NapGH components of the periplasmic nitrate reductase of Escherichia coli K-12: location, topology and physiological roles in quinol oxidation and redox balancing
- 1 April 2004
- journal article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 379 (1), 47-55
- https://doi.org/10.1042/bj20031115
Abstract
Nap (periplasmic nitrate reductase) operons of many bacteria include four common, essential components, napD, napA, napB and napC (or a homologue of napC ). In Escherichia coli there are three additional genes, napF, napG and napH, none of which are essential for Nap activity. We now show that deletion of either napG or napH almost abolished Nap-dependent nitrate reduction by strains defective in naphthoquinone synthesis. The residual rate of nitrate reduction (approx. 1% of that of napG+ H+ strains) is sufficient to replace fumarate reduction in a redox-balancing role during growth by glucose fermentation. Western blotting combined with beta-galactosidase and alkaline phosphatase fusion experiments established that NapH is an integral membrane protein with four transmembrane helices. Both the N- and C-termini as well as the two non-haem iron-sulphur centres are located in the cytoplasm. An N-terminal twin arginine motif was shown to be essential for NapG function, consistent with the expectation that NapG is secreted into the periplasm by the twin arginine translocation pathway. A bacterial two-hybrid system was used to show that NapH interacts, presumably on the cytoplasmic side of, or within, the membrane, with NapC. As expected for a periplasmic protein, no NapG interactions with NapC or NapH were detected in the cytoplasm. An in vitro quinol dehydrogenase assay was developed to show that both NapG and NapH are essential for rapid electron transfer from menadiol to the terminal NapAB complex. These new in vivo and in vitro results establish that NapG and NapH form a quinol dehydrogenase that couples electron transfer from the high midpoint redox potential ubiquinone-ubiquinol couple via NapC and NapB to NapA.Keywords
This publication has 30 references indexed in Scilit:
- Detection and interpretation of redox potential optima in the catalytic activity of enzymesBiochimica et Biophysica Acta (BBA) - Bioenergetics, 2002
- Roles of NapF, NapG and NapH, subunits of the Escherichia coli periplasmic nitrate reductase, in ubiquinol oxidationMolecular Microbiology, 2002
- Behaviour of topological marker proteins targeted to the Tat protein transport pathwayMolecular Microbiology, 2002
- Nitrate reduction in the periplasm of gram-negative bacteriaPublished by Elsevier ,2001
- Control of periplasmic nitrate reductase gene expression (napEDABC) from Paracoccus pantotrophus in response to oxygen and carbon substratesMicrobiology, 2000
- The Twin Arginine Consensus Motif of Tat Signal Peptides Is Involved in Sec-independent Protein Targeting in Escherichia coliJournal of Biological Chemistry, 2000
- The Tat protein export pathwayMolecular Microbiology, 2000
- [5] A bacterial two-hybrid system that exploits a cAMP signaling cascade in Escherichia coliMethods in Enzymology, 2000
- Essential roles for the products of the napABCD genes, but not napFGH, in periplasmic nitrate reduction by Escherichia coli K-12Biochemical Journal, 1999
- Microbial ubiquinones: multiple roles in respiration, gene regulation and oxidative stress managementMicrobiology, 1999