Literature DB >> 22039967

Resolving the contributions of the membrane-bound and periplasmic nitrate reductase systems to nitric oxide and nitrous oxide production in Salmonella enterica serovar Typhimurium.

Gary Rowley1, Daniela Hensen, Heather Felgate, Anke Arkenberg, Corinne Appia-Ayme, Karen Prior, Carl Harrington, Sarah J Field, Julea N Butt, Elizabeth Baggs, David J Richardson.   

Abstract

The production of cytotoxic nitric oxide (NO) and conversion into the neuropharmacological agent and potent greenhouse gas nitrous oxide (N₂O) is linked with anoxic nitrate catabolism by Salmonella enterica serovar Typhimurium. Salmonella can synthesize two types of nitrate reductase: a membrane-bound form (Nar) and a periplasmic form (Nap). Nitrate catabolism was studied under nitrate-rich and nitrate-limited conditions in chemostat cultures following transition from oxic to anoxic conditions. Intracellular NO production was reported qualitatively by assessing transcription of the NO-regulated genes encoding flavohaemoglobin (Hmp), flavorubredoxin (NorV) and hybrid cluster protein (Hcp). A more quantitative analysis of the extent of NO formation was gained by measuring production of N₂O, the end-product of anoxic NO-detoxification. Under nitrate-rich conditions, the nar, nap, hmp, norV and hcp genes were all induced following transition from the oxic to anoxic state, and 20% of nitrate consumed in steady-state was released as N₂O when nitrite had accumulated to millimolar levels. The kinetics of nitrate consumption, nitrite accumulation and N₂O production were similar to those of wild-type in nitrate-sufficient cultures of a nap mutant. In contrast, in a narG mutant, the steady-state rate of N₂O production was ~30-fold lower than that of the wild-type. Under nitrate-limited conditions, nap, but not nar, was up-regulated following transition from oxic to anoxic metabolism and very little N₂O production was observed. Thus a combination of nitrate-sufficiency, nitrite accumulation and an active Nar-type nitrate reductase leads to NO and thence N₂O production, and this can account for up to 20% of the nitrate catabolized.

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Year:  2012        PMID: 22039967     DOI: 10.1042/BJ20110971

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


  16 in total

Review 1.  Nitrite reduction by molybdoenzymes: a new class of nitric oxide-forming nitrite reductases.

Authors:  Luisa B Maia; José J G Moura
Journal:  J Biol Inorg Chem       Date:  2015-01-15       Impact factor: 3.358

2.  The Di-Iron Protein YtfE Is a Nitric Oxide-Generating Nitrite Reductase Involved in the Management of Nitrosative Stress.

Authors:  Jason C Crack; Basema K Balasiny; Sophie P Bennett; Matthew D Rolfe; Afonso Froes; Fraser MacMillan; Jeffrey Green; Jeffrey A Cole; Nick E Le Brun
Journal:  J Am Chem Soc       Date:  2022-04-13       Impact factor: 16.383

Review 3.  Salmonella-how a metabolic generalist adopts an intracellular lifestyle during infection.

Authors:  Thomas Dandekar; Astrid Fieselmann; Eva Fischer; Jasmin Popp; Michael Hensel; Janina Noster
Journal:  Front Cell Infect Microbiol       Date:  2015-01-29       Impact factor: 5.293

4.  Nitrous oxide emission by the non-denitrifying, nitrate ammonifier Bacillus licheniformis.

Authors:  Yihua Sun; Paul De Vos; Kim Heylen
Journal:  BMC Genomics       Date:  2016-01-19       Impact factor: 3.969

5.  Beyond Antimicrobial Resistance: Evidence for a Distinct Role of the AcrD Efflux Pump in Salmonella Biology.

Authors:  Michelle M C Buckner; Jessica M A Blair; Roberto M La Ragione; Jane Newcombe; Daniel J Dwyer; Alasdair Ivens; Laura J V Piddock
Journal:  mBio       Date:  2016-11-22       Impact factor: 7.867

6.  Biosynthesis of selenate reductase in Salmonella enterica: critical roles for the signal peptide and DmsD.

Authors:  Katherine R S Connelly; Calum Stevenson; Holger Kneuper; Frank Sargent
Journal:  Microbiology (Reading)       Date:  2016-10-20       Impact factor: 2.777

7.  Complete Circular Genome Sequence and Temperature Independent Adaptation to Anaerobiosis of Listeria weihenstephanensis DSM 24698.

Authors:  Elena Ferrari; Mathias C Walter; Christopher Huptas; Siegfried Scherer; Stefanie Müller-Herbst
Journal:  Front Microbiol       Date:  2017-09-01       Impact factor: 5.640

8.  Mechanism of [4Fe-4S](Cys)4 cluster nitrosylation is conserved among NO-responsive regulators.

Authors:  Jason C Crack; Melanie R Stapleton; Jeffrey Green; Andrew J Thomson; Nick E Le Brun
Journal:  J Biol Chem       Date:  2013-03-07       Impact factor: 5.157

9.  The large universal Pantoea plasmid LPP-1 plays a major role in biological and ecological diversification.

Authors:  Pieter De Maayer; Wai-Yin Chan; Jochen Blom; Stephanus N Venter; Brion Duffy; Theo H M Smits; Teresa A Coutinho
Journal:  BMC Genomics       Date:  2012-11-15       Impact factor: 3.969

10.  An integrated biochemical system for nitrate assimilation and nitric oxide detoxification in Bradyrhizobium japonicum.

Authors:  Juan J Cabrera; Ana Salas; María J Torres; Eulogio J Bedmar; David J Richardson; Andrew J Gates; María J Delgado
Journal:  Biochem J       Date:  2015-11-12       Impact factor: 3.857

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