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  The Conserved Dipole in Transmembrane Helix 5 of KdpB in the Escherichia coli KdpFABC P-Type ATPase Is Crucial for Coupling and the Electrogenic K+-Translocation Step

Becker, D., Fendler, K., Altendorf, K., & Greie, J.-C. (2007). The Conserved Dipole in Transmembrane Helix 5 of KdpB in the Escherichia coli KdpFABC P-Type ATPase Is Crucial for Coupling and the Electrogenic K+-Translocation Step. Biochemistry, 46(48), 13920-13928. doi:10.1021/bi701394h.

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 Creators:
Becker, Doris1, Author
Fendler, Klaus2, Author           
Altendorf, Karlheinz1, Author
Greie, Jörg-Christian1, Author
Affiliations:
1Abteilung Mikrobiologie, Fachbereich Biologie/Chemie, Universität Osnabrück, 49069 Osnabrück, Germany, ou_persistent22              
2Department of Biophysical Chemistry, Max Planck Institute of Biophysics, Max Planck Society, ou_2068289              

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Free keywords: Molecular structure; Peptides and proteins; Hydrolysis; Monomers; Potassium
 Abstract: The KdpFABC complex of Escherichia coli, a high-affinity K+-uptake system, belongs to the group of P-type ATPases and is responsible for ATP-driven K+ uptake in the case of K+ limitation. Sequence alignments identified two conserved charged residues, D583 and K586, which are located at the center of transmembrane helix 5 (TM 5) of the catalytic KdpB subunit, and which are supposed to establish a dipole involved in energy coupling. Cells in which the two charges were eliminated or inverted by mutagenesis displayed a clearly slower growth rate with respect to wild-type cells under K+-limiting conditions. Purified KdpFABC complexes from several K586 mutants and a D583K:K586D double mutant showed a reduced K+-stimulated ATPase activity together with an increased resistance to orthovanadate. Upon reconstitution into liposomes, only the conservative K586R mutant was able to facilitate K+ transport, whereas the elimination of the positive charge at position 586 as well as inverting the charges at positions 583 and 586 (D583K:K586D) led to an uncoupling of ATP hydrolysis and K+ transport. Electrophysiological measurements with KdpFABC-containing proteoliposomes adsorbed to planar lipid bilayers revealed that in case of the D583K:K586D double mutant the characteristic K+-independent electrogenic step within the reaction cycle is lacking, thereby clearly arguing for an exact positioning of the dipole for coupling within the functional enzyme complex. In addition, these findings strongly suggest that the dipole residues in KdpB are not directly responsible for the characteristic electrogenic reaction step of KdpFABC, which most likely occurs within the K+-translocating KdpA subunit.

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Language(s): eng - English
 Dates: 2007-09-212007-07-162007-11-102007-12-04
 Publication Status: Issued
 Pages: 9
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1021/bi701394h
PMID: 17994765
 Degree: -

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Title: Biochemistry
Source Genre: Journal
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Publ. Info: Columbus, Ohio : American Chemical Society
Pages: - Volume / Issue: 46 (48) Sequence Number: - Start / End Page: 13920 - 13928 Identifier: ISSN: 0006-2960
CoNE: https://pure.mpg.de/cone/journals/resource/954925384103