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1.
Nature ; 390(6660): 580-6, 1997 Dec 11.
Article in English | MEDLINE | ID: mdl-9403685

ABSTRACT

The genome of the bacterium Borrelia burgdorferi B31, the aetiologic agent of Lyme disease, contains a linear chromosome of 910,725 base pairs and at least 17 linear and circular plasmids with a combined size of more than 533,000 base pairs. The chromosome contains 853 genes encoding a basic set of proteins for DNA replication, transcription, translation, solute transport and energy metabolism, but, like Mycoplasma genitalium, it contains no genes for cellular biosynthetic reactions. Because B. burgdorferi and M. genitalium are distantly related eubacteria, we suggest that their limited metabolic capacities reflect convergent evolution by gene loss from more metabolically competent progenitors. Of 430 genes on 11 plasmids, most have no known biological function; 39% of plasmid genes are paralogues that form 47 gene families. The biological significance of the multiple plasmid-encoded genes is not clear, although they may be involved in antigenic variation or immune evasion.


Subject(s)
Borrelia burgdorferi Group/genetics , Genome, Bacterial , Biological Transport , Chemotaxis , Chromosomes, Bacterial , DNA Repair , DNA, Bacterial/biosynthesis , DNA, Bacterial/genetics , Energy Metabolism , Gene Expression Regulation, Bacterial , Lyme Disease/microbiology , Membrane Proteins/genetics , Molecular Sequence Data , Plasmids , Protein Biosynthesis , Recombination, Genetic , Replication Origin , Telomere , Transcription, Genetic
2.
Nature ; 388(6642): 539-47, 1997 Aug 07.
Article in English | MEDLINE | ID: mdl-9252185

ABSTRACT

Helicobacter pylori, strain 26695, has a circular genome of 1,667,867 base pairs and 1,590 predicted coding sequences. Sequence analysis indicates that H. pylori has well-developed systems for motility, for scavenging iron, and for DNA restriction and modification. Many putative adhesins, lipoproteins and other outer membrane proteins were identified, underscoring the potential complexity of host-pathogen interaction. Based on the large number of sequence-related genes encoding outer membrane proteins and the presence of homopolymeric tracts and dinucleotide repeats in coding sequences, H. pylori, like several other mucosal pathogens, probably uses recombination and slipped-strand mispairing within repeats as mechanisms for antigenic variation and adaptive evolution. Consistent with its restricted niche, H. pylori has a few regulatory networks, and a limited metabolic repertoire and biosynthetic capacity. Its survival in acid conditions depends, in part, on its ability to establish a positive inside-membrane potential in low pH.


Subject(s)
Genome, Bacterial , Helicobacter pylori/genetics , Antigenic Variation , Bacterial Adhesion , Bacterial Proteins/metabolism , Base Sequence , Biological Evolution , Cell Division , DNA Repair , DNA, Bacterial/genetics , Gene Expression Regulation, Bacterial , Helicobacter pylori/metabolism , Helicobacter pylori/pathogenicity , Hydrogen-Ion Concentration , Molecular Sequence Data , Protein Biosynthesis , Recombination, Genetic , Transcription, Genetic , Virulence
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