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Multiple-locus sequence typing and analysis of toxin genes in Bacillus cereus food-borne isolates. | LitMetric

Multiple-locus sequence typing and analysis of toxin genes in Bacillus cereus food-borne isolates.

Appl Environ Microbiol

Department of Public Health, Comparative Pathology and Veterinary Hygiene, University of Padova, Agripolis, Viale dell'Università 16, 35020 Legnaro, Italy.

Published: February 2008

AI Article Synopsis

  • - The study analyzed 47 food-borne isolates of Bacillus cereus using multilocus sequence typing (MLST), combining new and existing sequences to create a comprehensive dataset of 296 strains.
  • - Phylogenetic analysis revealed three main lineages (I, II, III) within the B. cereus complex, with most food-borne isolates classified in lineage I.
  • - The research highlighted significant lateral gene transfer (HGT) among strains and traced the evolutionary patterns of toxin-encoding genes, suggesting HGT plays a critical role in the evolution and population structure of B. cereus.

Article Abstract

In the present study we characterized 47 food-borne isolates of Bacillus cereus using multilocus sequence typing (MLST). Newly determined sequences were combined with sequences available in public data banks in order to produce the largest data set possible. Phylogenetic analysis was performed on a total of 296 strains for which MLST sequence information is available, and three main lineages--I, II, and III--within the B. cereus complex were identified. With few exceptions, all food-borne isolates were in group I. The occurrence of horizontal gene transfer (HGT) among various strains was analyzed by several statistical methods, providing evidence of widespread lateral gene transfer within B. cereus. We also investigated the occurrence of toxin-encoding genes, focusing on their evolutionary history within B. cereus. Several patterns were identified, indicating a pivotal role of HGT in the evolution of toxin-encoding genes. Our results indicate that HGT is an important element in shaping the population structure of the B. cereus complex. The results presented here also provide strong evidence of reticulate evolution within the B. cereus complex.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2227710PMC
http://dx.doi.org/10.1128/AEM.01495-07DOI Listing

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