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Updated: Dec 15, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Two Lineages of Pseudomonas aeruginosa Filamentous Phages: Structural Uniformity over Integration Preferences
Krzysztof Fiedoruk1, Magdalena Zakrzewska1, Tamara Daniluk1
1Department of Medical Microbiology and Nanobiomedical Engineering, Medical University of Białystok, Poland.
Abstract:
Pseudomonas aeruginosa filamentous (Pf) bacteriophages are important factors contributing to the pathogenicity of this opportunistic bacterium, including biofilm formation and suppression of bacterial phagocytosis by macrophages. In addition, the capacity of Pf phages to form liquid crystal structures and their high negative charge density makes them potent sequesters of cationic antibacterial agents, such as aminoglycoside antibiotics or host antimicrobial peptides. Therefore, Pf phages have been proposed as a potential biomarker for risk of antibiotic resistance development. The majority of studies describing biological functions of Pf viruses have been performed with only three of them: Pf1, Pf4, and Pf5. However, our analysis revealed that Pf phages exist as two evolutionary lineages (I and II), characterized by substantially different structural/morphogenesis properties, despite sharing the same integration sites in the host chromosomes. All aforementioned model Pf phages are members of the lineage I. Hence, it is reasonable to speculate that their interactions with P. aeruginosa and impact on its pathogenicity may be not completely extrapolated to the lineage II members. Furthermore, in order to organize the present numerical nomenclature of Pf phages, we propose a more informative approach based on the insertion sites, that is, Pf-tRNA-Gly, -Met, -Sec, -tmRNA, and -DR (direct repeats), which are fully compatible with one of five types of tyrosine integrases/recombinases XerC/D carried by these viruses. Finally, we discuss possible evolutionary mechanisms behind this division and consequences from the perspective of virus-virus, virus-bacterium, and virus-human interactions.
Insights
Pseudomonas aeruginosa filamentous phages (Pf) influence bacterial pathogenicity and antibiotic resistance. New research reveals two distinct Pf phage lineages with different properties, impacting their interactions with bacteria and humans.
Area of Science:
- Microbiology
- Virology
- Genetics
Background:
- Pseudomonas aeruginosa filamentous phages (Pf) contribute to pathogenicity, biofilm formation, and immune evasion.
- Pf phages sequester cationic antimicrobials, suggesting their role as biomarkers for antibiotic resistance.
- Existing research primarily focuses on Pf1, Pf4, and Pf5, neglecting potential diversity.
Purpose of the Study:
- To investigate the evolutionary lineages of Pf phages.
- To characterize the structural and morphogenesis differences between lineages.
- To propose a new nomenclature system for Pf phages based on integration sites.
Main Methods:
- Bioinformatic analysis of Pf phage genomes.
- Comparative analysis of structural and morphogenesis properties.
- Phylogenetic analysis to identify evolutionary lineages.
Main Results:
- Pf phages are classified into two distinct evolutionary lineages (I and II).
- Lineage I and II phages exhibit significant differences in structural and morphogenesis properties.
- A novel nomenclature system based on integration sites (e.g., Pf-tRNA-Gly) and tyrosine integrases (XerC/D) is proposed.
Conclusions:
- The two Pf phage lineages have distinct biological characteristics, necessitating further study.
- Current understanding based on lineage I phages may not apply to lineage II.
- The proposed nomenclature provides a more informative framework for Pf phage classification and research.
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