Ferric Uptake Regulator Fur Control of Putative Iron Acquisition Systems in Clostridium difficile

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Ferric Uptake Regulator Fur Control of Putative Iron Acquisition Systems in Clostridium difficile is …
instance of (P31):
scholarly articleQ13442814

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P356DOI10.1128/JB.00098-15
P932PMC publication ID4542176
P698PubMed publication ID26148711
P5875ResearchGate publication ID279967984

P50authorCraig D EllermeierQ59554814
P2093author name stringTheresa D Ho
P2860cites workThe zntA gene of Escherichia coli encodes a Zn(II)-translocating P-type ATPaseQ24648949
Siderophore-based iron acquisition and pathogen controlQ24681774
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Structural organization, ion transport, and energy transduction of P-type ATPasesQ28279229
Global analysis of the Bacillus subtilis Fur regulon and the iron starvation stimulonQ29346686
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Recognition of DNA by three ferric uptake regulator (Fur) homologs in Bacillus subtilis.Q29346705
MEME SUITE: tools for motif discovery and searchingQ29547204
Pathways of Oxidative DamageQ29615094
Bacterial iron homeostasisQ29615095
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Clostridium difficile extracytoplasmic function σ factor σV regulates lysozyme resistance and is necessary for pathogenesis in the hamster model of infectionQ33603104
The battle for iron between bacterial pathogens and their vertebrate hostsQ33658687
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Analysis of the aerobactin and ferric hydroxamate uptake systems of Yersinia pestisQ34004867
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Ultraviolet mutagenesis and inducible DNA repair in Escherichia coliQ34072546
DNA damage and oxygen radical toxicityQ34172435
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ABC transporter-mediated uptake of iron, siderophores, heme and vitamin B12.Q34290799
Transcriptional regulation by Ferric Uptake Regulator (Fur) in pathogenic bacteriaQ34376306
Role of Porphyromonas gingivalis FeoB2 in metal uptake and oxidative stress protectionQ34721202
Siderophores of Marinobacter aquaeolei: petrobactin and its sulfonated derivativesQ34731810
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PrsW is required for colonization, resistance to antimicrobial peptides, and expression of extracytoplasmic function σ factors in Clostridium difficile.Q35139342
Identification of iron-activated and -repressed Fur-dependent genes by transcriptome analysis of Neisseria meningitidis group B.Q35234880
Mammalian zinc transportersQ35799862
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FeoA and FeoC are essential components of the Vibrio cholerae ferrous iron uptake system, and FeoC interacts with FeoB.Q37253121
Adaptive strategies and pathogenesis of Clostridium difficile from in vivo transcriptomicsQ37264629
Iron, copper, zinc, and manganese transport and regulation in pathogenic Enterobacteria: correlations between strains, site of infection and the relative importance of the different metal transport systems for virulenceQ37365880
Manganese import is a key element of the OxyR response to hydrogen peroxide in Escherichia coliQ37418527
Distinctive profiles of infection and pathology in hamsters infected with Clostridium difficile strains 630 and B1.Q37451064
Construction and analysis of chromosomal Clostridium difficile mutantsQ38310436
Ferredoxins and flavodoxins of bacteriaQ39919097
Cloning and expression of the fhu genes involved in iron(III)-hydroxamate uptake by Escherichia coliQ39977353
Fur activates expression of the 2-oxoglutarate oxidoreductase genes (oorDABC) in Helicobacter pyloriQ41173367
The Yfe and Feo transporters are involved in microaerobic growth and virulence of Yersinia pestis in bubonic plagueQ41409444
Shuttle vectors containing a multiple cloning site and a lacZα gene for conjugal transfer of DNA from Escherichia coli to Gram-positive bacteriaQ41869056
Clostridium difficile has two parallel and essential Sec secretion systemsQ41914077
The metal permease ZupT from Escherichia coli is a transporter with a broad substrate spectrumQ42149961
Infection of hamsters with epidemiologically important strains of Clostridium difficileQ43616727
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Petrobactin sulfonate, a new siderophore produced by the marine bacterium Marinobacter hydrocarbonoclasticusQ44185700
Differential regulation of amidase- and formamidase-mediated ammonia production by the Helicobacter pylori fur repressorQ44260464
Iron acquisition systems for ferric hydroxamates, haemin and haemoglobin in Listeria monocytogenesQ46906964
The ClosTron: Mutagenesis in Clostridium refined and streamlined.Q50449586
Functional domains of the Escherichia coli ferric uptake regulator protein (Fur)Q72243628
The ClosTron: a universal gene knock-out system for the genus ClostridiumQ80687956
P433issue18
P407language of work or nameEnglishQ1860
P921main subjectClostridium difficileQ310543
P304page(s)2930-2940
P577publication date2015-07-06
P1433published inJournal of BacteriologyQ478419
P1476titleFerric Uptake Regulator Fur Control of Putative Iron Acquisition Systems in Clostridium difficile
P478volume197

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cites work (P2860)
Q40090808Analysis of proteomes released from in vitro cultured eight Clostridium difficile PCR ribotypes revealed specific expression in PCR ribotypes 027 and 176 confirming their genetic relatedness and clinical importance at the proteomic level.
Q38764711Control of Clostridium difficile Physiopathology in Response to Cysteine Availability
Q60934809Iron Regulation in
Q64266652Metabolism the Difficile Way: The Key to the Success of the Pathogen
Q90081613New evolving strategies revealed by transcriptomic analysis of a fur- mutant of the cyanotrophic bacterium Pseudomonas pseudoalcaligenes CECT 5344
Q89636948Nicotianamine-chelated iron positively affects iron status, intestinal morphology and microbial populations in vivo (Gallus gallus)
Q52620121Shifts in the Gut Metabolome and Clostridium difficile Transcriptome throughout Colonization and Infection in a Mouse Model.
Q47699254Transcriptional response of Clostridium difficile to low iron conditions.
Q90244686ZupT Facilitates Clostridioides difficile Resistance to Host-Mediated Nutritional Immunity

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