Literature DB >> 35938858

The Metabolic Adaptation in Response to Nitrate Is Critical for Actinobacillus pleuropneumoniae Growth and Pathogenicity under the Regulation of NarQ/P.

Qiuhong Zhang1,2, Hao Tang1,2, Chaoyue Yan1,2, Weiyao Han1,2, Lu Peng1,2, Jiajia Xu1,2, Xiabing Chen3, Paul R Langford4, Weicheng Bei1,2, Qi Huang1,2,5, Rui Zhou1,2,5, Lu Li1,2,5.   

Abstract

Nitrate metabolism is an adaptation mechanism used by many bacteria for survival in anaerobic environments. As a by-product of inflammation, nitrate is used by the intestinal bacterial pathogens to enable gut infection. However, the responses of bacterial respiratory pathogens to nitrate are less well understood. Actinobacillus pleuropneumoniae is an important bacterial respiratory pathogen of swine. Previous studies have suggested that adaptation of A. pleuropneumoniae to anaerobiosis is important for infection. In this work, A. pleuropneumoniae growth and pathogenesis in response to the nitrate were investigated. Nitrate significantly promoted A. pleuropneumoniae growth under anaerobic conditions in vitro and lethality in mice. By using narQ and narP deletion mutants and single-residue-mutated complementary strains of ΔnarQ, the two-component system NarQ/P was confirmed to be critical for nitrate-induced growth, with Arg50 in NarQ as an essential functional residue. Transcriptome analysis showed that nitrate upregulated multiple energy-generating pathways, including nitrate metabolism, mannose and pentose metabolism, and glycerolipid metabolism via the regulation of NarQ/P. Furthermore, narQ, narP, and its target gene encoding the nitrate reductase Nap contributed to the pathogenicity of A. pleuropneumoniae. The Nap inhibitor tungstate significantly reduced the survival of A. pleuropneumoniae in vivo, suggesting that Nap is a potential drug target. These results give new insights into how the respiratory pathogen A. pleuropneumoniae utilizes the alternative electron acceptor nitrate to overcome the hypoxia microenvironment, which can occur in the inflammatory or necrotic infected tissues.

Entities:  

Keywords:  Actinobacillus pleuropneumoniae; NarP; NarQ; growth; nitrate; pathogenicity; regulation

Mesh:

Substances:

Year:  2022        PMID: 35938858      PMCID: PMC9476948          DOI: 10.1128/iai.00239-22

Source DB:  PubMed          Journal:  Infect Immun        ISSN: 0019-9567            Impact factor:   3.609


  72 in total

Review 1.  Update on Actinobacillus pleuropneumoniae-knowledge, gaps and challenges.

Authors:  E L Sassu; J T Bossé; T J Tobias; M Gottschalk; P R Langford; I Hennig-Pauka
Journal:  Transbound Emerg Dis       Date:  2017-10-30       Impact factor: 5.005

Review 2.  The biosynthesis of the molybdenum cofactors in Escherichia coli.

Authors:  Silke Leimkühler
Journal:  Environ Microbiol       Date:  2020-04-06       Impact factor: 5.491

3.  Link between Heterotrophic Carbon Fixation and Virulence in the Porcine Lung Pathogen Actinobacillus pleuropneumoniae.

Authors:  Sarah A Konze; Wolf-Rainer Abraham; Elke Goethe; Esther Surges; Marcel M M Kuypers; Doris Hoeltig; Jochen Meens; Charlotte Vogel; Meike Stiesch; Peter Valentin-Weigand; Gerald-F Gerlach; Falk F R Buettner
Journal:  Infect Immun       Date:  2019-08-21       Impact factor: 3.441

4.  The Periplasmic Nitrate Reductase NapABC Supports Luminal Growth of Salmonella enterica Serovar Typhimurium during Colitis.

Authors:  Christopher A Lopez; Fabian Rivera-Chávez; Mariana X Byndloss; Andreas J Bäumler
Journal:  Infect Immun       Date:  2015-06-22       Impact factor: 3.441

5.  Actinobacillus pleuropneumoniae infections in closed swine herds: infection patterns and serological profiles.

Authors:  Koen Chiers; Eef Donné; Ingrid Van Overbeke; Richard Ducatelle; Freddy Haesebrouck
Journal:  Vet Microbiol       Date:  2002-04-02       Impact factor: 3.293

6.  A single-step transconjugation system for the introduction of unmarked deletions into Actinobacillus pleuropneumoniae serotype 7 using a sucrose sensitivity marker.

Authors:  W Oswald; W Tonpitak; G Ohrt; G Gerlach
Journal:  FEMS Microbiol Lett       Date:  1999-10-01       Impact factor: 2.742

Review 7.  Peroxynitrite: biochemistry, pathophysiology and development of therapeutics.

Authors:  Csaba Szabó; Harry Ischiropoulos; Rafael Radi
Journal:  Nat Rev Drug Discov       Date:  2007-08       Impact factor: 84.694

Review 8.  The respiratory tract microbiome and lung inflammation: a two-way street.

Authors:  G B Huffnagle; R P Dickson; N W Lukacs
Journal:  Mucosal Immunol       Date:  2016-12-14       Impact factor: 7.313

9.  Host-derived nitrate boosts growth of E. coli in the inflamed gut.

Authors:  Sebastian E Winter; Maria G Winter; Mariana N Xavier; Parameth Thiennimitr; Victor Poon; A Marijke Keestra; Richard C Laughlin; Gabriel Gomez; Jing Wu; Sara D Lawhon; Ina E Popova; Sanjai J Parikh; L Garry Adams; Renée M Tsolis; Valley J Stewart; Andreas J Bäumler
Journal:  Science       Date:  2013-02-08       Impact factor: 47.728

Review 10.  Nitrate- and Nitrite-Sensing Histidine Kinases: Function, Structure, and Natural Diversity.

Authors:  Ivan Gushchin; Vladimir A Aleksenko; Philipp Orekhov; Ivan M Goncharov; Vera V Nazarenko; Oleg Semenov; Alina Remeeva; Valentin Gordeliy
Journal:  Int J Mol Sci       Date:  2021-05-31       Impact factor: 5.923

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