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Results: 1 to 20 of 101

1.

It takes two to tango: Two TatA paralogues and two redox enzyme specific chaperones are involved in the localisation of twin-arginine translocase substrates in Campylobacter jejuni.

Liu YW, Hitchcock A, Salmon RC, Kelly DJ.

Microbiology. 2014 Jun 24. pii: mic.0.080713-0. doi: 10.1099/mic.0.080713-0. [Epub ahead of print]

PMID:
24961951
[PubMed - as supplied by publisher]
2.

Roles of the twin-arginine translocase and associated chaperones in the biogenesis of the electron transport chains of the human pathogen Campylobacter jejuni.

Hitchcock A, Hall SJ, Myers JD, Mulholland F, Jones MA, Kelly DJ.

Microbiology. 2010 Oct;156(Pt 10):2994-3010. doi: 10.1099/mic.0.042788-0. Epub 2010 Aug 5.

PMID:
20688826
[PubMed - indexed for MEDLINE]
Free Article
3.

The Bdellovibrio bacteriovorus twin-arginine transport system has roles in predatory and prey-independent growth.

Chang CY, Hobley L, Till R, Capeness M, Kanna M, Burtt W, Jagtap P, Aizawa S, Sockett RE.

Microbiology. 2011 Nov;157(Pt 11):3079-93. doi: 10.1099/mic.0.052449-0. Epub 2011 Sep 8.

PMID:
21903758
[PubMed - indexed for MEDLINE]
Free Article
4.

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

Guccione E, Hitchcock A, Hall SJ, Mulholland F, Shearer N, van Vliet AH, Kelly DJ.

Environ Microbiol. 2010 Mar;12(3):576-91. doi: 10.1111/j.1462-2920.2009.02096.x. Epub 2009 Nov 17.

PMID:
19919540
[PubMed - indexed for MEDLINE]
5.

Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone.

Dow JM, Grahl S, Ward R, Evans R, Byron O, Norman DG, Palmer T, Sargent F.

FEBS J. 2014 Jan;281(1):246-60. doi: 10.1111/febs.12592. Epub 2013 Dec 9.

PMID:
24314029
[PubMed - indexed for MEDLINE]
6.

Electron transport to periplasmic nitrate reductase (NapA) of Wolinella succinogenes is independent of a NapC protein.

Simon J, Sänger M, Schuster SC, Gross R.

Mol Microbiol. 2003 Jul;49(1):69-79.

PMID:
12823811
[PubMed - indexed for MEDLINE]
7.

NapGH components of the periplasmic nitrate reductase of Escherichia coli K-12: location, topology and physiological roles in quinol oxidation and redox balancing.

Brondijk TH, Nilavongse A, Filenko N, Richardson DJ, Cole JA.

Biochem J. 2004 Apr 1;379(Pt 1):47-55.

PMID:
14674886
[PubMed - indexed for MEDLINE]
Free PMC Article
8.

Functional analysis of a Campylobacter jejuni alkaline phosphatase secreted via the Tat export machinery.

van Mourik A, Bleumink-Pluym NM, van Dijk L, van Putten JP, Wösten MM.

Microbiology. 2008 Feb;154(Pt 2):584-92. doi: 10.1099/mic.0.2007/012120-0.

PMID:
18227262
[PubMed - indexed for MEDLINE]
Free Article
9.

Structural diversity in twin-arginine signal peptide-binding proteins.

Maillard J, Spronk CA, Buchanan G, Lyall V, Richardson DJ, Palmer T, Vuister GW, Sargent F.

Proc Natl Acad Sci U S A. 2007 Oct 2;104(40):15641-6. Epub 2007 Sep 27.

PMID:
17901208
[PubMed - indexed for MEDLINE]
Free PMC Article
10.

Role of individual nap gene cluster products in NapC-independent nitrate respiration of Wolinella succinogenes.

Kern M, Mager AM, Simon J.

