Literature DB >> 10049391

Direct selection for mutators in Escherichia coli.

J H Miller1, A Suthar, J Tai, A Yeung, C Truong, J L Stewart.   

Abstract

We have constructed strains that allow a direct selection for mutators of Escherichia coli on a single plate medium. The plate selection is based on using two different markers whose reversion is enhanced by a given mutator. Plates containing limiting amounts of each respective nutrient allow the growth of ghost colonies or microcolonies that give rise to full-size colonies only if a reversion event occurs. Because two successive mutational events are required, mutator cells are favored to generate full-size colonies. Reversion of a third marker allows direct visualization of the mutator phenotype by the large number of blue papillae in the full-size colonies. We also describe plate selections involving three successive nutrient markers followed by a fourth papillation step. Different frameshift or base substitution mutations are used to select for mismatch-repair-defective strains (mutHLS and uvrD). We can detect and monitor mutator cells arising spontaneously, at frequencies lower than 10(-5) in the population. Also, we can measure a mutator cascade, in which one type of mutator (mutT) generates a second mutator (mutHLS) that then allows stepwise frameshift mutations. We discuss the relevance of mutators arising on a single medium as a result of cells overcoming successive growth barriers to the development and progression of cancerous tumors, some of which are mutator cell lines.

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Year:  1999        PMID: 10049391      PMCID: PMC93549     

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  65 in total

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  20 in total

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8.  Optimization of DNA polymerase mutation rates during bacterial evolution.

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Review 9.  Mutators and hypermutability in bacteria: the Escherichia coli paradigm.

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Review 10.  Hypermutation and stress adaptation in bacteria.

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Journal:  J Genet       Date:  2011-08       Impact factor: 1.166

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