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Author Spotlight: Advancements in Understanding and Combatting Shigella Infections
Published on: February 9, 2024
Host Range Expansion of Shigella Phage Sf6 Evolves through Point Mutations in the Tailspike
Sundharraman Subramanian1, John A Dover1, Kristin N Parent1
1Department of Biochemistry and Molecular Biology, Michigan State Universitygrid.17088.36, East Lansing, Michigan, USA.
Abstract:
The first critical step in a virus's infection cycle is attachment to its host. This interaction is precise enough to ensure the virus will be able to productively infect the cell, but some flexibility can be beneficial to enable coevolution and host range switching or expansion. Bacteriophage Sf6 utilizes a two-step process to recognize and attach to its host Shigella flexneri. Sf6 first recognizes the lipopolysaccharide (LPS) of S. flexneri and then binds outer membrane protein (Omp) A or OmpC. This phage infects serotype Y strains but can also form small, turbid plaques on serotype 2a2; turbid plaques appear translucent rather than transparent, indicating greater survival of bacteria. Reduced plating efficiency further suggested inefficient infection. To examine the interactions between Sf6 and this alternate host, phages were experimentally evolved using mixed populations of S. flexneri serotypes Y and 2a2. The recovered mutants could infect serotype 2a2 with greater efficiency than the ancestral Sf6, forming clear plaques on both serotypes. All mutations mapped to two distinct regions of the receptor-binding tailspike protein: (i) adjacent to the LPS binding site near the N terminus; and (ii) at the distal, C-terminal tip of the protein. Although we anticipated interactions between the Sf6 tailspike and 2a2 O-antigen to be weak, LPS of this serotype appears to inhibit infection through strong binding of particles, effectively removing them from the environment. The mutations of the evolved strains reduce the inhibitory effect by either reducing electrostatic interactions with the O-antigen or increasing reliance on the Omp secondary receptors. IMPORTANCE Viruses depend on host cells to propagate themselves. In mixed populations and communities of host cells, finding these susceptible host cells may have to be balanced with avoiding nonhost cells. Alternatively, being able to infect new cell types can increase the fitness of the virus. Many bacterial viruses use a two-step process to identify their hosts, binding first to an LPS receptor and then to a host protein. For Shigella virus Sf6, the tailspike protein was previously known to bind the LPS receptor. Genetic data from this work imply the tailspike also binds to the protein receptor. By experimentally evolving Sf6, we also show that point mutations in this protein can dramatically affect the binding of one or both receptors. This may provide Sf6 flexibility in identifying host cells and the ability to rapidly alter its host range under selective pressure.
Insights
Bacteriophage Sf6 evolved to infect new Shigella flexneri strains by altering its tailspike protein. Mutations improved binding to alternate receptors, enhancing viral fitness and host range flexibility.
Area of Science:
- Microbiology
- Virology
- Molecular Biology
Background:
- Viral attachment to host cells is crucial for infection, often involving specific receptor interactions.
- Bacteriophage Sf6 uses a two-step attachment process, binding lipopolysaccharide (LPS) then outer membrane proteins (Omps) on *Shigella flexneri*.
- Sf6 primarily infects serotype Y but shows limited infectivity on serotype 2a2, indicating potential for host range expansion.
Purpose of the Study:
- To investigate the molecular mechanisms underlying Sf6's limited infectivity on *S. flexneri* serotype 2a2.
- To experimentally evolve Sf6 to enhance its infectivity on serotype 2a2 and identify underlying genetic changes.
- To understand how mutations in the tailspike protein affect receptor binding and viral host range.
Main Methods:
- Experimental evolution of bacteriophage Sf6 using mixed populations of *S. flexneri* serotypes Y and 2a2.
- Analysis of plaque morphology (clear vs. turbid) and plating efficiency to assess infectivity.
- Genetic mapping of mutations to the Sf6 tailspike protein, focusing on regions near LPS and Omp binding sites.
Main Results:
- Evolved Sf6 mutants exhibited significantly improved infectivity on serotype 2a2, forming clear plaques on both serotypes.
- Mutations were localized to two key regions of the tailspike protein: near the N-terminal LPS binding site and the C-terminal tip.
- Serotype 2a2 LPS inhibits infection via strong binding; evolved mutations reduce this inhibition by altering electrostatic interactions or increasing Omp reliance.
Conclusions:
- The tailspike protein of Sf6 is critical for binding both LPS and Omp receptors.
- Specific point mutations in the tailspike protein can dramatically alter receptor binding affinities, enabling adaptation to new hosts.
- Experimental evolution provides insights into viral adaptation, demonstrating how Sf6 can rapidly expand its host range under selective pressure.
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