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Growth Phase-Dependent Chromosome Condensation and Heat-Stable Nucleoid-Structuring Protein Redistribution in Escherichia coli under Osmotic Stress.
- Source :
-
Journal of bacteriology [J Bacteriol] 2019 Nov 05; Vol. 201 (23). Date of Electronic Publication: 2019 Nov 05 (Print Publication: 2019). - Publication Year :
- 2019
-
Abstract
- The heat-stable nucleoid-structuring (H-NS) protein is a global transcriptional regulator implicated in coordinating the expression of over 200 genes in Escherichia coli , including many involved in adaptation to osmotic stress. We have applied superresolved microscopy to quantify the intracellular and spatial reorganization of H-NS in response to a rapid osmotic shift. We found that H-NS showed growth phase-dependent relocalization in response to hyperosmotic shock. In stationary phase, H-NS detached from a tightly compacted bacterial chromosome and was excluded from the nucleoid volume over an extended period of time. This behavior was absent during rapid growth but was induced by exposing the osmotically stressed culture to a DNA gyrase inhibitor, coumermycin. This chromosomal compaction/H-NS exclusion phenomenon occurred in the presence of either potassium or sodium ions and was independent of the presence of stress-responsive sigma factor σ <superscript>S</superscript> and of the H-NS paralog StpA. IMPORTANCE The heat-stable nucleoid-structuring (H-NS) protein coordinates the expression of over 200 genes in E. coli , with a large number involved in both bacterial virulence and drug resistance. We report on the novel observation of a dynamic compaction of the bacterial chromosome in response to exposure to high levels of salt. This stress response results in the detachment of H-NS proteins and their subsequent expulsion to the periphery of the cells. We found that this behavior is related to mechanical properties of the bacterial chromosome, in particular, to how tightly twisted and coiled is the chromosomal DNA. This behavior might act as a biomechanical response to stress that coordinates the expression of genes involved in adapting bacteria to a salty environment.<br /> (Copyright © 2019 American Society for Microbiology.)
- Subjects :
- Adaptation, Physiological
Aminocoumarins pharmacology
Cations, Monovalent
Chromosomes, Bacterial metabolism
Chromosomes, Bacterial ultrastructure
DNA-Binding Proteins genetics
DNA-Binding Proteins metabolism
Escherichia coli genetics
Escherichia coli growth & development
Escherichia coli ultrastructure
Escherichia coli Proteins metabolism
Fimbriae Proteins metabolism
Molecular Chaperones genetics
Molecular Chaperones metabolism
Potassium metabolism
Protein Transport drug effects
Sigma Factor genetics
Sigma Factor metabolism
Sodium metabolism
Topoisomerase II Inhibitors pharmacology
Transcription, Genetic
Chromosomes, Bacterial drug effects
Escherichia coli drug effects
Escherichia coli Proteins genetics
Fimbriae Proteins genetics
Gene Expression Regulation, Bacterial
Osmotic Pressure
Potassium Chloride pharmacology
Subjects
Details
- Language :
- English
- ISSN :
- 1098-5530
- Volume :
- 201
- Issue :
- 23
- Database :
- MEDLINE
- Journal :
- Journal of bacteriology
- Publication Type :
- Academic Journal
- Accession number :
- 31481544
- Full Text :
- https://doi.org/10.1128/JB.00469-19