Active Infection & Immunity Cells, Biochemistry & Physiology

How do temperate phages acquire moonlighting proteins as directionality factors for their large serine integrases?

In plain English

AI plain-English summary

Bacteria-infecting viruses called phages carry a genetic switch that lets them either hide quietly inside a bacterium or burst out to kill it, and this project asks how that switch evolves. The switch relies on two proteins working together: one cuts and pastes DNA, while a second "directionality factor" tells it whether to insert the viral genome into the bacterium or cut it back out. Phages seem to repurpose existing proteins for this second role—a phenomenon called moonlighting—but how they manage this is unknown. Understanding this process fills a gap in fundamental biology: how viruses evolve new protein partnerships. This is curiosity-driven fundamental science with no immediate practical application. However, phages are being developed as precision tools to kill antibiotic-resistant bacteria, and their genetic switches are already used in synthetic biology to build biological circuits. A clearer picture of how these switches evolve could eventually help researchers design more stable or controllable phage therapies, or engineer better genetic tools for biotechnology. For now, the work asks a basic question about molecular evolution—how a virus repurposes a protein to gain a new function.

View original technical description
Site-specific recombination catalysed by large serine recombinases (LSRs) is used by temperate phages and mobile elements to insert their genomes into that of their host bacteria as stably integrated prophages during lysogeny. During the lytic phase, a second protein called the recombination directionality factor (RDF) binds the LSR and modifies its specificity to promote the reverse ‘excision’ reaction. The diversity of proteins used by LSRs as RDFs raises the question of how phages evolve functional RDF – LSR pairs. One likely mechanism is that phages repurpose existing proteins to acquire a 'moonlighting' role as RDFs; this hypothesis is supported by demonstration of dual functions of some known RDFs. The aim of this proposal is to use computational and biochemical approaches to understand how LSRs recruit phage (or host) proteins to function as RDFs. I propose that phage LSRs acquire RDFs by mutating their RDF-binding interface to recognize existing phage proteins with suitable structural features and temporal expression profiles to allow them to moonlight as RDFs. To validate this new paradigm, I will show that mutating the RDF-interacting interface of one or more well-studied LSRs can facilitate acquisition of a novel RDF, or recognition of a non-cognate RDF protein.

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Researchers

Femi Olorunniji (EPMC Awardee)Mona Solvoll (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

21-BBSRC/NSF-BIO: Developing large serine integrases as tools for constructing and manipulating synthetic replicons.
The structural basis for the mechanism of directional DNA recombination
Helper and satellite pathogenicity islands: the discovery of two novel subcellular elements with a huge impact on bacterial pathogenesis and evolution
Refactoring bacteriophage as repurposed nanomachines
Molecular mimicry in the loading of a bacterial recombinase by a phage mediator

Original classification

Wellcome Accelerator Awards

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