Erwinia chrysanthemi requires a second iron transport route dependent of the siderophore achromobactin for extracellular growth and plant infection
暂无分享,去创建一个
[1] Jia Liu,et al. The complete genome sequence of the Arabidopsis and tomato pathogen Pseudomonas syringae pv. tomato DC3000 , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[2] A. Toussaint,et al. phiEC2, a new generalized transducing phage of Erwinia chrysanthemi. , 1984, Virology.
[3] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[4] C. Masclaux,et al. Differential expression of two siderophore‐dependent iron‐acquisition pathways in Erwinia chrysanthemi 3937: characterization of a novel ferrisiderophore permease of the ABC transporter family , 1995, Molecular microbiology.
[5] T. J. Brickman,et al. Essential Role of the Iron-Regulated Outer Membrane Receptor FauA in Alcaligin Siderophore-Mediated Iron Uptake inBordetella Species , 1999, Journal of bacteriology.
[6] D. Expert,et al. Erwinia, a Plant Pathogen , 2004 .
[7] W. Nasser,et al. Antagonistic effect of CRP and KdgR in the transcription control of the Erwinia chrysanthemi pectinolysis genes , 1997, Molecular microbiology.
[8] R. S. Hanson,et al. Construction of broad-host-range cosmid cloning vectors: identification of genes necessary for growth of Methylobacterium organophilum on methanol , 1985, Journal of bacteriology.
[9] C. Masclaux,et al. Iron is a triggering factor for differential expression of Erwinia chrysanthemi strain 3937 pectate lyases in pathogenesis of African violets , 1996 .
[10] C. Masclaux,et al. Signalling potential of iron in plant—microbe interactions: the pathogenic switch of iron transport in Erwinia chrysanthemi , 1995 .
[11] D. Expert. WITHHOLDING AND EXCHANGING IRON: Interactions Between Erwinia spp. and Their Plant Hosts. , 1999, Annual review of phytopathology.
[12] India G. Hook-Barnard,et al. Export of the siderophore enterobactin in Escherichia coli: involvement of a 43 kDa membrane exporter , 2002, Molecular microbiology.
[13] G. Lajoie,et al. Role of Siderophore Biosynthesis in Virulence of Staphylococcus aureus: Identification and Characterization of Genes Involved in Production of a Siderophore , 2004, Infection and Immunity.
[14] D. Expert,et al. Achromobactin, a New Citrate Siderophore of Erwinia chrysanthemi , 2000, Zeitschrift fur Naturforschung. C, Journal of biosciences.
[15] D. Expert,et al. Differential regulation by iron of Erwinia chrysanthemi pectate lyases: pathogenicity of iron transport regulatory (cbr) mutants , 1994 .
[16] C. Ratledge,et al. Iron metabolism in pathogenic bacteria. , 2000, Annual review of microbiology.
[17] S. Yamamoto,et al. Identification and analysis of a gene encoding L-2,4-diaminobutyrate:2-ketoglutarate 4-aminotransferase involved in the 1,3-diaminopropane production pathway in Acinetobacter baumannii , 1997, Journal of bacteriology.
[18] J. O'Brien,et al. Genetic Organization of the Region Encoding Regulation, Biosynthesis, and Transport of Rhizobactin 1021, a Siderophore Produced by Sinorhizobium meliloti , 2001, Journal of bacteriology.
[19] J. Neilands,et al. Isolation, characterization, and synthesis of chrysobactin, a compound with siderophore activity from Erwinia chrysanthemi. , 1989, The Journal of biological chemistry.
[20] W. Page,et al. The csbX gene of Azotobacter vinelandii encodes an MFS efflux pump required for catecholate siderophore export. , 2003, FEMS microbiology letters.
[21] T. Izard,et al. Crystal structures of the metal‐dependent 2‐dehydro‐3‐deoxy‐galactarate aldolase suggest a novel reaction mechanism , 2000, The EMBO journal.
[22] Y. Bertheau,et al. Differential cell wall degradation byErwinia chrysanthemi in petiole ofSaintpaulia ionantha , 1999, Protoplasma.
[23] N. Hugouvieux-Cotte-Pattat,et al. Lactose metabolism in Erwinia chrysanthemi , 1985, Journal of bacteriology.
[24] J. Neilands,et al. Siderophores: Structure and Function of Microbial Iron Transport Compounds (*) , 1995, The Journal of Biological Chemistry.
[25] P. Babbitt,et al. Evolution of enzymatic activities in the enolase superfamily: characterization of the (D)-glucarate/galactarate catabolic pathway in Escherichia coli. , 1998, Biochemistry.
[26] M. Pérombelon. Potato diseases caused by soft rot erwinias: an overview of pathogenesis , 2002, Plant Pathology.
[27] D. Expert,et al. Coupling of iron assimilation and pectinolysis in Erwinia chrysanthemi 3937. , 2002, Molecular plant-microbe interactions : MPMI.
