Structural basis of inhibition of a transporter from Staphylococcus aureus, NorC, through a single-domain camelid antibody

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作者
Sushant Kumar
Arunabh Athreya
Ashutosh Gulati
Rahul Mony Nair
Ithayaraja Mahendran
Rakesh Ranjan
Aravind Penmatsa
机构
[1] Indian Institute of Science,Molecular Biophysics Unit
[2] ICAR-National Research Centre of Camel (NRCC),Principal Scientist
[3] Van Andel Institute,Department of Biochemistry and Biophysics
[4] Stockholm University,Molecular Physiology and Biophysics
[5] Vanderbilt University,Structural Parasitology Lab
[6] International Centre for Genetic engineering and Biotechnology,undefined
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Transporters play vital roles in acquiring antimicrobial resistance among pathogenic bacteria. In this study, we report the X-ray structure of NorC, a 14-transmembrane major facilitator superfamily member that is implicated in fluoroquinolone resistance in drug-resistant Staphylococcus aureus strains, at a resolution of 3.6 Å. The NorC structure was determined in complex with a single-domain camelid antibody that interacts at the extracellular face of the transporter and stabilizes it in an outward-open conformation. The complementarity determining regions of the antibody enter and block solvent access to the interior of the vestibule, thereby inhibiting alternating-access. NorC specifically interacts with an organic cation, tetraphenylphosphonium, although it does not demonstrate an ability to transport it. The interaction is compromised in the presence of NorC-antibody complex, consequently establishing a strategy to detect and block NorC and related transporters through the use of single-domain camelid antibodies.
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