Literature DB >> 19919540

Reduction of fumarate, mesaconate and crotonate by Mfr, a novel oxygen-regulated periplasmic reductase in Campylobacter jejuni.

Edward Guccione1, Andrew Hitchcock, Stephen J Hall, Francis Mulholland, Neil Shearer, Arnoud H M van Vliet, David J Kelly.   

Abstract

Methylmenaquinol : fumarate reductase (Mfr) is a newly recognized type of fumarate reductase present in some epsilon-proteobacteria, where the active site subunit (MfrA) is localized in the periplasm, but for which a physiological role has not been identified. We show that the Campylobacter jejuni mfrABE operon is transcribed from a single promoter, with the mfrA gene preceded by a small open reading-frame (mfrX) encoding a C. jejuni-specific polypeptide of unknown function. The growth characteristics and enzyme activities of mutants in the mfrA and menaquinol : fumarate reductase A (frdA) genes show that the cytoplasmic facing Frd enzyme is the major fumarate reductase under oxygen limitation. The Mfr enzyme is shown to be necessary for maximal rates of growth by fumarate respiration and rates of fumarate reduction in intact cells measured by both viologen assays and 1H-NMR were slower in an mfrA mutant. As periplasmic fumarate reduction does not require fumarate/succinate antiport, Mfr may allow more efficient adaptation to fumarate-dependent growth. However, a further rationale for the periplasmic location of Mfr is suggested by the observation that the enzyme also reduces the fumarate analogues mesaconate and crotonate; fermentation products of anaerobes with which C. jejuni shares its gut environment, that are unable to be transported into the cell. Both MfrA and MfrB subunits were localized in the periplasm by immunoblotting and 2D-gel electrophoresis, but an mfrE mutant accumulated unprocessed MfrA in the cytoplasm, suggesting a preassembled MfrABE holoenzyme has to be recognized by the TAT system for translocation to occur. Gene expression studies in chemostat cultures following an aerobic-anaerobic shift showed that mfrA is highly upregulated by oxygen limitation, as would be experienced in vivo. Our results indicate that in addition to a role in fumarate respiration, Mfr allows C. jejuni to reduce analogous substrates specifically present in the host gut environment.

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Year:  2009        PMID: 19919540     DOI: 10.1111/j.1462-2920.2009.02096.x

Source DB:  PubMed          Journal:  Environ Microbiol        ISSN: 1462-2912            Impact factor:   5.491


  29 in total

1.  Different contributions of HtrA protease and chaperone activities to Campylobacter jejuni stress tolerance and physiology.

Authors:  Kristoffer T Baek; Christina S Vegge; Joanna Skórko-Glonek; Lone Brøndsted
Journal:  Appl Environ Microbiol       Date:  2010-11-12       Impact factor: 4.792

Review 2.  Campylobacter jejuni transducer like proteins: Chemotaxis and beyond.

Authors:  Kshipra Chandrashekhar; Issmat I Kassem; Gireesh Rajashekara
Journal:  Gut Microbes       Date:  2017-01-12

3.  Selenium-dependent biogenesis of formate dehydrogenase in Campylobacter jejuni is controlled by the fdhTU accessory genes.

Authors:  Frances L Shaw; Francis Mulholland; Gwénaëlle Le Gall; Ida Porcelli; Dave J Hart; Bruce M Pearson; Arnoud H M van Vliet
Journal:  J Bacteriol       Date:  2012-05-18       Impact factor: 3.490

Review 4.  How a sugary bug gets through the day: recent developments in understanding fundamental processes impacting Campylobacter jejuni pathogenesis.

Authors:  Christine M Szymanski; Erin C Gaynor
Journal:  Gut Microbes       Date:  2012-03-01

5.  Proteomics Reveals Multiple Phenotypes Associated with N-linked Glycosylation in Campylobacter jejuni.

Authors:  Joel A Cain; Ashleigh L Dale; Paula Niewold; William P Klare; Lok Man; Melanie Y White; Nichollas E Scott; Stuart J Cordwell
Journal:  Mol Cell Proteomics       Date:  2019-01-07       Impact factor: 5.911

6.  FdhTU-modulated formate dehydrogenase expression and electron donor availability enhance recovery of Campylobacter jejuni following host cell infection.

Authors:  Mark Pryjma; Dmitry Apel; Steven Huynh; Craig T Parker; Erin C Gaynor
Journal:  J Bacteriol       Date:  2012-05-25       Impact factor: 3.490

7.  Genomic adaptations of Campylobacter jejuni to long-term human colonization.

Authors:  Samuel J Bloomfield; Anne C Midwinter; Patrick J Biggs; Nigel P French; Jonathan C Marshall; David T S Hayman; Philip E Carter; Alison E Mather; Ahmed Fayaz; Craig Thornley; David J Kelly; Jackie Benschop
Journal:  Gut Pathog       Date:  2021-12-10       Impact factor: 4.181

8.  Respiratory proteins contribute differentially to Campylobacter jejuni's survival and in vitro interaction with hosts' intestinal cells.

Authors:  Issmat I Kassem; Mahesh Khatri; Malak A Esseili; Yasser M Sanad; Yehia M Saif; Jonathan W Olson; Gireesh Rajashekara
Journal:  BMC Microbiol       Date:  2012-11-13       Impact factor: 3.605

9.  Genes Linking Copper Trafficking and Homeostasis to the Biogenesis and Activity of the cbb 3-Type Cytochrome c Oxidase in the Enteric Pathogen Campylobacter jejuni.

Authors:  Nitanshu Garg; Aidan J Taylor; Federica Pastorelli; Sarah E Flannery; Phillip J Jackson; Matthew P Johnson; David J Kelly
Journal:  Front Microbiol       Date:  2021-06-25       Impact factor: 5.640

Review 10.  Nutrient acquisition and metabolism by Campylobacter jejuni.

Authors:  Martin Stahl; James Butcher; Alain Stintzi
Journal:  Front Cell Infect Microbiol       Date:  2012-02-07       Impact factor: 5.293

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