» Articles » PMID: 17893146

Substrate-linked Conformational Change in the Periplasmic Component of a Cu(I)/Ag(I) Efflux System

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2007 Sep 26
PMID 17893146
Citations 59
Authors
Affiliations
Soon will be listed here.
Abstract

Gram-negative bacteria utilize dual membrane resistance nodulation division-type efflux systems to export a variety of substrates. These systems contain an essential periplasmic component that is important for assembly of the protein complex. We show here that the periplasmic protein CusB from the Cus copper/silver efflux system has a critical role in Cu(I) and Ag(I) binding. Isothermal titration calorimetry experiments demonstrate that one Ag(I) ion is bound per CusB molecule with high affinity. X-ray absorption spectroscopy data indicate that the metal environment is an all-sulfur 3-coordinate environment. Candidates for the metal-coordinating residues were identified from sequence analysis, which showed four conserved methionine residues. Mutations of three of these methionine residues to isoleucine resulted in significant effects on CusB metal binding in vitro. Cells containing these CusB variants also show a decrease in their ability to grow on copper-containing plates, indicating an important functional role for metal binding by CusB. Gel filtration chromatography demonstrates that upon binding metal, CusB undergoes a conformational change to a more compact structure. Based on these structural and functional effects of metal binding, we propose that the periplasmic component of resistance nodulation division-type efflux systems plays an active role in export through substrate-linked conformational changes.

Citing Articles

Mechanisms of Copper Selectivity and Release by the Metallochaperone CusF: Insights from CO-Binding, Rapid-Freeze-Quench EXAFS, and Unnatural Amino Acid Substitution.

Rush K, Alwan K, Conner A, Welch E, Blackburn N Inorg Chem. 2024; 63(45):21519-21530.

PMID: 39472424 PMC: 11611273. DOI: 10.1021/acs.inorgchem.4c03578.


Structural and functional diversity of Resistance-Nodulation-Division (RND) efflux pump transporters with implications for antimicrobial resistance.

Kavanaugh L, Dey D, Shafer W, Conn G Microbiol Mol Biol Rev. 2024; 88(3):e0008923.

PMID: 39235227 PMC: 11426026. DOI: 10.1128/mmbr.00089-23.


Mg-dependent mechanism of environmental versatility in a multidrug efflux pump.

Russell Lewis B, Uddin M, Kuo K, Shah L, Harris N, Booth P bioRxiv. 2024; .

PMID: 38915626 PMC: 11195059. DOI: 10.1101/2024.06.10.597921.


The Hypersaline Soils of the Odiel Saltmarshes Natural Area as a Source for Uncovering a New Taxon: sp. nov.

Galisteo C, de la Haba R, Ventosa A, Sanchez-Porro C Microorganisms. 2024; 12(2).

PMID: 38399779 PMC: 10893183. DOI: 10.3390/microorganisms12020375.


The battle for silver binding: How the interplay between the SilE, SilF, and SilB proteins contributes to the silver efflux pump mechanism.

Arrault C, Monneau Y, Martin M, Cantrelle F, Boll E, Chirot F J Biol Chem. 2023; 299(8):105004.

PMID: 37394004 PMC: 10407283. DOI: 10.1016/j.jbc.2023.105004.