Systematic mapping of bacteriophage gene essentiality with HIDEN-SEQ

Abstract The arms race of bacteriophages and their bacterial hosts has inspired major breakthroughs in biotechnology and shaped phages as fierce predators with great clinical potential to fight multidrug-resistant bacterial pathogens. However, the large amount of genes of unknown function in phage genomes remains a major obstacle for the molecular understanding of phage–host interactions. Here we present HIDEN-SEQ (hidden Acr-enabled transposon-insertion sequencing), a transposon-insertion sequencing method for phages that systematically links viral genes to selectable phenotypes. Using model phage T4, we show that HIDEN-SEQ readily reproduces the gene essentiality map established over decades of research. Our method is easily portable across diverse non-model phages and reveals conditionally essential genes in multiple bacterial hosts and growth conditions, including previously unknown antidefence factors that we matched to specific antiviral defences. We anticipate that HIDEN-SEQ will be leveraged to reveal functions of viral genes with direct relevance for microbial ecology, biotechnology and phage therapy.

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Publication Details

Journal
Nature Microbiology
Published
2026-09-25
DOI
https://doi.org/10.1038/s41564-026-02455-8
Citations
1
Primary Topic
Bacteriophages and microbial interactions
Type
article
Field-Weighted Citation Impact
5.17
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article

Systematic mapping of bacteriophage gene essentiality with HIDEN-SEQ

Christoph Dehio, Damien Piel, Jan‐Willem Veening, Kathrin Bausch et al.
1 citations
Nature Microbiology
Bacteriophages and microbial interactions
5.17
article

Systematic mapping of bacteriophage gene essentiality with HIDEN-SEQ

Christoph Dehio, Damien Piel, Jan‐Willem Veening, Kathrin Bausch, Sarah Tschudin‐Sutter, Monica Ortelli, Alexander Harms, Dorentina Humolli, Jessica Ransome
article en
1 citations

Abstract

Abstract The arms race of bacteriophages and their bacterial hosts has inspired major breakthroughs in biotechnology and shaped phages as fierce predators with great clinical potential to fight multidrug-resistant bacterial pathogens. However, the large amount of genes of unknown function in phage genomes remains a major obstacle for the molecular understanding of phage–host interactions. Here we present HIDEN-SEQ (hidden Acr-enabled transposon-insertion sequencing), a transposon-insertion sequencing method for phages that systematically links viral genes to selectable phenotypes. Using model phage T4, we show that HIDEN-SEQ readily reproduces the gene essentiality map established over decades of research. Our method is easily portable across diverse non-model phages and reveals conditionally essential genes in multiple bacterial hosts and growth conditions, including previously unknown antidefence factors that we matched to specific antiviral defences. We anticipate that HIDEN-SEQ will be leveraged to reveal functions of viral genes with direct relevance for microbial ecology, biotechnology and phage therapy.

Nature Microbiology
University of Basel (CH), University Hospital of Basel (CH), ETH Zurich (CH), University of Lausanne (CH)
Openalex Percentile: Top 4%
Bacteriophages and microbial interactions
5.17
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Systematic mapping of bacteriophage gene essentiality with HIDEN-SEQ — Christoph Dehio, Damien Piel, et al. · Nature Microbiology (2026) | TGRS Research Map | TGRS