Coherent domains of transcription coordinate gene expression during bacterial growth and adaptation

Georgi Muskhelishvili, Raphaël Forquet, Sylvie Reverchon, William Nasser, Sam Meyer

Research output: Contribution to journalReview articlepeer-review


Recent studies strongly suggest that in bacteria, both the genomic pattern of DNA thermodynamic stability and the order of genes along the chromosomal origin-to-terminus axis are highly conserved and that this spatial organization plays a crucial role in coordinating genomic transcription. In this article, we explore the relationship between genomic sequence organization and transcription in the commensal bacterium Escherichia coli and the plant pathogen Dickeya. We argue that, while in E. coli the gradient of DNA thermodynamic stability and gene order along the origin-to-terminus axis represent major organizational features orchestrating temporal gene expression, the genomic sequence organization of Dickeya is more complex, demonstrating extended chromosomal domains of thermodynamically distinct DNA sequences eliciting specific transcriptional responses to various kinds of stress encountered during pathogenic growth. This feature of the Dickeya genome is likely an adaptation to the pathogenic lifestyle utilizing differences in genomic sequence organization for the selective expression of virulence traits. We propose that the coupling of DNA thermodynamic stability and genetic function provides a common organizational principle for the coordinated expression of genes during both normal and pathogenic bacterial growth.

Original languageEnglish (US)
Article number694
Issue number12
StatePublished - Dec 2019
Externally publishedYes


  • Bacteria
  • Chromosomal domains
  • Chromosomal origin-to-terminus axis
  • DNA supercoiling
  • DNA thermodynamic stability
  • Genetic regulation
  • Nucleoid-associated proteins
  • Transcription

ASJC Scopus subject areas

  • Microbiology
  • Virology
  • Microbiology (medical)


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