Related Experiment Video
Updated: Aug 14, 2026

Isolation of Fidelity Variants of RNA Viruses and Characterization of Virus Mutation Frequency
Published on: June 16, 2011
DNA rearrangements associated with reversion of bacteriophage Mu-induced mutations
Abstract:
Excision of transposable genetic elements from host DNA is different from the classical prophage lambda type of excision in that it occurs at low frequency and is mostly imprecise; only a minority of excision events restores the wild-type host sequences. In bacteriophage Mu, a highly efficient transposon, imprecise excision is 10-100 times more frequent than precise excision. We have examined a large number of these excision events by starting with mucts X mutants located in the Z gene of the lac operon of Escherichia coli. Mucts X mutants are defective prophages whose excision occurs at a measurable frequency. Imprecise excision was monitored by selecting for melibiose+ (Mel+) phenotype, which requires only a functioning lacY gene. Mel+ revertants exhibit an array of DNA rearrangements and fall in four main classes, the predominant one being comprised of revertants that have no detectable Mu DNA. Most of these revertants can further revert to Lac+. Perhaps 5 base-pair duplications, originally present at prophage-host junctions, are left in these lacZ-Y+ revertants, and they can be further repaired to lacZ+. Another class has, in addition to the loss of Mu DNA, deletions that extend generally, but not always, to only one side of the prophage. The other two classes of revertants, surprisingly, still have Mu DNA in the lacZ gene. One class has deletions in the Z gene, whereas, no deletions can be detected in the other. Many of the revertants in the last class can further revert to lacZ+, indicating that the lacY gene must have been turned on by a rearrangement within Mu DNA. Apparently, all of the detectable precise and most of the imprecise excision events require functioning of the Mu A gene. We suggest that a block in large-scale Mu replication allows the excision process to proceed.
Insights
Bacteriophage Mu DNA excision is often imprecise, leading to DNA rearrangements. Most imprecise excision events remove Mu DNA, but some leave remnants, suggesting a role for Mu A gene function and replication blocks.
Area of Science:
- Molecular Biology
- Genetics
- Microbiology
Background:
- Transposable genetic elements, like bacteriophage Mu, undergo DNA excision from host genomes.
- Excision events are typically imprecise and occur at low frequencies, unlike classical prophage lambda excision.
- Bacteriophage Mu exhibits a high frequency of imprecise excision compared to precise excision.
Purpose of the Study:
- To investigate the mechanisms and outcomes of imprecise excision of bacteriophage Mu DNA.
- To characterize the DNA rearrangements resulting from Mu DNA excision in Escherichia coli.
- To identify genetic factors influencing the frequency and precision of Mu DNA excision.
Main Methods:
- Utilizing mucts X mutants of bacteriophage Mu in the lac operon of Escherichia coli.
- Monitoring imprecise excision by selecting for melibiose+ (Mel+) phenotype, indicating lacY gene function.
- Analyzing DNA rearrangements in Mel+ revertants through genetic and molecular methods.
Main Results:
- Imprecise excision of Mu DNA is 10-100 times more frequent than precise excision.
- Four main classes of Mel+ revertants were identified, with the predominant class showing no detectable Mu DNA.
- Some revertants retained Mu DNA within the lacZ gene, exhibiting deletions or rearrangements within Mu DNA.
- Precise and most imprecise excision events require the functional Mu A gene.
Conclusions:
- Imprecise excision of bacteriophage Mu results in diverse DNA rearrangements, often leading to loss of Mu DNA.
- The Mu A gene plays a crucial role in both precise and imprecise Mu DNA excision.
- A potential block in large-scale Mu replication may facilitate the excision process.
Related Concept Videos
Viral Recombination
Viral Mutations
Conservative Site-specific Recombination and Phase Variation
The recognition sites for Cre recombinase called LoxP...
Mutations in Microorganisms
Viral Replication: Lysogenic Cycle
DNA Bacteriophages

