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PMID: 11889109 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Genome sequence and analysis of the oral bacterium Fusobacterium nucleatum strain ATCC 25586.

Journal of bacteriology ·Vol. 184 ·No. 7 ·2002-04-00 ·Pages 2005-18

Kapatral V, Anderson I, Ivanova N, Reznik G, Los T, Lykidis A, Bhattacharyya A, Bartman A, Gardner W, Grechkin G, Zhu L, Vasieva O, Chu L, Kogan Y, Chaga O, Goltsman E, Bernal A, Larsen N, D'Souza M, Walunas T, Pusch G, Haselkorn R, Fonstein M, Kyrpides N, Overbeek R

Abstract

We present a complete DNA sequence and metabolic analysis of the dominant oral bacterium Fusobacterium nucleatum. Although not considered a major dental pathogen on its own, this anaerobe facilitates the aggregation and establishment of several other species including the dental pathogens Porphyromonas gingivalis and Bacteroides forsythus. The F. nucleatum strain ATCC 25586 genome was assembled from shotgun sequences and analyzed using the ERGO bioinformatics suite (http://www.integratedgenomics.com). The genome contains 2.17 Mb encoding 2,067 open reading frames, organized on a single circular chromosome with 27% GC content. Despite its taxonomic position among the gram-negative bacteria, several features of its core metabolism are similar to that of gram-positive Clostridium spp., Enterococcus spp., and Lactococcus spp. The genome analysis has revealed several key aspects of the pathways of organic acid, amino acid, carbohydrate, and lipid metabolism. Nine very-high-molecular-weight outer membrane proteins are predicted from the sequence, none of which has been reported in the literature. More than 137 transporters for the uptake of a variety of substrates such as peptides, sugars, metal ions, and cofactors have been identified. Biosynthetic pathways exist for only three amino acids: glutamate, aspartate, and asparagine. The remaining amino acids are imported as such or as di- or oligopeptides that are subsequently degraded in the cytoplasm. A principal source of energy appears to be the fermentation of glutamate to butyrate. Additionally, desulfuration of cysteine and methionine yields ammonia, H(2)S, methyl mercaptan, and butyrate, which are capable of arresting fibroblast growth, thus preventing wound healing and aiding penetration of the gingival epithelium. The metabolic capabilities of F. nucleatum revealed by its genome are therefore consistent with its specialized niche in the mouth.

MeSH Terms
Amino Acids/metabolism Bacterial Outer Membrane Proteins/metabolism Biological Transport Cell Division Coenzymes/metabolism DNA Repair DNA Replication DNA Transposable Elements DNA, Bacterial/analysis Drug Resistance, Bacterial Fusobacterium nucleatum/genetics,metabolism Genome, Bacterial Lipid Metabolism Lipopolysaccharides/metabolism Mutagenesis, Insertional Nucleotides/metabolism Protein Biosynthesis Protons Signal Transduction/physiology Transcription, Genetic Virulence
Chemicals
Amino Acids Bacterial Outer Membrane Proteins Coenzymes DNA Transposable Elements DNA, Bacterial Lipopolysaccharides Nucleotides Protons
Authors & Affiliations
25 authors, click to expand affiliations / ORCID
Kapatral Vinayak
Integrated Genomics, Chicago, Illinois 60612, USA. vinayak@integratedgenomics.com
Anderson Iain
Ivanova Natalia
Reznik Gary
Los Tamara
Lykidis Athanasios
Bhattacharyya Anamitra
Bartman Allen
Gardner Warren
Grechkin Galina
Zhu Lihua
Vasieva Olga
Chu Lien
Kogan Yakov
Chaga Oleg
Goltsman Eugene
Bernal Axel
Larsen Niels
D'Souza Mark
Walunas Theresa
Pusch Gordon
Haselkorn Robert
Fonstein Michael
Kyrpides Nikos
Overbeek Ross
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Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
2002-04-00
Pages
2005-18
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC134920
Subset
IM
Grants
NIGMS NIH HHS · R44 GM61431 · United States
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