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Updated: Sep 27, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Prediction of Prophages and Their Host Ranges in Pathogenic and Commensal Neisseria Species
Giulia Orazi1, Alan J Collins1, Rachel J Whitaker1,2
1Carl R. Woese Institute for Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.
Abstract:
The genus Neisseria includes two pathogenic species, N. gonorrhoeae and N. meningitidis, and numerous commensal species. Neisseria species frequently exchange DNA with one another, primarily via transformation and homologous recombination and via multiple types of mobile genetic elements (MGEs). Few Neisseria bacteriophages (phages) have been identified, and their impact on bacterial physiology is poorly understood. Furthermore, little is known about the range of species that Neisseria phages can infect. In this study, we used three virus prediction tools to scan 248 genomes of 21 different Neisseria species and identified 1,302 unique predicted prophages. Using comparative genomics, we found that many predictions are dissimilar from prophages and other MGEs previously described to infect Neisseria species. We also identified similar predicted prophages in genomes of different Neisseria species. Additionally, we examined CRISPR-Cas targeting of each Neisseria genome and predicted prophage. While CRISPR targeting of chromosomal DNA appears to be common among several Neisseria species, we found that 20% of the prophages we predicted are targeted significantly more than the rest of the bacterial genome in which they were identified (i.e., backbone). Furthermore, many predicted prophages are targeted by CRISPR spacers encoded by other species. We then used these results to infer additional host species of known Neisseria prophages and predictions that are highly targeted relative to the backbone. Together, our results suggest that we have identified novel Neisseria prophages, several of which may infect multiple Neisseria species. These findings have important implications for understanding horizontal gene transfer between members of this genus. IMPORTANCE Drug-resistant Neisseria gonorrhoeae is a major threat to human health. Commensal Neisseria species are thought to serve as reservoirs of antibiotic resistance and virulence genes for the pathogenic species N. gonorrhoeae and N. meningitidis. Therefore, it is important to understand both the diversity of mobile genetic elements (MGEs) that can mediate horizontal gene transfer within this genus and the breadth of species these MGEs can infect. In particular, few bacteriophages (phages) are known to infect Neisseria species. In this study, we identified a large number of candidate phages integrated in the genomes of commensal and pathogenic Neisseria species, many of which appear to be novel phages. Importantly, we discovered extensive interspecies targeting of predicted phages by Neisseria CRISPR-Cas systems, which may reflect their movement between different species. Uncovering the diversity and host range of phages is essential for understanding how they influence the evolution of their microbial hosts.
Insights
Researchers identified over 1,300 novel bacteriophages (phages) in Neisseria bacteria, revealing extensive interspecies targeting by CRISPR-Cas systems. This discovery enhances understanding of Neisseria horizontal gene transfer and phage host ranges.
Area of Science:
- Microbiology and Genomics
- Bacteriophage Research
- Horizontal Gene Transfer Mechanisms
Background:
- The genus Neisseria includes pathogenic species (N. gonorrhoeae, N. meningitidis) and commensals, frequently exchanging DNA via mobile genetic elements (MGEs).
- Few Neisseria bacteriophages (phages) are known, with limited understanding of their impact and host range.
- Commensal Neisseria species may act as reservoirs for antibiotic resistance and virulence genes for pathogenic Neisseria.
Purpose of the Study:
- To identify novel Neisseria bacteriophages (prophages) and understand their diversity and host range.
- To investigate the role of CRISPR-Cas systems in targeting Neisseria prophages and mediating interspecies gene transfer.
- To explore the implications for horizontal gene transfer within the Neisseria genus.
Main Methods:
- Bioinformatic analysis of 248 Neisseria genomes from 21 species using three virus prediction tools.
- Comparative genomics to analyze predicted prophages and their relationship to known MGEs.
- Examination of CRISPR-Cas targeting of bacterial genomes and predicted prophages.
Main Results:
- Identification of 1,302 unique predicted prophages, many dissimilar from previously described Neisseria phages.
- Detection of similar predicted prophages across different Neisseria species, suggesting potential interspecies infections.
- Significant CRISPR-Cas targeting of 20% of predicted prophages, with evidence of interspecies spacer acquisition.
Conclusions:
- The study identified numerous novel Neisseria prophages, expanding the known diversity of phages in this genus.
- CRISPR-Cas systems play a substantial role in targeting prophages, potentially influencing phage movement and host range.
- Findings provide crucial insights into Neisseria phage diversity, host interactions, and their impact on horizontal gene transfer.
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