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Updated: Jan 23, 2026

Molecular Evolution of the Tre Recombinase
Published on: May 29, 2008
Evolution of Superinfection Immunity in Cluster A Mycobacteriophages
Travis N Mavrich1, Graham F Hatfull2
1Department of Biological Sciences, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.
Abstract:
Temperate phages encode an immunity system to control lytic gene expression during lysogeny. This gene regulatory circuit consists of multiple interacting genetic elements, and although it is essential for controlling phage growth, it is subject to conflicting evolutionary pressures. During superinfection of a lysogen, the prophage's circuit interacts with the superinfecting phage's circuit and prevents lytic growth if the two circuits are closely related. The circuitry is advantageous since it provides the prophage with a defense mechanism, but the circuitry is also disadvantageous since it limits the phage's host range during superinfection. Evolutionarily related phages have divergent, orthogonal immunity systems that no longer interact and are heteroimmune, but we do not understand how immunity systems evolve new specificities. Here, we use a group of Cluster A mycobacteriophages that exhibit a spectrum of genetic diversity to examine how immunity system evolution impacts superinfection immunity. We show that phages with mesotypic (i.e., genetically related but distinct) immunity systems exhibit asymmetric and incomplete superinfection phenotypes. They form complex immunity networks instead of well-defined immunity groups, and mutations conferring escape (i.e., virulence) from homotypic or mesotypic immunity have various escape specificities. Thus, virulence and the evolution of new immune specificities are shaped by interactions with homotypic and mesotypic immunity systems.IMPORTANCE Many aspects regarding superinfection, immunity, virulence, and the evolution of immune specificities are poorly understood due to the lack of large collections of isolated and sequenced phages with a spectrum of genetic diversity. Using a genetically diverse collection of Cluster A phages, we show that the classical and relatively straightforward patterns of homoimmunity, heteroimmunity, and virulence result from interactions between homotypic and heterotypic phages at the extreme edges of an evolutionary continuum of immune specificities. Genetic interactions between mesotypic phages result in more complex mesoimmunity phenotypes and virulence profiles. These results highlight that the evolution of immune specificities can be shaped by homotypic and mesotypic interactions and may be more dynamic than previously considered.
Insights
Temperate phages use immunity systems for defense, but these systems can limit host range. Evolving immunity specificities in Cluster A mycobacteriophages reveal complex interactions shaping phage virulence and host defense.
Area of Science:
- Microbiology
- Evolutionary Biology
- Genetics
Background:
- Temperate phages possess immunity systems to regulate gene expression during lysogeny.
- These systems prevent lytic growth of superinfecting phages, especially related ones, offering defense but restricting host range.
- The evolution of new specificities in phage immunity systems remains poorly understood.
Purpose of the Study:
- To investigate how the evolution of immunity systems in Cluster A mycobacteriophages impacts superinfection immunity.
- To understand the mechanisms by which phages evolve new immune specificities.
- To explore the relationship between virulence and the evolution of immune specificities.
Main Methods:
- Utilized a genetically diverse collection of Cluster A mycobacteriophages.
- Analyzed interactions between phage immunity systems during superinfection.
- Examined mutations conferring escape from phage immunity.
Main Results:
- Phages with mesotypic (related but distinct) immunity systems display asymmetric and incomplete superinfection phenotypes.
- Complex immunity networks, rather than distinct groups, are formed by mesotypic phages.
- Mutations for virulence exhibit varied specificities in escaping homotypic and mesotypic immunity.
Conclusions:
- Interactions between homotypic and mesotypic phages shape the evolution of immune specificities and virulence.
- The evolution of phage immunity is a dynamic process influenced by interactions across an evolutionary continuum.
- Understanding these interactions is crucial for comprehending phage-host dynamics and defense mechanisms.
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