[28] S. Miyoshi,et al. Identification and Characterization of Genes Required for Biosynthesis and Transport of the Siderophore Vibrioferrin in Vibrio parahaemolyticus , 2003, Journal of bacteriology.
[29] M. Putman,et al. Molecular Properties of Bacterial Multidrug Transporters , 2000, Microbiology and Molecular Biology Reviews.
[30] V. de Lorenzo,et al. The organization of intercistronic regions of the aerobactin operon of pColV-K30 may account for the differential expression of the iucABCD iutA genes. , 1994, Journal of molecular biology.
[31] Philippe Dessen,et al. BISANCE: a French service for access to biomolecular sequence databases , 1990, Comput. Appl. Biosci..
[32] D. Expert,et al. Genetic analysis of the Erwinia chrysanthemi 3937 chrysobactin iron‐transport system: characterization of a gene cluster involved in uptake and biosynthetic pathways , 1991, Molecular microbiology.
[33] D. Expert,et al. Characterization of a tonB mutation in Erwinia chrysanthemi 3937: TonB(Ech) is a member of the enterobacterial TonB family. , 2000, Microbiology.
[34] J. Neilands,et al. Negative transcriptional control of iron transport in Erwinia chrysanthemi involves an iron‐responsive two‐factor system , 1992, Molecular microbiology.
[35] A. Charkowski,et al. Pseudomonas syringae Exchangeable Effector Loci: Sequence Diversity in Representative Pathovars and Virulence Function in P. syringae pv. syringae B728a , 2003, Journal of bacteriology.
[36] K. Hantke. Iron and metal regulation in bacteria. , 2001, Current opinion in microbiology.
[37] V. Braun,et al. Bacterial solutions to the iron-supply problem. , 1999, Trends in biochemical sciences.
[38] S. Linn,et al. Three chemically distinct types of oxidants formed by iron-mediated Fenton reactions in the presence of DNA. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[39] E. Weinberg. Modulation of intramacrophage iron metabolism during microbial cell invasion. , 2000, Microbes and infection.
[40] F. D. de Bruijn,et al. Mini-Mulac transposons with broad-host-range origins of conjugal transfer and replication designed for gene regulation studies in Rhizobiaceae. , 1988, Gene.
[41] Mark A. McIntosh,et al. Architecture of a Fur Binding Site: a Comparative Analysis , 2003, Journal of bacteriology.
[42] E. Weinberg. The Development of Awareness of Iron-Withholding Defense , 2015, Perspectives in biology and medicine.
[43] E. Forest,et al. Conformational changes of the ferric uptake regulation protein upon metal activation and DNA binding; first evidence of structural homologies with the diphtheria toxin repressor. , 2001 .
[44] D. Expert,et al. Iron Deficiency Induced by Chrysobactin in Saintpaulia Leaves Inoculated with Erwinia chrysanthemi , 1993, Plant physiology.
[45] D. Helinski,et al. Replication of an origin-containing derivative of plasmid RK2 dependent on a plasmid function provided in trans. , 1979, Proceedings of the National Academy of Sciences of the United States of America.
[46] D. Expert,et al. Iron regulation and pathogenicity in Erwinia chrysanthemi 3937: role of the Fur repressor protein. , 1999, Molecular plant-microbe interactions : MPMI.
[47] S. Payne,et al. Analysis of Residues Determining Specificity of Vibrio cholerae TonB1 for Its Receptors , 2003, Journal of bacteriology.
[48] B. A. Castilho,et al. Plasmid insertion mutagenesis and lac gene fusion with mini-mu bacteriophage transposons , 1984, Journal of bacteriology.
[49] A. Kotoujansky,et al. Systemic virulence of Erwinia chrysanthemi 3937 requires a functional iron assimilation system , 1988, Journal of bacteriology.
[50] V. de Lorenzo,et al. Opening the Iron Box: Transcriptional Metalloregulation by the Fur Protein , 1999, Journal of bacteriology.
[51] N. Bardonnet,et al. 'uidA-antibiotic-resistance cassettes for insertion mutagenesis, gene fusions and genetic constructions. , 1992, FEMS microbiology letters.
[52] D. Expert,et al. The virulence-associated chrysobactin iron uptake system of Erwinia chrysanthemi 3937 involves an operon encoding transport and biosynthetic functions , 1991, Journal of bacteriology.
[53] J. Neilands,et al. Universal chemical assay for the detection and determination of siderophores. , 1987, Analytical biochemistry.
[54] R. F. Wang,et al. Construction of versatile low-copy-number vectors for cloning, sequencing and gene expression in Escherichia coli. , 1991, Gene.
[55] D. Expert,et al. Analysis of the Erwinia chrysanthemi ferrichrysobactin receptor gene: resemblance to the Escherichia coli fepA-fes bidirectional promoter region and homology with hydroxamate receptors , 1996, Journal of bacteriology.