4 resultados para Salmochelin


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The molecular mechanisms that define asymptomatic bacteriuria (ABU) Escherichia coli colonization of the human urinary tract remain to be properly elucidated. Here, we utilize ABU E. coli strain 83972 as a model to dissect the contribution of siderophores to iron acquisition, growth, fitness, and colonization of the urinary tract. We show that E. coli 83972 produces enterobactin, salmochelin, aerobactin, and yersiniabactin and examine the role of these systems using mutants defective in siderophore biosynthesis and uptake. Enterobactin and aerobactin contributed most to total siderophore activity and growth in defined iron-deficient medium. No siderophores were detected in an 83972 quadruple mutant deficient in all four siderophore biosynthesis pathways; this mutant did not grow in defined iron-deficient medium but grew in iron-limited pooled human urine due to iron uptake via the FecA ferric citrate receptor. In a mixed 1:1 growth assay with strain 83972, there was no fitness disadvantage of the 83972 quadruple biosynthetic mutant, demonstrating its capacity to act as a “cheater” and utilize siderophores produced by the wild-type strain for iron uptake. An 83972 enterobactin/salmochelin double receptor mutant was outcompeted by 83972 in human urine and the mouse urinary tract, indicating a role for catecholate receptors in urinary tract colonization.

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Extraintestinal pathogenic Escherichia coli (ExPEC) represent a diverse group of strains of E. coli, which infect extraintestinal sites, such as the urinary tract, the bloodstream, the meninges, the peritoneal cavity, and the lungs. Urinary tract infections (UTIs) caused by uropathogenic E. coli (UPEC), the major subgroup of ExPEC, are among the most prevalent microbial diseases world wide and a substantial burden for public health care systems. UTIs are responsible for serious morbidity and mortality in the elderly, in young children, and in immune-compromised and hospitalized patients. ExPEC strains are different, both from genetic and clinical perspectives, from commensal E. coli strains belonging to the normal intestinal flora and from intestinal pathogenic E. coli strains causing diarrhea. ExPEC strains are characterized by a broad range of alternate virulence factors, such as adhesins, toxins, and iron accumulation systems. Unlike diarrheagenic E. coli, whose distinctive virulence determinants evoke characteristic diarrheagenic symptoms and signs, ExPEC strains are exceedingly heterogeneous and are known to possess no specific virulence factors or a set of factors, which are obligatory for the infection of a certain extraintestinal site (e. g. the urinary tract). The ExPEC genomes are highly diverse mosaic structures in permanent flux. These strains have obtained a significant amount of DNA (predictably up to 25% of the genomes) through acquisition of foreign DNA from diverse related or non-related donor species by lateral transfer of mobile genetic elements, including pathogenicity islands (PAIs), plasmids, phages, transposons, and insertion elements. The ability of ExPEC strains to cause disease is mainly derived from this horizontally acquired gene pool; the extragenous DNA facilitates rapid adaptation of the pathogen to changing conditions and hence the extent of the spectrum of sites that can be infected. However, neither the amount of unique DNA in different ExPEC strains (or UPEC strains) nor the mechanisms lying behind the observed genomic mobility are known. Due to this extreme heterogeneity of the UPEC and ExPEC populations in general, the routine surveillance of ExPEC is exceedingly difficult. In this project, we presented a novel virulence gene algorithm (VGA) for the estimation of the extraintestinal virulence potential (VP, pathogenicity risk) of clinically relevant ExPECs and fecal E. coli isolates. The VGA was based on a DNA microarray specific for the ExPEC phenotype (ExPEC pathoarray). This array contained 77 DNA probes homologous with known (e.g. adhesion factors, iron accumulation systems, and toxins) and putative (e.g. genes predictably involved in adhesion, iron uptake, or in metabolic functions) ExPEC virulence determinants. In total, 25 of DNA probes homologous with known virulence factors and 36 of DNA probes representing putative extraintestinal virulence determinants were found at significantly higher frequency in virulent ExPEC isolates than in commensal E. coli strains. We showed that the ExPEC pathoarray and the VGA could be readily used for the differentiation of highly virulent ExPECs both from less virulent ExPEC clones and from commensal E. coli strains as well. Implementing the VGA in a group of unknown ExPECs (n=53) and fecal E. coli isolates (n=37), 83% of strains were correctly identified as extraintestinal virulent or commensal E. coli. Conversely, 15% of clinical ExPECs and 19% of fecal E. coli strains failed to raster into their respective pathogenic and non-pathogenic groups. Clinical data and virulence gene profiles of these strains warranted the estimated VPs; UPEC strains with atypically low risk-ratios were largely isolated from patients with certain medical history, including diabetes mellitus or catheterization, or from elderly patients. In addition, fecal E. coli strains with VPs characteristic for ExPEC were shown to represent the diagnostically important fraction of resident strains of the gut flora with a high potential of causing extraintestinal infections. Interestingly, a large fraction of DNA probes associated with the ExPEC phenotype corresponded to novel DNA sequences without any known function in UTIs and thus represented new genetic markers for the extraintestinal virulence. These DNA probes included unknown DNA sequences originating from the genomic subtractions of four clinical ExPEC isolates as well as from five novel cosmid sequences identified in the UPEC strains HE300 and JS299. The characterized cosmid sequences (pJS332, pJS448, pJS666, pJS700, and pJS706) revealed complex modular DNA structures with known and unknown DNA fragments arranged in a puzzle-like manner and integrated into the common E. coli genomic backbone. Furthermore, cosmid pJS332 of the UPEC strain HE300, which carried a chromosomal virulence gene cluster (iroBCDEN) encoding the salmochelin siderophore system, was shown to be part of a transmissible plasmid of Salmonella enterica. Taken together, the results of this project pointed towards the assumptions that first, (i) homologous recombination, even within coding genes, contributes to the observed mosaicism of ExPEC genomes and secondly, (ii) besides en block transfer of large DNA regions (e.g. chromosomal PAIs) also rearrangements of small DNA modules provide a means of genomic plasticity. The data presented in this project supplemented previous whole genome sequencing projects of E. coli and indicated that each E. coli genome displays a unique assemblage of individual mosaic structures, which enable these strains to successfully colonize and infect different anatomical sites.

