and impeding substrate entry.
Conclusions:
- The findings clarify Cdr1's drug recognition and export mechanisms and milbemycin oxime's inhibitory action.
- This research provides a structural basis for developing novel antifungal agents to overcome azole resistance in C. albicans.