Microbiology. 2007 Nov;153(Pt 11):3739-47.

PMID:
17975082
[PubMed - indexed for MEDLINE]
Free Article
11.

Overlapping transport and chaperone-binding functions within a bacterial twin-arginine signal peptide.

Grahl S, Maillard J, Spronk CA, Vuister GW, Sargent F.

Mol Microbiol. 2012 Mar;83(6):1254-67. doi: 10.1111/j.1365-2958.2012.08005.x. Epub 2012 Feb 27.

PMID:
22329966
[PubMed - indexed for MEDLINE]
Free PMC Article
12.

Export of active green fluorescent protein to the periplasm by the twin-arginine translocase (Tat) pathway in Escherichia coli.

Thomas JD, Daniel RA, Errington J, Robinson C.

Mol Microbiol. 2001 Jan;39(1):47-53.

PMID:
11123687
[PubMed - indexed for MEDLINE]
13.

The impairment of methylmenaquinol:fumarate reductase affects hydrogen peroxide susceptibility and accumulation in Campylobacter jejuni.

Kassem II, Khatri M, Sanad YM, Wolboldt M, Saif YM, Olson JW, Rajashekara G.

Microbiologyopen. 2014 Apr;3(2):168-81. doi: 10.1002/mbo3.158. Epub 2014 Feb 7.

PMID:
24515965
[PubMed - in process]
Free PMC Article
14.

A Multicopper oxidase (Cj1516) and a CopA homologue (Cj1161) are major components of the copper homeostasis system of Campylobacter jejuni.

Hall SJ, Hitchcock A, Butler CS, Kelly DJ.

J Bacteriol. 2008 Dec;190(24):8075-85. doi: 10.1128/JB.00821-08. Epub 2008 Oct 17. Erratum in: J Bacteriol. 2009 Feb;191(3):1122.

PMID:
18931123
[PubMed - indexed for MEDLINE]
Free PMC Article
15.

Microbial dimethylsulfoxide and trimethylamine-N-oxide respiration.

McCrindle SL, Kappler U, McEwan AG.

Adv Microb Physiol. 2005;50:147-98.

PMID:
16221580
[PubMed - indexed for MEDLINE]
16.

Specific inhibition of the translocation of a subset of Escherichia coli TAT substrates by the TorA signal peptide.

Chanal A, Santini CL, Wu LF.

J Mol Biol. 2003 Mar 28;327(3):563-70.

PMID:
12634052
[PubMed - indexed for MEDLINE]
17.

Deletion and site-directed mutagenesis of the Wolinella succinogenes fumarate reductase operon.

Simon J, Gross R, Ringel M, Schmidt E, Kröger A.

Eur J Biochem. 1998 Jan 15;251(1-2):418-26.

PMID:
9492313
[PubMed - indexed for MEDLINE]
Free Article
18.

Isolation of periplasmic nitrate reductase genes from Rhodobacter sphaeroides DSM 158: structural and functional differences among prokaryotic nitrate reductases.

Reyes F, Roldán MD, Klipp W, Castillo F, Moreno-Vivián C.

Mol Microbiol. 1996 Mar;19(6):1307-18.

PMID:
8730872
[PubMed - indexed for MEDLINE]
19.

Specificity of signal peptide recognition in tat-dependent bacterial protein translocation.

Blaudeck N, Sprenger GA, Freudl R, Wiegert T.

J Bacteriol. 2001 Jan;183(2):604-10.

PMID:
11133954
[PubMed - indexed for MEDLINE]
Free PMC Article
20.

In vivo associations of Escherichia coli NarJ with a peptide of the first 50 residues of nitrate reductase catalytic subunit NarG.

Li H, Turner RJ.

Can J Microbiol. 2009 Feb;55(2):179-88. doi: 10.1139/w08-111.

PMID:
19295650
[PubMed - indexed for MEDLINE]

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