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Characterization of a Pathogenic Escherichia coli Strain Derived from Oreochromis spp. Farms Using Whole-Genome Sequencing
Published on: December 23, 2022
Complete sequence of virulence plasmid pJM1 from the marine fish pathogen Vibrio anguillarum strain 775
Manuela Di Lorenzo1, Michiel Stork, Marcelo E Tolmasky
1Department of Molecular Microbiology and Immunology, Oregon HealthScience University, Portland, Oregon 97201, USA.
Abstract:
The virulence plasmid pJM1 enables the fish pathogen Vibrio anguillarum, a gram-negative polarly flagellated comma-shaped rod bacterium, to cause a highly fatal hemorrhagic septicemic disease in salmonids and other fishes, leading to epizootics throughout the world. The pJM1 plasmid 65,009-nucleotide sequence, with an overall G+C content of 42.6%, revealed genes and open reading frames (ORFs) encoding iron transporters, nonribosomal peptide enzymes, and other proteins essential for the biosynthesis of the siderophore anguibactin. Of the 59 ORFs, approximately 32% were related to iron metabolic functions. The plasmid pJM1 confers on V. anguillarum the ability to take up ferric iron as a complex with anguibactin from a medium in which iron is chelated by transferrin, ethylenediamine-di(o-hydroxyphenyl-acetic acid), or other iron-chelating compounds. The fatDCBA-angRT operon as well as other downstream biosynthetic genes is bracketed by the homologous ISV-A1 and ISV-A2 insertion sequences. Other clusters on the plasmid also show an insertion element-flanked organization, including ORFs homologous to genes involved in the biosynthesis of 2,3-dihydroxybenzoic acid. Homologues of replication and partition genes are also identified on pJM1 adjacent to this region. ORFs with no known function represent approximately 30% of the pJM1 sequence. The insertion sequence elements in the composite transposon-like structures, corroborated by the G+C content of the pJM1 sequence, suggest a modular composition of plasmid pJM1, biased towards acquisition of modules containing genes related to iron metabolic functions. We also show that there is considerable microheterogeneity in pJM1-like plasmids from virulent strains of V. anguillarum isolated from different geographical sources.
Insights
The pJM1 plasmid enhances Vibrio anguillarum virulence by providing iron uptake mechanisms, crucial for causing fish disease. Its modular structure, rich in iron-related genes, suggests adaptation through gene acquisition.
Area of Science:
- Microbiology
- Genomics
- Fish Pathology
Background:
- The fish pathogen Vibrio anguillarum causes fatal hemorrhagic septicemic disease.
- Virulence is often mediated by plasmids, such as the pJM1 plasmid.
Purpose of the Study:
- To elucidate the genetic basis of Vibrio anguillarum virulence conferred by the pJM1 plasmid.
- To understand the role of pJM1 in iron acquisition and its contribution to disease pathogenesis.
Main Methods:
- Whole-genome sequencing of the pJM1 plasmid (65,009 nucleotides).
- Bioinformatic analysis to identify open reading frames (ORFs) and their functions.
- Comparative analysis of pJM1-like plasmids from different geographical sources.
Main Results:
- The pJM1 plasmid sequence revealed numerous genes related to iron transport and the biosynthesis of the siderophore anguibactin (approx. 32% of ORFs).
- Plasmid-encoded functions enable V. anguillarum to acquire ferric iron via anguibactin complexation.
- Evidence of a modular plasmid structure, with insertion sequence elements flanking gene clusters, particularly those involved in iron metabolism and biosynthesis of 2,3-dihydroxybenzoic acid.
Conclusions:
- The pJM1 plasmid is a key virulence factor for V. anguillarum, primarily through its role in iron acquisition.
- The plasmid's modular composition, facilitated by insertion sequences, suggests a mechanism for acquiring functional gene clusters, especially those related to iron metabolism.
- Microheterogeneity exists in pJM1-like plasmids from geographically diverse virulent V. anguillarum strains.
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