Vibrio cholerae VciB Mediates Iron Reduction
Author(s) -
Eric D. Peng,
Shelley M. Payne
Publication year - 2017
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.00874-16
Subject(s) - vibrio cholerae , biology , ferrous , periplasmic space , cholera , biochemistry , microbiology and biotechnology , heme , mutagenesis , bacterial outer membrane , electron transport chain , bacteria , genetics , gene , escherichia coli , mutation , chemistry , organic chemistry , enzyme
Vibrio cholerae is the causative agent of the severe diarrheal disease cholera.V. cholerae thrives within the human host, where it replicates to high numbers, but it also persists within the aquatic environments of ocean and brackish water. To survive within these nutritionally diverse environments,V. cholerae must encode the necessary tools to acquire the essential nutrient iron in all forms it may encounter. A prior study of systems involved in iron transport inV. cholerae revealed the existence ofvciB , which, while unable to directly transport iron, stimulates the transport of iron through ferrous (Fe2+ ) iron transport systems. We demonstrate here a role for VciB inV. cholerae in which VciB stimulates the reduction of Fe3+ to Fe2+ , which can be subsequently transported into the cell with the ferrous iron transporter Feo. Iron reduction is independent of functional iron transport but is associated with the electron transport chain. Comparative analysis of VciB orthologs suggests a similar role for other proteins in the VciB family. Our data indicate that VciB is a dimer located in the inner membrane with three transmembrane segments and a large periplasmic loop. Directed mutagenesis of the protein reveals two highly conserved histidine residues required for function. Taken together, our results support a model whereby VciB reduces ferric iron using energy from the electron transport chain.IMPORTANCE Vibrio cholerae is a prolific human pathogen and environmental organism. The acquisition of essential nutrients such as iron is critical for replication, andV. cholerae encodes a number of mechanisms to use iron from diverse environments. Here, we describe theV. cholerae protein VciB that increases the reduction of oxidized ferric iron (Fe3+ ) to the ferrous form (Fe2+ ), thus promoting iron acquisition through ferrous iron transporters. Analysis of VciB orthologs inBurkholderia andAeromonas spp. suggest that they have a similar activity, allowing a functional assignment for this previously uncharacterized protein family. This study builds upon our understanding of proteins known to mediate iron reduction in bacteria.
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