Utilization of host‐derived cysteine‐containing peptides overcomes the restricted sulphur metabolism of Campylobacter jejuni
暂无分享,去创建一个
D. Schomburg | W. Eisenreich | C. Josenhans | C. Huber | D. Hofreuter | Hanne Vorwerk | Juliane Mohr | Olga Wensel | Kerstin Schmidt-Hohagen | Eugenia Gripp
[1] Michael E. Taveirne,et al. Peptidoglycan ld-Carboxypeptidase Pgp2 Influences Campylobacter jejuni Helical Cell Shape and Pathogenic Properties and Provides the Substrate for the dl-Carboxypeptidase Pgp1* , 2014, The Journal of Biological Chemistry.
[2] D. Hendrixson,et al. Hemerythrins in the microaerophilic bacterium Campylobacter jejuni help protect key iron–sulphur cluster enzymes from oxidative damage , 2013, Environmental microbiology.
[3] M. Heimesaat,et al. Modification of Intestinal Microbiota and Its Consequences for Innate Immune Response in the Pathogenesis of Campylobacteriosis , 2013, Clinical & developmental immunology.
[4] S. Backert,et al. Molecular methods to investigate adhesion, transmigration, invasion and intracellular survival of the foodborne pathogen Campylobacter jejuni. , 2013, Journal of microbiological methods.
[5] H. Ingmer,et al. Campylobacter jejuni carbon starvation protein A (CstA) is involved in peptide utilization, motility and agglutination, and has a role in stimulation of dendritic cells. , 2013, Journal of medical microbiology.
[6] S. Savvides,et al. Molecular and structural basis of glutathione import in Gram‐positive bacteria via GshT and the cystine ABC importer TcyBC of Streptococcus mutans , 2013, Molecular microbiology.
[7] D. Bumann,et al. Microbial quest for food in vivo: ‘Nutritional virulence’ as an emerging paradigm , 2013, Cellular microbiology.
[8] C. Dahl,et al. Tetrathionate stimulated growth of Campylobacter jejuni identifies a new type of bi‐functional tetrathionate reductase (TsdA) that is widely distributed in bacteria , 2013, Molecular microbiology.
[9] Hesso Farhan,et al. Parallel Exploitation of Diverse Host Nutrients Enhances Salmonella Virulence , 2013, PLoS pathogens.
[10] D. Schomburg,et al. Contribution of Amino Acid Catabolism to the Tissue Specific Persistence of Campylobacter jejuni in a Murine Colonization Model , 2012, PloS one.
[11] A. Hitchcock,et al. Hydrogenase activity in the foodborne pathogen Campylobacter jejuni depends upon a novel ABC-type nickel transporter (NikZYXWV) and is SlyD-independent. , 2012, Microbiology.
[12] Michael Hensel,et al. Salmonella enterica: a surprisingly well-adapted intracellular lifestyle , 2012, Front. Microbio..
[13] S. Wessler,et al. Rapid paracellular transmigration of Campylobacter jejuni across polarized epithelial cells without affecting TER: role of proteolytic-active HtrA cleaving E-cadherin but not fibronectin , 2012, Gut Pathogens.
[14] Rui Wang. Physiological implications of hydrogen sulfide: a whiff exploration that blossomed. , 2012, Physiological reviews.
[15] S. Girardin,et al. Peptidoglycan-Modifying Enzyme Pgp1 Is Required for Helical Cell Shape and Pathogenicity Traits in Campylobacter jejuni , 2012, PLoS pathogens.
[16] C. Szymanski,et al. How a sugary bug gets through the day , 2012, Gut microbes.
[17] M. Stahl,et al. Nutrient Acquisition and Metabolism by Campylobacter jejuni , 2012, Front. Cell. Inf. Microbio..
[18] N. Bahador,et al. Chemotactic behavior of Campylobacter spp. in function of different temperatures (37 °C and 42 °C). , 2011, Anaerobe.
[19] D. Schomburg,et al. Closely related Campylobacter jejuni strains from different sources reveal a generalist rather than a specialist lifestyle , 2011, BMC Genomics.
[20] D. Hendrixson,et al. Analysis of the LIV System of Campylobacter jejuni Reveals Alternative Roles for LivJ and LivK in Commensalism beyond Branched-Chain Amino Acid Transport , 2011, Journal of Bacteriology.
[21] T. Aw,et al. Redox biology of the intestine , 2011, Free radical research.
[22] Xin Liu,et al. l-Fucose utilization provides Campylobacter jejuni with a competitive advantage , 2011, Proceedings of the National Academy of Sciences.
