Literature DB >> 21348864

A composite biochemical system for bacterial nitrate and nitrite assimilation as exemplified by Paracoccus denitrificans.

Andrew J Gates1, Victor M Luque-Almagro, Alan D Goddard, Stuart J Ferguson, M Dolores Roldán, David J Richardson.   

Abstract

The denitrifying bacterium Paracoccus denitrificans can grow aerobically or anaerobically using nitrate or nitrite as the sole nitrogen source. The biochemical pathway responsible is expressed from a gene cluster comprising a nitrate/nitrite transporter (NasA), nitrite transporter (NasH), nitrite reductase (NasB), ferredoxin (NasG) and nitrate reductase (NasC). NasB and NasG are essential for growth with nitrate or nitrite as the nitrogen source. NADH serves as the electron donor for nitrate and nitrite reduction, but only NasB has a NADH-oxidizing domain. Nitrate and nitrite reductase activities show the same Km for NADH and can be separated by anion-exchange chromatography, but only fractions containing NasB retain the ability to oxidize NADH. This implies that NasG mediates electron flux from the NADH-oxidizing site in NasB to the sites of nitrate and nitrite reduction in NasC and NasB respectively. Delivery of extracellular nitrate to NasBGC is mediated by NasA, but both NasA and NasH contribute to nitrite uptake. The roles of NasA and NasC can be substituted during anaerobic growth by the biochemically distinct membrane-bound respiratory nitrate reductase (Nar), demonstrating functional overlap. nasG is highly conserved in nitrate/nitrite assimilation gene clusters, which is consistent with a key role for the NasG ferredoxin, as part of a phylogenetically widespread composite nitrate and nitrite reductase system.

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Year:  2011        PMID: 21348864     DOI: 10.1042/BJ20101920

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  16 in total

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4.  Nitrogen oxyanion-dependent dissociation of a two-component complex that regulates bacterial nitrate assimilation.

Authors:  Victor M Luque-Almagro; Verity J Lyall; Stuart J Ferguson; M Dolores Roldán; David J Richardson; Andrew J Gates
Journal:  J Biol Chem       Date:  2013-09-04       Impact factor: 5.157

5.  Low probability of initiating nirS transcription explains observed gas kinetics and growth of bacteria switching from aerobic respiration to denitrification.

Authors:  Junaid Hassan; Linda L Bergaust; I David Wheat; Lars R Bakken
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6.  Control of bacterial nitrate assimilation by stabilization of G-quadruplex DNA.

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7.  Redundancy and modularity in membrane-associated dissimilatory nitrate reduction in Bacillus.

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9.  Transient Accumulation of NO2- and N2O during Denitrification Explained by Assuming Cell Diversification by Stochastic Transcription of Denitrification Genes.

Authors:  Junaid Hassan; Zhi Qu; Linda L Bergaust; Lars R Bakken
Journal:  PLoS Comput Biol       Date:  2016-01-05       Impact factor: 4.475

10.  The Paracoccus denitrificans NarK-like nitrate and nitrite transporters-probing nitrate uptake and nitrate/nitrite exchange mechanisms.

Authors:  Alan D Goddard; Shilpa Bali; Despoina A I Mavridou; Victor M Luque-Almagro; Andrew J Gates; M Dolores Roldán; Simon Newstead; David J Richardson; Stuart J Ferguson
Journal:  Mol Microbiol       Date:  2016-10-27       Impact factor: 3.501

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