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Updated: Dec 6, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Mycobacterium Phage Butters-Encoded Proteins Contribute to Host Defense against Viral Attack
Catherine M Mageeney1, Hamidu T Mohammed1, Marta Dies2,3
1Department of Biological Sciences, Lehigh University, Bethlehem, Pennsylvania, USA.
Abstract:
A diverse set of prophage-mediated mechanisms protecting bacterial hosts from infection has been recently uncovered within cluster N mycobacteriophages isolated on the host, Mycobacterium smegmatis mc2155. In that context, we unveil a novel defense mechanism in cluster N prophage Butters. By using bioinformatics analyses, phage plating efficiency experiments, microscopy, and immunoprecipitation assays, we show that Butters genes located in the central region of the genome play a key role in the defense against heterotypic viral attack. Our study suggests that a two-component system, articulated by interactions between protein products of genes 30 and 31, confers defense against heterotypic phage infection by PurpleHaze (cluster A/subcluster A3) or Alma (cluster A/subcluster A9) but is insufficient to confer defense against attack by the heterotypic phage Island3 (cluster I/subcluster I1). Therefore, based on heterotypic phage plating efficiencies on the Butters lysogen, additional prophage genes required for defense are implicated and further show specificity of prophage-encoded defense systems.IMPORTANCE Many sequenced bacterial genomes, including those of pathogenic bacteria, contain prophages. Some prophages encode defense systems that protect their bacterial host against heterotypic viral attack. Understanding the mechanisms undergirding these defense systems is crucial to appreciate the scope of bacterial immunity against viral infections and will be critical for better implementation of phage therapy that would require evasion of these defenses. Furthermore, such knowledge of prophage-encoded defense mechanisms may be useful for developing novel genetic tools for engineering phage-resistant bacteria of industrial importance.
Insights
Cluster N prophage Butters uses a novel two-component system to defend its bacterial host, Mycobacterium smegmatis, against specific viral infections. This prophage-encoded defense mechanism highlights the complexity of bacterial immunity and phage therapy strategies.
Area of Science:
- Microbiology
- Bacteriology
- Virology
Background:
- Prophages, viral DNA integrated into bacterial genomes, can confer protective mechanisms against infections.
- Cluster N mycobacteriophages infecting *Mycobacterium smegmatis* exhibit diverse prophage-mediated defense strategies.
- Understanding these defense systems is crucial for phage therapy and engineering phage-resistant bacteria.
Purpose of the Study:
- To investigate a novel prophage-mediated defense mechanism in the cluster N prophage Butters.
- To identify the specific genes and molecular components responsible for this defense.
- To determine the specificity of the Butters prophage defense system against different phages.
Main Methods:
- Bioinformatics analysis of the Butters prophage genome.
- Phage plating efficiency experiments on Butters lysogens.
- Microscopy and immunoprecipitation assays to study protein interactions.
Main Results:
- Butters genes in the central genome region are essential for defense against heterotypic viral attack.
- A two-component system involving proteins from genes 30 and 31 confers partial defense against specific phages (PurpleHaze, Alma).
- Additional Butters genes are required for defense against other heterotypic phages (Island3), indicating defense specificity.
Conclusions:
- The Butters prophage employs a novel, gene-specific defense system against viral predation.
- Prophage-encoded immunity is complex and varies in its effectiveness against different phage types.
- This research provides insights into bacterial immunity and potential applications in phage therapy and biotechnology.
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