[23] William L. Cody,et al. Change Is Good: Variations in Common Biological Mechanisms in the Epsilonproteobacterial Genera Campylobacter and Helicobacter , 2011, Microbiology and Molecular Reviews.
[24] Milton H. Saier,et al. Evolution of the Oligopeptide Transporter Family , 2011, The Journal of Membrane Biology.
[25] B. Finlay,et al. Enteric pathogen exploitation of the microbiota-generated nutrient environment of the gut. , 2011, Current opinion in microbiology.
[26] G. Ermel,et al. MCLMAN, a new minimal medium for Campylobacter jejuni NCTC 11168. , 2011, Research in microbiology.
[27] Wolf-Dietrich Hardt,et al. Mechanisms controlling pathogen colonization of the gut. , 2011, Current opinion in microbiology.
[28] D. Tribble,et al. Update on human Campylobacter jejuni infections , 2011, Current opinion in gastroenterology.
[29] Qijing Zhang,et al. Phenotypic and Genotypic Evidence for l-Fucose Utilization by Campylobacter jejuni , 2010, Journal of bacteriology.
[30] J. Roth,et al. Gut inflammation provides a respiratory electron acceptor for Salmonella , 2010, Nature.
[31] S. Savvides,et al. Glutathione import in Haemophilus influenzae Rd is primed by the periplasmic heme-binding protein HbpA , 2010, Proceedings of the National Academy of Sciences.
[32] R. Benamouzig,et al. Luminal sulfide and large intestine mucosa: friend or foe? , 2010, Amino Acids.
[33] V. Novik,et al. Identification of Campylobacter jejuni Genes Involved in Its Interaction with Epithelial Cells , 2010, Infection and Immunity.
[34] H. Kadokura,et al. The l-Cysteine/l-Cystine Shuttle System Provides Reducing Equivalents to the Periplasm in Escherichia coli* , 2010, The Journal of Biological Chemistry.
[35] K. Winzer,et al. In Helicobacter pylori, LuxS Is a Key Enzyme in Cysteine Provision through a Reverse Transsulfuration Pathway , 2010, Journal of Bacteriology.
[36] D. Cvitkovitch,et al. Atypical Roles for Campylobacter jejuni Amino Acid ATP Binding Cassette Transporter Components PaqP and PaqQ in Bacterial Stress Tolerance and Pathogen-Host Cell Dynamics , 2009, Infection and Immunity.
[37] Carrie Goodson,et al. The role of respiratory donor enzymes in Campylobacter jejuni host colonization and physiology. , 2009, Microbial pathogenesis.
[38] H. Ingmer,et al. Energy Taxis Drives Campylobacter jejuni toward the Most Favorable Conditions for Growth , 2009, Applied and Environmental Microbiology.
[39] C. Junot,et al. Dug1p Is a Cys-Gly Peptidase of the γ-Glutamyl Cycle of Saccharomyces cerevisiae and Represents a Novel Family of Cys-Gly Peptidases , 2009, Journal of Biological Chemistry.
[40] A. Charbit,et al. Glutathione Provides a Source of Cysteine Essential for Intracellular Multiplication of Francisella tularensis , 2009, PLoS pathogens.
[41] B. Bochner. Global phenotypic characterization of bacteria , 2008, FEMS microbiology reviews.
[42] V. Novik,et al. Metabolic diversity in Campylobacter jejuni enhances specific tissue colonization. , 2008, Cell host & microbe.
[43] D. Kolodrubetz,et al. A 52-kDa Leucyl Aminopeptidase from Treponema denticola Is a Cysteinylglycinase That Mediates the Second Step of Glutathione Metabolism* , 2008, Journal of Biological Chemistry.
[44] B. Pearson,et al. Amino acid‐dependent growth of Campylobacter jejuni: key roles for aspartase (AspA) under microaerobic and oxygen‐limited conditions and identification of AspB (Cj0762), essential for growth on glutamate , 2008, Molecular microbiology.
[45] E. K. Jagusztyn-Krynicka,et al. The Campylobacter jejuni/coli cjaA (cj0982c) Gene Encodes an N-Glycosylated Lipoprotein Localized in the Inner Membrane , 2008, Current Microbiology.
[46] Paul S. Cohen,et al. Comparison of Carbon Nutrition for Pathogenic and Commensal Escherichia coli Strains in the Mouse Intestine , 2008, Infection and Immunity.
