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1.
Appl Environ Microbiol ; 75(7): 2046-56, 2009 Apr.
Article in English | MEDLINE | ID: mdl-19201974

ABSTRACT

The complete genomes of three strains from the phylum Acidobacteria were compared. Phylogenetic analysis placed them as a unique phylum. They share genomic traits with members of the Proteobacteria, the Cyanobacteria, and the Fungi. The three strains appear to be versatile heterotrophs. Genomic and culture traits indicate the use of carbon sources that span simple sugars to more complex substrates such as hemicellulose, cellulose, and chitin. The genomes encode low-specificity major facilitator superfamily transporters and high-affinity ABC transporters for sugars, suggesting that they are best suited to low-nutrient conditions. They appear capable of nitrate and nitrite reduction but not N(2) fixation or denitrification. The genomes contained numerous genes that encode siderophore receptors, but no evidence of siderophore production was found, suggesting that they may obtain iron via interaction with other microorganisms. The presence of cellulose synthesis genes and a large class of novel high-molecular-weight excreted proteins suggests potential traits for desiccation resistance, biofilm formation, and/or contribution to soil structure. Polyketide synthase and macrolide glycosylation genes suggest the production of novel antimicrobial compounds. Genes that encode a variety of novel proteins were also identified. The abundance of acidobacteria in soils worldwide and the breadth of potential carbon use by the sequenced strains suggest significant and previously unrecognized contributions to the terrestrial carbon cycle. Combining our genomic evidence with available culture traits, we postulate that cells of these isolates are long-lived, divide slowly, exhibit slow metabolic rates under low-nutrient conditions, and are well equipped to tolerate fluctuations in soil hydration.


Subject(s)
Bacteria/genetics , Bacteria/isolation & purification , DNA, Bacterial/genetics , Genome, Bacterial , Soil Microbiology , Anti-Bacterial Agents/biosynthesis , Biological Transport , Carbohydrate Metabolism , Cyanobacteria/genetics , DNA, Bacterial/chemistry , Fungi/genetics , Macrolides/metabolism , Molecular Sequence Data , Nitrogen/metabolism , Phylogeny , Proteobacteria/genetics , Sequence Analysis, DNA , Sequence Homology
2.
J Bacteriol ; 188(19): 6841-50, 2006 Oct.
Article in English | MEDLINE | ID: mdl-16980487

ABSTRACT

The dimorphic prosthecate bacteria (DPB) are alpha-proteobacteria that reproduce in an asymmetric manner rather than by binary fission and are of interest as simple models of development. Prior to this work, the only member of this group for which genome sequence was available was the model freshwater organism Caulobacter crescentus. Here we describe the genome sequence of Hyphomonas neptunium, a marine member of the DPB that differs from C. crescentus in that H. neptunium uses its stalk as a reproductive structure. Genome analysis indicates that this organism shares more genes with C. crescentus than it does with Silicibacter pomeroyi (a closer relative according to 16S rRNA phylogeny), that it relies upon a heterotrophic strategy utilizing a wide range of substrates, that its cell cycle is likely to be regulated in a similar manner to that of C. crescentus, and that the outer membrane complements of H. neptunium and C. crescentus are remarkably similar. H. neptunium swarmer cells are highly motile via a single polar flagellum. With the exception of cheY and cheR, genes required for chemotaxis were absent in the H. neptunium genome. Consistent with this observation, H. neptunium swarmer cells did not respond to any chemotactic stimuli that were tested, which suggests that H. neptunium motility is a random dispersal mechanism for swarmer cells rather than a stimulus-controlled navigation system for locating specific environments. In addition to providing insights into bacterial development, the H. neptunium genome will provide an important resource for the study of other interesting biological processes including chromosome segregation, polar growth, and cell aging.


Subject(s)
Alphaproteobacteria/genetics , Caulobacter crescentus/genetics , Genome, Bacterial , Alphaproteobacteria/cytology , Alphaproteobacteria/physiology , Bacterial Outer Membrane Proteins/genetics , Caulobacter crescentus/cytology , Caulobacter crescentus/physiology , Cell Cycle/genetics , Chemotaxis/genetics , Chemotaxis/physiology , DNA, Bacterial/chemistry , DNA, Bacterial/genetics , Flagella/physiology , Microbial Viability , Molecular Sequence Data , Movement , Sequence Analysis, DNA , Sequence Homology , Signal Transduction
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