Secondary structures as predictors of mutation potential in the lacZ gene of Escherichia coli
- 1 July 2007
- journal article
- Published by Microbiology Society in Microbiology
- Vol. 153 (7) , 2180-2189
- https://doi.org/10.1099/mic.0.2007/005470-0
Abstract
Four independent nonsense mutations were engineered into the Escherichia coli chromosomal lacZ gene, and reversion rates back to LacZ+ phenotypes were determined. The mutation potential of bases within putative DNA secondary structures formed during transcription was predicted by a sliding-window analysis that simulates successive folding of the ssDNA creating these structures. The relative base mutabilities predicted by the mfg computer program correlated with experimentally determined reversion rates in three of the four mutants analysed. The nucleotide changes in revertants at one nonsense codon site consisted of a triple mutation, presumed to occur by a templated repair mechanism. Additionally, the effect of supercoiling on mutation was investigated and, in general, reversion rates increased with higher levels of negative supercoiling. Evidence indicates that predicted secondary structures are in fact formed in vivo and that directed mutation in response to starvation stress is dependent upon the exposure of particular bases, the stability of the structures in which these bases are unpaired and the level of DNA supercoiling within the cell.Keywords
This publication has 40 references indexed in Scilit:
- Gene replacement without selection: regulated suppression of amber mutations in Escherichia coliGene, 2003
- Increased Transcription Levels Induce Higher Mutation Rates in a Hypermutating Cell LineThe Journal of Immunology, 2001
- Somatic Hypermutation in the Heavy Chain Locus Correlates with TranscriptionImmunity, 1998
- Association of Increased Spontaneous Mutation Rates with High Levels of Transcription in YeastScience, 1995
- Transcriptionally driven cruciform formationin vivoNucleic Acids Research, 1992
- DNA supercoiling and the anaerobic and growth phase regulation of tonB gene expressionJournal of Bacteriology, 1988
- A physiological role for DNA supercoiling in the osmotic regulation of gene expression in S. typhimurium and E. coliCell, 1988
- Changes in the linking number of supercoiled DNA accompany growth transitions in Escherichia coliJournal of Bacteriology, 1987
- Universal code equivalent of a yeast mitochondrial intron reading frame is expressed into E. coli as a specific double strand endonucleaseCell, 1986
- Regulation of bacterial DNA supercoiling: plasmid linking numbers vary with growth temperature.Proceedings of the National Academy of Sciences, 1984