[47] Larry H. Stanker,et al. The Complete Genome Sequence and Analysis of the Epsilonproteobacterium Arcobacter butzleri , 2007, PloS one.
[48] M. Bagnall,et al. γ-Glutamyl transpeptidase has a role in the persistent colonization of the avian gut by Campylobacter jejuni , 2007 .
[49] H. Ingmer,et al. Contribution of Conserved ATP-Dependent Proteases of Campylobacter jejuni to Stress Tolerance and Virulence , 2007, Applied and Environmental Microbiology.
[50] L. Du,et al. Unique Features of a Highly Pathogenic Campylobacter jejuni Strain , 2007, Infection and Immunity.
[51] R. Poole,et al. Growth of Campylobacter jejuni on nitrate and nitrite: electron transport to NapA and NrfA via NrfH and distinct roles for NrfA and the globin Cgb in protection against nitrosative stress , 2007, Molecular microbiology.
[52] P. Karplus,et al. Identification and Characterization of Bacterial Cysteine Dioxygenases: a New Route of Cysteine Degradation for Eubacteria , 2006, Journal of bacteriology.
[53] G. Georgiou,et al. The many faces of glutathione in bacteria. , 2006, Antioxidants & redox signaling.
[54] M. Williamson,et al. The Campylobacter jejuni PEB1a adhesin is an aspartate/glutamate‐binding protein of an ABC transporter essential for microaerobic growth on dicarboxylic amino acids , 2006, Molecular microbiology.
[55] H. Daniel,et al. From bacteria to man: archaic proton-dependent peptide transporters at work. , 2006, Physiology.
[56] Hideyuki Suzuki,et al. The yliA, -B, -C, and -D Genes of Escherichia coli K-12 Encode a Novel Glutathione Importer with an ATP-Binding Cassette , 2005, Journal of bacteriology.
[57] B. Poolman,et al. Specificity and selectivity determinants of peptide transport in Lactococcus lactis and other microorganisms , 2005, Molecular microbiology.
[58] Richard S. P. Horler,et al. An ATP‐binding cassette‐type cysteine transporter in Campylobacter jejuni inferred from the structure of an extracytoplasmic solute receptor protein , 2005, Molecular microbiology.
[59] M. Parker,et al. The HtrA Protease of Campylobacter jejuni Is Required for Heat and Oxygen Tolerance and for Optimal Interaction with Human Epithelial Cells , 2005, Applied and Environmental Microbiology.
[60] P. Wheeler,et al. Functional Demonstration of Reverse Transsulfuration in the Mycobacterium tuberculosis Complex Reveals That Methionine Is the Preferred Sulfur Source for Pathogenic Mycobacteria* , 2005, Journal of Biological Chemistry.
[61] D. Rasko,et al. Major Structural Differences and Novel Potential Virulence Mechanisms from the Genomes of Multiple Campylobacter Species , 2005, PLoS biology.
[62] R. Miles,et al. The pattern and kinetics of substrate metabolism of Campylobacter jejuni and Campylobacter coli , 2004, Letters in applied microbiology.
[63] S. Delrot,et al. AtOPT6 Transports Glutathione Derivatives and Is Induced by Primisulfuron1 , 2004, Plant Physiology.
[64] Joe E Grissom,et al. Carbon nutrition of Escherichia coli in the mouse intestine. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[65] V. DiRita,et al. Identification of Campylobacter jejuni genes involved in commensal colonization of the chick gastrointestinal tract , 2004, Molecular microbiology.
[66] S. Foster,et al. Role of a Cysteine Synthase in Staphylococcus aureus , 2004, Journal of bacteriology.
[67] P. Barrow,et al. l-Serine Catabolism via an Oxygen-Labile l-Serine Dehydratase Is Essential for Colonization of the Avian Gut by Campylobacter jejuni , 2004, Infection and Immunity.
[68] Folker Meyer,et al. Complete genome sequence and analysis of Wolinella succinogenes , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[69] L. Klotz,et al. Identification of Cytosolic Leucyl Aminopeptidase (EC 3.4.11.1) as the Major Cysteinylglycine-Hydrolysing Activity in Rat Liver , 2003, Biological chemistry.
[70] D. Cochran,et al. Role of Glutathione Metabolism of Treponema denticola in Bacterial Growth and Virulence Expression , 2002, Infection and Immunity.
[71] J. Velayudhan,et al. Analysis of gluconeogenic and anaplerotic enzymes in Campylobacter jejuni: an essential role for phosphoenolpyruvate carboxykinase. , 2002, Microbiology.
