ArticleNucleic acids research2025
Genome-wide identification of bacterial genes contributing to nucleus-forming jumbo phage infection.
Article in Nucleic acids research, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- The biology of jumbo phages.Nature communications · 2026Review
- Rise of the viral giants: common themes underlying genome gigantism in eukaryotic viruses and bacteriophages.Current opinion in microbiology · 2026Review
- A Survey of the Microbiome, Culturome and ARG Profile of a Cohort of Chronic Diabetic Foot Lesions.APMIS : acta pathologica, microbiologica, et immunologica Scandinavica · 2026Article
- Isolation, Characterization, and Evaluation of a Lytic Jumbo Phage Z90 AgainstAntibiotics (Basel, Switzerland) · 2025Article
- Enhanced efficiency of virulent and temperate phage combination mediated through bacterial membrane vesicles.Journal of virology · 2025Article
- The complex developmental mechanisms of nucleus-forming jumbo phages.Current opinion in microbiology · 2025Review
- Abiotic environmental conditions determine phage resistance outcomes in a salt-marsh bacterium.Philosophical transactions of the Royal Society of London. Series B, Biological sciences · 2025Article
Corrections and comments
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Authors and funding
6 authors.
Funding
Abstract
The Chimalliviridae family of bacteriophages (phages) form a proteinaceous nucleus-like structure during infection of their bacterial hosts. This phage 'nucleus' compartmentalises phage DNA replication and transcription, and shields the phage genome from DNA-targeting defence systems such as CRISPR-Cas and restriction-modification. Their insensitivity to DNA-targeting defences makes nucleus-forming jumbo phages attractive for phage therapy. However, little is known about the bacterial gene requirements during the infectious cycle of nucleus-forming phages or how phage resistance may emerge. To address this, we used the Serratia nucleus-forming jumbo phage PCH45 and exploited a combination of high-throughput transposon mutagenesis and deep sequencing (Tn-seq), and CRISPR interference (CRISPRi). We identified over 90 host genes involved in nucleus-forming phage infection, the majority of which were either involved in the biosynthesis of the primary receptor, flagella, or influenced swimming motility. In addition, the bacterial outer membrane lipopolysaccharide contributed to PCH45 adsorption. Other unrelated Serratia-flagellotropic phages used similar host genes as the nucleus-forming phage, indicating that phage resistance can lead to cross-resistance against diverse phages. Our findings demonstrate that resistance to nucleus-forming jumbo phages can readily emerge via bacterial surface receptor mutation and this should be a major factor when designing strategies for their use in phage therapy.
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