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Le fer est un élément essentiel pour les bactéries. Puisqu’elles ne peuvent le synthétiser elles-mêmes, elles utilisent un ou plusieurs systèmes d’acquisition de fer afin de se le procurer dans l’environnement, ou chez l’hôte pour leurs propres métabolismes. Différentes stratégies coexistent chez les bactéries pathogènes dues à la faible concentration de cet élément, autant chez l’hôte que dans l’environnement. Salmonella enterica sérovar Typhi (S. Typhi) est une entérobactérie Gram négative causant une maladie systémique, soit la fièvre typhoïde, qui est spécifique à l’homme. Les mécanismes de pathogènese de ce sérovar sont peu connus jusqu’à ce jour, puisque son tropisme pour l’humain empêche l’utilisation d’un modèle animal adéquat. L’objectif de cette recherche est de caractériser le système d’acquisition de fer chez S. Typhi encodé par le locus iro. Les gènes du locus, iroBCDEN ont fait l’objet de plusieurs recherches chez différents pathogènes, notamment E. coli et Salmonella Typhimurium. Bien qu’un rôle dans la virulence ait été établi pour ce locus chez ces bactéries, très peu d’informations sont disponibles quant au rôle chez S. Typhi, qui emprunte plutôt la voie systémique d’infection. Nous avons évalué le rôle de la synthèse, de l’exportation et de l’importation du sidérophore salmochéline, codé par les gènes iroBCDEN. En inactivant le locus puis par la suite les gènes de façon indépendante par échange allélique, il a été possible d’observer leurs implications in vitro lors d’infections de cellules humaines. Le rôle dans l’adhésion et l’invasion des cellules épithéliales ainsi que le rôle dans la phagocytose et la survie dans les macrophages ont donc été déterminés. De plus, le mécanisme de sécrétion par lequel la salmochéline peut traverser la membrane externe est inconnu à ce jour. La pompe à efflux TolC est responsable de la sécrétion de plusieurs molécules, y compris l’entérobactine, un sidérophore analogue à la salmochéline. Par mutagénèse, nous avons effectué un mutant de délétion tolC afin de vérifier son implication dans l’interaction avec les cellules épithéliales et les macrophages. Afin de caractériser in vitro les mutants, nous avons effectué des courbes de croissance dans différents milieux. La sensibilité au peroxyde d’hydrogène a été vérifiée par la suite, puis dû aux résultats d’infections, la mobilité de la souche ΔtolC a été évaluée. Ces différents tests nous ont permis de mieux comprendre l’implication du locus iro, de ses composantes et de la pompe à efflux TolC lors de l’interaction avec les cellules cibles d’une infection systémique causée par Salmonella Typhi.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)