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Updated: Jun 12, 2025

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Following Cell-fate in E. coli After Infection by Phage Lambda
Published on: October 14, 2011
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A dimeric holin/antiholin complex controls lysis by phage T4.
Jan Michel Frederik Schwarzkopf1, Denise Mehner-Breitfeld1, Thomas Brüser1
1Institute of Microbiology, Leibniz Universität Hannover, Hanover, Germany.
Frontiers in Microbiology
|September 23, 2024
Summary
Phage antiholin RI inhibits holin T to prevent premature lysis, ensuring phage survival in low-concentration environments. This lysis inhibition (LIN) mechanism involves a membrane-anchored dimeric complex, not a tetramer.
Area of Science:
- Bacteriophage biology
- Molecular mechanisms of viral lysis
- Protein-protein interactions in viral replication
Background:
- Lytic phages control host cell lysis via holin-mediated endolysin release.
- Phage T4 antiholin RI inhibits holin T, preventing premature lysis and endolysin release.
- Antiholin RI mediates lysis inhibition (LIN) during phage superinfection, increasing survival in low phage concentrations.
Purpose of the Study:
- To investigate the functional relevance of the T4 holin T and antiholin RI complex in lysis inhibition (LIN).
- To determine the structural basis and mechanism of LIN mediated by the T/RI interaction.
Main Methods:
- Reconstitution of LIN in a phage-free system using purified RI, T, and endolysin.
- Targeted mutagenesis of RI and T proteins.
- Functional analyses of lysis inhibition and protein interactions.
- AlphaFold2 prediction of protein complex structure.
Main Results:
- Inactivation of the RI signal peptide cleavage site did not abolish LIN, indicating membrane-bound RI function.
- Only one of the two T/RI interfaces in the tetramer crystal structure is physiologically relevant.
- Mutations at the relevant interaction site prevented lysis, suggesting inhibition of holin oligomerization.
- LIN is mediated by a dimeric T/RI complex, which forms readily when both proteins are membrane-anchored.
Conclusions:
- Lysis inhibition (LIN) in phage T4 is mediated by a dimeric T/RI complex.
- The RI interaction likely inhibits lysis by blocking essential holin oligomerization for pore formation.
- The functional T/RI complex is dimeric and membrane-anchored, distinct from the previously observed tetrameric crystal structure.
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