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Author Spotlight: Advancements in Understanding and Combatting Shigella Infections
Published on: February 9, 2024
Shigella Phages Isolated during a Dysentery Outbreak Reveal Uncommon Structures and Broad Species Diversity
Sarah M Doore1, Jason R Schrad2, William F Dean2
1BEACON Center for the Study of Evolution in Action, Michigan State University, East Lansing, Michigan, USA.
Abstract:
In 2016, Michigan experienced the largest outbreak of shigellosis, a type of bacillary dysentery caused by Shigella spp., since 1988. Following this outbreak, we isolated 16 novel Shigella-infecting bacteriophages (viruses that infect bacteria) from environmental water sources. Most well-known bacteriophages infect the common laboratory species Escherichia coli and Salmonella enterica, and these phages have built the foundation of molecular and bacteriophage biology. Until now, comparatively few bacteriophages were known to infect Shigella spp., which are close relatives of E. coli We present a comprehensive analysis of these phages' host ranges, genomes, and structures, revealing genome sizes and capsid properties that are shared by very few previously described phages. After sequencing, a majority of the Shigella phages were found to have genomes of an uncommon size, shared by only 2% of all reported phage genomes. To investigate the structural implications of this unusual genome size, we used cryo-electron microscopy to resolve their capsid structures. We determined that these bacteriophage capsids have similarly uncommon geometry. Only two other viruses with this capsid structure have been described. Since most well-known bacteriophages infect Escherichia or Salmonella, our understanding of bacteriophages has been limited to a subset of well-described systems. Continuing to isolate phages using nontraditional strains of bacteria can fill gaps that currently exist in bacteriophage biology. In addition, the prevalence of Shigella phages during a shigellosis outbreak may suggest a potential impact of human health epidemics on local microbial communities.IMPORTANCEShigella spp. bacteria are causative agents of dysentery and affect more than 164 million people worldwide every year. Despite the need to combat antibiotic-resistant Shigella strains, relatively few Shigella-infecting bacteriophages have been described. By specifically looking for Shigella-infecting phages, this work has identified new isolates that (i) may be useful to combat Shigella infections and (ii) fill gaps in our knowledge of bacteriophage biology. The rare qualities of these new isolates emphasize the importance of isolating phages on "nontraditional" laboratory strains of bacteria to more fully understand both the basic biology and diversity of bacteriophages.
Insights
Researchers discovered 16 novel bacteriophages targeting Shigella bacteria following a 2016 outbreak. These phages possess rare genome sizes and capsid structures, expanding knowledge of bacteriophage biology and potentially aiding in combating Shigella infections.
Area of Science:
- Microbiology
- Virology
- Bacteriophage Biology
Background:
- Shigellosis, caused by Shigella bacteria, is a significant global health concern, with antibiotic resistance necessitating alternative treatments.
- Bacteriophages (phages) are viruses that infect bacteria and are potential therapeutic agents, but few have been characterized for Shigella species.
- Previous research on phages has primarily focused on those infecting Escherichia coli and Salmonella enterica, limiting the understanding of phage diversity.
Purpose of the Study:
- To isolate and characterize novel bacteriophages that infect Shigella species.
- To analyze the genomic and structural properties of these newly discovered phages.
- To explore the potential of these phages in combating Shigella infections and advancing bacteriophage biology.
Main Methods:
- Isolation of bacteriophages from environmental water sources following a Shigella outbreak.
- Whole-genome sequencing of isolated phages.
- Cryo-electron microscopy for structural analysis of phage capsids.
- Host range determination for the identified phages.
Main Results:
- Sixteen novel bacteriophages infecting Shigella were successfully isolated.
- A majority of these phages exhibited uncommon genome sizes, found in only 2% of reported phage genomes.
- Cryo-electron microscopy revealed unique capsid geometries, with only two other known viruses sharing this structure.
- The phages demonstrated diverse host ranges, infecting various Shigella strains.
Conclusions:
- The identified Shigella-infecting bacteriophages possess rare genomic and structural characteristics, expanding the known diversity of bacteriophages.
- These novel phages represent potential candidates for developing therapies against antibiotic-resistant Shigella infections.
- The study highlights the importance of isolating phages from non-traditional bacterial hosts to enrich the understanding of bacteriophage biology and diversity.
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