Genetic Dissection of Tropodithietic Acid Biosynthesis by Marine Roseobacters

The symbiotic association between the roseobacter Silicibacter sp. strain TM1040 and the dinoflagellate Pfiesteria piscicida involves bacterial chemotaxis to dinoflagellate-produced dimethylsulfoniopropionate (DMSP), DMSP demethylation, and ultimately a biofilm on the surface of the host. Biofilm fo...

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Veröffentlicht in:Applied and Environmental Microbiology 2008-03, Vol.74 (5), p.1535-1545
Hauptverfasser: Geng, Haifeng, Bruhn, Jesper Bartholin, Nielsen, Kristian F, Gram, Lone, Belas, Robert
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container_end_page 1545
container_issue 5
container_start_page 1535
container_title Applied and Environmental Microbiology
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creator Geng, Haifeng
Bruhn, Jesper Bartholin
Nielsen, Kristian F
Gram, Lone
Belas, Robert
description The symbiotic association between the roseobacter Silicibacter sp. strain TM1040 and the dinoflagellate Pfiesteria piscicida involves bacterial chemotaxis to dinoflagellate-produced dimethylsulfoniopropionate (DMSP), DMSP demethylation, and ultimately a biofilm on the surface of the host. Biofilm formation is coincident with the production of an antibiotic and a yellow-brown pigment. In this report, we demonstrate that the antibiotic is a sulfur-containing compound, tropodithietic acid (TDA). Using random transposon insertion mutagenesis, 12 genes were identified as critical for TDA biosynthesis by the bacteria, and mutation in any one of these results in a loss of antibiotic activity (Tda⁻) and pigment production. Unexpectedly, six of the genes, referred to as tdaA-F, could not be found on the annotated TM1040 genome and were instead located on a previously unidentified plasmid (ca. 130 kb; pSTM3) that exhibited a low frequency of spontaneous loss. Homologs of tdaA and tdaB from Silicibacter sp. strain TM1040 were identified by mutagenesis in another TDA-producing roseobacter, Phaeobacter sp. strain 27-4, which also possesses two large plasmids (ca. 60 and ca. 70 kb, respectively), and tda genes were found by DNA-DNA hybridization in 88% of a diverse collection of nine roseobacters with known antibiotic activity. These data suggest that roseobacters may use a common pathway for TDA biosynthesis that involves plasmid-encoded proteins. Using metagenomic library databases and a bioinformatics approach, differences in the biogeographical distribution between the critical TDA synthesis genes were observed. The implications of these results to roseobacter survival and the interaction between TM1040 and its dinoflagellate host are discussed.
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Biofilm formation is coincident with the production of an antibiotic and a yellow-brown pigment. In this report, we demonstrate that the antibiotic is a sulfur-containing compound, tropodithietic acid (TDA). Using random transposon insertion mutagenesis, 12 genes were identified as critical for TDA biosynthesis by the bacteria, and mutation in any one of these results in a loss of antibiotic activity (Tda⁻) and pigment production. Unexpectedly, six of the genes, referred to as tdaA-F, could not be found on the annotated TM1040 genome and were instead located on a previously unidentified plasmid (ca. 130 kb; pSTM3) that exhibited a low frequency of spontaneous loss. Homologs of tdaA and tdaB from Silicibacter sp. strain TM1040 were identified by mutagenesis in another TDA-producing roseobacter, Phaeobacter sp. strain 27-4, which also possesses two large plasmids (ca. 60 and ca. 70 kb, respectively), and tda genes were found by DNA-DNA hybridization in 88% of a diverse collection of nine roseobacters with known antibiotic activity. These data suggest that roseobacters may use a common pathway for TDA biosynthesis that involves plasmid-encoded proteins. Using metagenomic library databases and a bioinformatics approach, differences in the biogeographical distribution between the critical TDA synthesis genes were observed. 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subjects Acids
Animals
Bacteria
Bacteriology
Biofilms - growth & development
Biological and medical sciences
Chemical synthesis
Chromatography, High Pressure Liquid
Computational Biology
DNA Primers - genetics
Fundamental and applied biological sciences. Psychology
Genes
Genetics
Genetics and Molecular Biology
Genomic Library
Marine Biology
Microbiology
Mutagenesis
Pfiesteria piscicida
Pfiesteria piscicida - metabolism
Plasmids - genetics
Roseobacter
Roseobacter - genetics
Species Specificity
Sulfonium Compounds - metabolism
Symbiosis
Tropolone - analogs & derivatives
Tropolone - metabolism
title Genetic Dissection of Tropodithietic Acid Biosynthesis by Marine Roseobacters
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