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The KtrA and KtrE Subunits Are Required for Na + -Dependent K + Uptake by KtrB across the Plasma Membrane in Synechocystis sp. Strain PCC 6803
Author(s) -
Lalu Zulkifli,
Masaro Akai,
Asuka Yoshikawa,
Mie Shimojima,
Hiroyuki Ohta,
H. Robert Guy,
Nobuyuki Uozumi
Publication year - 2010
Publication title -
journal of bacteriology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.652
H-Index - 246
eISSN - 1067-8832
pISSN - 0021-9193
DOI - 10.1128/jb.00569-10
Subject(s) - extracellular , biology , synechocystis , biophysics , biochemistry , escherichia coli , mutagenesis , membrane transport , membrane , mutation , microbiology and biotechnology , mutant , gene
The Na+ -dependent K+ uptake KtrABE system is essential for the adaptation ofSynechocystis to salinity stress and high osmolality. While KtrB forms the K+ -translocating pore, the role of the subunits KtrA and KtrE for Ktr function remains elusive. Here, we characterized the role of KtrA and KtrE in Ktr-mediated K+ uptake and in modulating Na+ dependency. Expression of KtrB alone in a K+ uptake-deficientEscherichia coli strain conferred low K+ uptake activity that was not stimulated by Na+ . Coexpression of both KtrA and KtrE with KtrB increased the K+ transport activity in a Na+ -dependent manner. KtrA and KtrE were found to be localized to the plasma membrane inSynechocystis . Site-directed mutagenesis was used to analyze the role of single charged residues in KtrB for Ktr function. Replacing negatively charged residues facing the extracellular space with residues of the opposite charge increased the apparentKm for K+ in all cases. However, none of the mutations eliminated the Na+ dependency of Ktr-mediated K+ transport. Mutations of residues on the cytoplasmic side had larger effects on K+ uptake activity than those of residues on the extracellular side. Further analysis revealed that replacement of R262, which is well conserved among Ktr/Trk/HKT transporters in the third extracellular loop, by Glu abolished transport activity. The atomic-scale homology model indicated that R262 might interact with E247 and D261. Based on these data, interaction of KtrA and KtrE with KtrB increased the K+ uptake rate and conferred Na+ dependency.