Literature DB >> 24998344

H-NS-like nucleoid-associated proteins, mobile genetic elements and horizontal gene transfer in bacteria.

Charles J Dorman1.   

Abstract

Horizontal gene transfer plays an important role in the evolution of bacterial species, conferring new genetic traits on the recipient bacterium that extend its range of phenotypes and plasmids make important contributions to this process. However, the inappropriate expression of newly acquired genes may lead to a loss of competitive fitness, resulting in the elimination of the new gene-bacterium combination. It is thought that transcriptional silencing of horizontally acquired genes offers a route out of this dilemma and that nucleoid-associated proteins, especially those related to the H-NS protein, play a particularly important role in the silencing process. The discovery that many plasmids express orthologues of nucleoid-associated proteins adds an interesting dimension to current models of regulatory integration following lateral transfer of DNA. Other horizontally acquired genetic elements, such as genomic islands, also express nucleoid-associated proteins of their own. Here the interactions of H-NS-like nucleoid-associated proteins encoded by the core genome, genomic islands and plasmids are described.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  H-NS; Horizontal gene transfer; IncHI plasmids; Nucleoid associated proteins; StpA; Thermoregulation

Mesh:

Substances:

Year:  2014        PMID: 24998344     DOI: 10.1016/j.plasmid.2014.06.004

Source DB:  PubMed          Journal:  Plasmid        ISSN: 0147-619X            Impact factor:   3.466


  33 in total

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7.  Silencing cryptic specialized metabolism in Streptomyces by the nucleoid-associated protein Lsr2.

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8.  MvaT Family Proteins Encoded on IncP-7 Plasmid pCAR1 and the Host Chromosome Regulate the Host Transcriptome Cooperatively but Differently.

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Review 9.  Cross-Regulation between Bacteria and Phages at a Posttranscriptional Level.

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10.  Roles of Nucleoid-Associated Proteins in Stress-Induced Mutagenic Break Repair in Starving Escherichia coli.

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