8PEU image
Entry Detail
PDB ID:
8PEU
EMDB ID:
Keywords:
Title:
Rho-ATPgS-Psu complex III
Biological Source:
Host Organism:
PDB Version:
Deposition Date:
2023-06-15
Release Date:
2024-06-26
Method Details:
Experimental Method:
Resolution:
3.70 Å
Aggregation State:
PARTICLE
Reconstruction Method:
SINGLE PARTICLE
Macromolecular Entities
Polymer Type:polypeptide(L)
Description:Transcription termination factor Rho
Chain IDs:A, B, C, D, E, F, G (auth: I), H (auth: J), I (auth: K), J (auth: L), K (auth: M), L (auth: N)
Chain Length:190
Number of Molecules:12
Biological Source:Escherichia coli
Polymer Type:polypeptide(L)
Description:Polarity suppression protein
Chain IDs:M (auth: a), N (auth: b), O (auth: c), P (auth: d), Q (auth: e), R (auth: f), S (auth: g), T (auth: h), U (auth: i), V (auth: j), W (auth: k), X (auth: l)
Chain Length:190
Number of Molecules:12
Biological Source:Enterobacteria phage P4
Primary Citation
The Psu protein of phage satellite P4 inhibits transcription termination factor rho by forced hyper-oligomerization.
Nat Commun 16 550 550 (2025)
PMID: 39788982 DOI: 10.1038/s41467-025-55897-9

Abstact

Many bacteriophages modulate host transcription to favor expression of their own genomes. Phage satellite P4 polarity suppression protein, Psu, a building block of the viral capsid, inhibits hexameric transcription termination factor, ρ, by presently unknown mechanisms. Our cryogenic electron microscopy structures of ρ-Psu complexes show that Psu dimers clamp two inactive, open ρ rings and promote their expansion to higher-oligomeric states. ATPase, nucleotide binding and nucleic acid binding studies revealed that Psu hinders ρ ring closure and traps nucleotides in their binding pockets on ρ. Structure-guided mutagenesis in combination with growth, pull-down, and termination assays further delineated the functional ρ-Psu interfaces in vivo. Bioinformatic analyses revealed that Psu is associated with a wide variety of phage defense systems across Enterobacteriaceae, suggesting that Psu may regulate expression of anti-phage genes. Our findings show that modulation of the ρ oligomeric state via diverse strategies is a pervasive gene regulatory principle in bacteria.

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