achromobactin has been researched along with chrysobactin* in 2 studies
2 other study(ies) available for achromobactin and chrysobactin
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Erwinia chrysanthemi iron metabolism: the unexpected implication of the inner membrane platform within the type II secretion system.
The type II secretion (T2S) system is an essential device for Erwinia chrysanthemi virulence. Previously, we reported the key role of the OutF protein in forming, along with OutELM, an inner membrane platform in the Out T2S system. Here, we report that OutF copurified with five proteins identified by matrix-assisted laser desorption ionization-time of flight analysis as AcsD, TogA, SecA, Tsp, and DegP. The AcsD protein was known to be involved in the biosynthesis of achromobactin, which is a siderophore important for E. chrysanthemi virulence. The yeast two-hybrid system allowed us to gain further evidence for the OutF-AcsD interaction. Moreover, we showed that lack of OutF produced a pleiotropic phenotype: (i) altered production of the two siderophores of E. chrysanthemi, achromobactin and chrysobactin; (ii) hypersensitivity to streptonigrin, an iron-activated antibiotic; (iii) increased sensitivity to oxidative stress; and (iv) absence of the FbpA-like iron-binding protein in the periplasmic fraction. Interestingly, outE and outL mutants also exhibited similar phenotypes, but, outD and outJ mutants did not. Moreover, using the yeast two-hybrid system, several interactions were shown to occur between components of the T2S system inner membrane platform (OutEFL) and proteins involved in achromobactin production (AcsABCDE). The OutL-AcsD interaction was also demonstrated by Ni(2+) affinity chromatography. These results fully confirm our previous view that the T2S machinery is made up of three discrete blocks. The OutEFLM-forming platform is proposed to be instrumental in two different processes essential for virulence, protein secretion and iron homeostasis. Topics: Bacterial Outer Membrane Proteins; Bacterial Proteins; Carrier Proteins; Chromatography, Affinity; Citrates; Dickeya chrysanthemi; Dipeptides; Electrophoresis, Polyacrylamide Gel; Genotype; Iron; Ketoglutaric Acids; Mutation; Oxidative Stress; Phosphate-Binding Proteins; Protein Binding; Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization; Streptonigrin; Two-Hybrid System Techniques | 2009 |
Coupling of iron assimilation and pectinolysis in Erwinia chrysanthemi 3937.
Two major virulence determinants of the plant-pathogenic enterobacterium Erwinia chrysanthemi strain 3937 are the production of pectate lyase enzymes that degrade plant cell walls and expression of two high-affinity iron uptake systems mediated by two structurally unrelated siderophores, chrysobactin and achromobactin. Low iron availability is a signal that triggers transcription of the genes encoding pectate lyases PelD and PelE as well as that of genes involved in iron transport. This metalloregulation is mediated by the transcriptional repressor Fur. In this study, we analyzed the molecular mechanisms of this control. We purified the Erwinia chrysanthemi Fur protein. Band shift assays showed that Fur specifically binds in vitro to the regulatory regions of the genes encoding the ferrichrysobactin outer membrane receptor Fct and the pectate lyases PelD and PelE. We identified the Fur-binding sites of these promoter regions by performing DNase I footprinting experiments. From these data, we propose that Fur could inhibit the activation of the pelD and pelE genes by the cAMP receptor protein CRP according to an anti-activation mechanism. To identify other possible effectors involved in this control, we screened a bank of insertion mutants for an increase in transcriptional activity of pelD and fct genes in response to iron limitation. We isolated a mutant affected in the kdgK gene encoding the 2-keto-3-deoxygluconate (KDG) kinase, an enzyme involved in pectin catabolism. The growth of this mutant in the presence of pectic compounds led to a constitutive expression of iron transport genes as well as complete derepression of the pectinolysis genes. This effect was caused by intracellular accumulation of KDG. However, the derepression of iron transport genes by KDG does not involve the KdgR regulator of pectinolysis genes, which uses KDG as inducer. Thus, in Erwinia chrysanthemi, iron depletion or presence of KDG induces transcription of the genes involved in iron assimilation and pectinolysis. These important pathogenicity functions are coregulated by responding to common signals encountered in planta. Topics: Bacterial Outer Membrane Proteins; Bacterial Proteins; Base Sequence; Binding Sites; Cell Wall; Citrates; Dickeya chrysanthemi; Dipeptides; Gene Expression Regulation, Bacterial; Gluconates; Iron; Ketoglutaric Acids; Molecular Sequence Data; Mutation; Pectins; Phosphotransferases (Alcohol Group Acceptor); Plant Diseases; Polysaccharide-Lyases; Protein Binding; Receptors, Cell Surface; Repressor Proteins; Sequence Homology, Nucleic Acid; Siderophores; Signal Transduction; Transcription Factors; Virulence | 2002 |