KefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.

Escherichia coli and many other Gram-negative pathogenic bacteria protect themselves from the toxic effects of electrophilic compounds by using a potassium efflux system (Kef). Potassium efflux is coupled to the influx of protons, which lowers the internal pH and results in immediate protection. The...

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Main Authors: Lyngberg, L, Healy, J, Bartlett, W, Miller, S, Conway, S, Booth, I, Rasmussen, T
Format: Journal article
Language:English
Published: 2011
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author Lyngberg, L
Healy, J
Bartlett, W
Miller, S
Conway, S
Booth, I
Rasmussen, T
author_facet Lyngberg, L
Healy, J
Bartlett, W
Miller, S
Conway, S
Booth, I
Rasmussen, T
author_sort Lyngberg, L
collection OXFORD
description Escherichia coli and many other Gram-negative pathogenic bacteria protect themselves from the toxic effects of electrophilic compounds by using a potassium efflux system (Kef). Potassium efflux is coupled to the influx of protons, which lowers the internal pH and results in immediate protection. The activity of the Kef system is subject to complex regulation by glutathione and its S conjugates. Full activation of KefC requires a soluble ancillary protein, KefF. This protein has structural similarities to oxidoreductases, including human quinone reductases 1 and 2. Here, we show that KefF has enzymatic activity as an oxidoreductase, in addition to its role as the KefC activator. It accepts NADH and NADPH as electron donors and quinones and ferricyanide (in addition to other compounds) as acceptors. However, typical electrophilic activators of the Kef system, e.g., N-ethyl maleimide, are not substrates. If the enzymatic activity is disrupted by site-directed mutagenesis while retaining structural integrity, KefF is still able to activate the Kef system, showing that the role as an activator is independent of the enzyme activity. Potassium efflux assays show that electrophilic quinones are able to activate the Kef system by forming S conjugates with glutathione. Therefore, it appears that the enzymatic activity of KefF diminishes the redox toxicity of quinones, in parallel with the protection afforded by activation of the Kef system.
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spelling oxford-uuid:4a555db8-987d-4fcf-9364-88b54620fcad2022-03-26T15:36:49ZKefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:4a555db8-987d-4fcf-9364-88b54620fcadEnglishSymplectic Elements at Oxford2011Lyngberg, LHealy, JBartlett, WMiller, SConway, SBooth, IRasmussen, TEscherichia coli and many other Gram-negative pathogenic bacteria protect themselves from the toxic effects of electrophilic compounds by using a potassium efflux system (Kef). Potassium efflux is coupled to the influx of protons, which lowers the internal pH and results in immediate protection. The activity of the Kef system is subject to complex regulation by glutathione and its S conjugates. Full activation of KefC requires a soluble ancillary protein, KefF. This protein has structural similarities to oxidoreductases, including human quinone reductases 1 and 2. Here, we show that KefF has enzymatic activity as an oxidoreductase, in addition to its role as the KefC activator. It accepts NADH and NADPH as electron donors and quinones and ferricyanide (in addition to other compounds) as acceptors. However, typical electrophilic activators of the Kef system, e.g., N-ethyl maleimide, are not substrates. If the enzymatic activity is disrupted by site-directed mutagenesis while retaining structural integrity, KefF is still able to activate the Kef system, showing that the role as an activator is independent of the enzyme activity. Potassium efflux assays show that electrophilic quinones are able to activate the Kef system by forming S conjugates with glutathione. Therefore, it appears that the enzymatic activity of KefF diminishes the redox toxicity of quinones, in parallel with the protection afforded by activation of the Kef system.
spellingShingle Lyngberg, L
Healy, J
Bartlett, W
Miller, S
Conway, S
Booth, I
Rasmussen, T
KefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.
title KefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.
title_full KefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.
title_fullStr KefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.
title_full_unstemmed KefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.
title_short KefF, the regulatory subunit of the potassium efflux system KefC, shows quinone oxidoreductase activity.
title_sort keff the regulatory subunit of the potassium efflux system kefc shows quinone oxidoreductase activity
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