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A general mechanism for viral resistance to suicide gene expression
J J Bull1, M R Badgett, I J Molineux
1Section of Integrative Biology, University of Texas, Austin 78712-1023, USA. bull@bull.biosci.utexas.edu
Abstract:
Bacteriophage T7 was challenged with either of two toxic genes expressed from plasmids. Each plasmid contained a different gene downstream of a T7 promoter; cells harboring each plasmid caused an infection by wild-type T7 to abort. T7 evolved resistance to both inhibitors by avoidance of the plasmid expression system rather than by blocking or bypassing the effects of the specific toxic gene product. Resistance was due to a combination of mutations in the T7 RNA polymerase and other genes expressed at the same time as the polymerase. Mutations mapped to sites that are unlikely to alter polymerase specificity for its cognate promoter but the basis for discrimination between phage and plasmid promoters in vivo was not resolved. A reporter assay indicated that, relative to wild-type phage, gene expression from the plasmid was diminished several-fold in cells infected by the evolved phages. A recombinant phage, derived from the original mutant but lacking a mutation in the gene for RNA polymerase, exhibited intermediate activity in the reporter assay and intermediate resistance to the toxic gene cassettes. Alterations in both RNA polymerase and a second gene are thus responsible for resistance. These findings have broad evolutionary parallels to other systems in which viral inhibition is activated by viral regulatory signals such as defective-interfering particles, and they may have mechanistic parallels to the general phenomena of position effects and gene silencing.
Insights
Bacteriophage T7 evolved resistance to toxic genes by avoiding plasmid expression, not by direct inhibition. Mutations in T7 RNA polymerase and other genes enabled this resistance, impacting gene expression.
Area of Science:
- Microbiology
- Molecular Biology
- Evolutionary Biology
Background:
- Bacteriophage T7 infections can be inhibited by toxic gene expression from plasmids.
- Understanding phage resistance mechanisms is crucial for controlling viral infections and gene expression systems.
Purpose of the Study:
- To investigate the evolutionary strategies of bacteriophage T7 in response to toxic gene expression.
- To identify the genetic basis of T7 resistance to plasmid-encoded inhibitors.
Main Methods:
- Challenging bacteriophage T7 with plasmids expressing toxic genes.
- Evolving resistant T7 strains through serial infections.
- Mapping resistance mutations using genetic analysis.
- Assessing gene expression using a reporter assay.
Main Results:
- T7 evolved resistance by altering its expression system, not by neutralizing toxic proteins.
- Resistance resulted from mutations in T7 RNA polymerase and other co-expressed genes.
- Gene expression from the toxic plasmid was significantly reduced in evolved T7 infections.
Conclusions:
- Bacteriophage T7 resistance to toxic genes is achieved through regulatory changes, specifically by downregulating plasmid-based gene expression.
- Mutations in both T7 RNA polymerase and a second gene contribute to this resistance phenotype.
- These findings offer insights into viral evolution, gene silencing, and position effects.