[72] M. Kertesz. Bacterial transporters for sulfate and organosulfur compounds. , 2001, Research in microbiology.
[73] J. Ketley,et al. The iron-induced ferredoxin FdxA of Campylobacter jejuni is involved in aerotolerance. , 2001, FEMS microbiology letters.
[74] Hideyuki Suzuki,et al. Aminopeptidases A, B, and N and Dipeptidase D Are the Four Cysteinylglycinases of Escherichia coliK-12 , 2001, Journal of bacteriology.
[75] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[76] J. Lawrence,et al. Methionine-to-Cysteine Recycling inKlebsiella aerogenes , 2001, Journal of bacteriology.
[77] A Danchin,et al. Sulfur metabolism in Escherichia coli and related bacteria: facts and fiction. , 2000, Journal of molecular microbiology and biotechnology.
[78] B. Barrell,et al. The genome sequence of the food-borne pathogen Campylobacter jejuni reveals hypervariable sequences , 2000, Nature.
[79] M. Kertesz,et al. Pathways of Assimilative Sulfur Metabolism inPseudomonas putida , 1999, Journal of bacteriology.
[80] G. Mendz,et al. Fumarate metabolism and the microaerophily of Campylobacter species. , 1999, The international journal of biochemistry & cell biology.
[81] M. Turner,et al. The bspA Locus of Lactobacillus fermentum BR11 Encodes an l-Cystine Uptake System , 1999, Journal of bacteriology.
[82] M. Blaser,et al. Mutation in the peb1A Locus ofCampylobacter jejuni Reduces Interactions with Epithelial Cells and Intestinal Colonization of Mice , 1998, Infection and Immunity.
[83] Pawelec,et al. Campylobacter jejuni 72Dz/92 cjaC gene coding 28 kDa immunopositive protein, a homologue of the solute‐binding components of the ABC transport system , 1998, Letters in Applied Microbiology.
[84] G. Mendz,et al. Pyruvate metabolism in Campylobacter spp. , 1997, Biochimica et biophysica acta.
[85] M. Konkel,et al. Identification of a functional homolog of the Escherichia coli and Salmonella typhimurium cysM gene encoding O-acetylserine sulfhydrylase B in Campylobacter jejuni. , 1997, Gene.
[86] C. Penn,et al. Characteristics of Helicobacter pylori growth in a defined medium and determination of its amino acid requirements. , 1994, Microbiology.
[87] M. Blaser,et al. PEB1, the major cell-binding factor of Campylobacter jejuni, is a homolog of the binding component in gram-negative nutrient transport systems. , 1993, The Journal of biological chemistry.
[88] H. Kumagai,et al. Escherichia coli K-12 can utilize an exogenous gamma-glutamyl peptide as an amino acid source, for which gamma-glutamyltranspeptidase is essential , 1993, Journal of bacteriology.
[89] M H Saier,et al. Structural, functional, and evolutionary relationships among extracellular solute-binding receptors of bacteria , 1993, Microbiological reviews.
[90] A. Matin,et al. Molecular and functional characterization of a carbon starvation gene of Escherichia coli. , 1991, Journal of molecular biology.
[91] M. Doyle,et al. Chemotactic behavior of Campylobacter jejuni , 1988, Infection and immunity.
[92] F. Tenover,et al. Naturally occurring auxotrophs of Campylobacter jejuni and Campylobacter coli , 1987, Journal of clinical microbiology.
[93] M. Blaser,et al. Extraintestinal Campylobacter jejuni and Campylobacter coli infections: host factors and strain characteristics. , 1986, The Journal of infectious diseases.
[94] S. Adibi. Intestinal phase of protein assimilation in man. , 1976, The American journal of clinical nutrition.
[95] L. Foote,et al. The purification and subunit structure of cysteine desulfhydrase from Salmonella typhimurium. , 1972, The Journal of biological chemistry.
[96] B. Pearson,et al. Two respiratory enzyme systems in Campylobacter jejuni NCTC 11168 contribute to growth on L-lactate. , 2011, Environmental microbiology.
[97] D. Maskell,et al. Metabolite and transcriptome analysis of Campylobacter jejuni in vitro growth reveals a stationary-phase physiological switch. , 2009, Microbiology.
[98] D. Kelly,et al. A sulphite respiration system in the chemoheterotrophic human pathogen Campylobacter jejuni. , 2005, Microbiology.
[99] R. C. Fahey,et al. Import and Metabolism of Glutathione byStreptococcus mutans , 1998, Journal of bacteriology.