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bioRxiv · 10.64898/2026.03.06.709160

Genome delivery of a contractile tailed phage and its superinfection exclusion mechanism

Abstract

Successful viral infection requires efficient adsorption to the target cell, followed by membrane penetration for genome translocation into the host cytoplasm. Bacteriophage T4 initiates infection by binding to Escherichia coli receptors, triggering sequential conformational changes that culminate in genome delivery through viral channels spanning the host cell envelope. Here, we resolved structures of bacteriophage T4 at discrete stages. This revealed how long tail fiber extension affects the baseplate to initiate tail contraction, and the channel formation by the tape measure protein for genome translocation. We further demonstrate that the virus-encoded superinfection exclusion protein Imm binds to the tape measure protein to prevent secondary infections. Our findings offer insights into the coordinated process of genome delivery and phage-encoded superinfection exclusion proteins that prevent genome translocation.

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BibTeXRIS

Roa-Eguiara, A., Marin-Arraiza, L., Klein-Sousa, V., Santiveri, M., Rutbeek, N. R., Piel, D., Pape, T., Sofos, N., Hendriks, I. A., Nielsen, M. L., Hu, H., Harms, A., Taylor, N. M. I.. 2026-03-06. Genome delivery of a contractile tailed phage and its superinfection exclusion mechanism. https://doi.org/10.64898/2026.03.06.709160

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