9N00 | pdb_00009n00

Cryo-EM Structure of Apo SeAvs7


Experimental Data Snapshot

  • Method: ELECTRON MICROSCOPY
  • Resolution: 2.72 Å
  • Aggregation State: PARTICLE 
  • Reconstruction Method: SINGLE PARTICLE 

wwPDB Validation 3D Report Full Report

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Literature

Diverse bacterial pattern recognition receptors sense the core phage proteome.

Lee, H.Luengo-Woods, S.Zhang, J.Makarova, K.S.Wolf, Y.I.Chiu, C.Evans, S.A.Chen, J.Xiao, H.Feng, L.Koonin, E.V.Gao, A.

(2026) Nature 

  • DOI: https://doi.org/10.1038/s41586-026-10852-6
  • Primary Citation Related Structures: 
    9N00, 9N01, 9YIX

  • PubMed Abstract: 

    Recognition of foreign molecules inside cells is critical for immunity across all domains of life. Proteins of the STAND NTPase superfamily 1,2 , including eukaryotic NOD-like receptors, play a central role in this process 3,4 . In bacteria and archaea, although several STAND families sense phage proteins 5-9 , their functional diversity remains largely unexplored. Here we conduct a systematic phylogenetic analysis of prokaryotic STAND NTPases and identify at least 90 structurally distinct families associated with antiviral defence. We first show that the uncharacterized Avs7 family recognizes the major capsid protein (MCP) of tailed phages. Three cryogenic electron microscopy structures of Salmonella enterica Avs7 reveal an asymmetric, butterfly-shaped tetramer that assembles stepwise through large, MCP-induced conformational changes, incorporating bacterial elongation factor Tu (EF-Tu) as a structural component that enhances defence. Using genetic screens with a library of 687 phage genes, we further show that 13 additional STAND families sense 13 conserved phage proteins, encompassing most of the core structural and replicative components of tailed phages. These include 2 distinct MCP-sensing families (Avs8 and Avs10) and 11 others (Avs11-21), which recognize the portal, portal adaptor, tail nozzle, head-tail connector, tail terminator, tail tube protein, tail assembly chaperone, tape measure protein, DNA polymerase, helicase/RecA-type ATPase and single-stranded DNA annealing protein, respectively. Together, our findings reveal a mechanism of host-factor repurposing and establish structure-based pattern recognition as a fundamental strategy of bacterial immunity.


  • Organizational Affiliation
    • Department of Biochemistry, Stanford University, Stanford, CA, USA.

Macromolecule Content 

  • Total Structure Weight: 173.15 kDa 
  • Atom Count: 11,190 
  • Modeled Residue Count: 1,397 
  • Deposited Residue Count: 1,523 
  • Unique protein chains: 1

Macromolecules

Find similar proteins by:|  3D Structure
Entity ID: 1
MoleculeChains  Sequence LengthOrganismDetailsImage
AAA family ATPase1,523Salmonella entericaMutation(s): 0 
Gene Names: DUC28_22665
UniProt
Find proteins for A0A5H7DAD8 (Salmonella enterica subsp. enterica serovar Tudu)
Explore A0A5H7DAD8 
Go to UniProtKB:  A0A5H7DAD8
Entity Groups
Sequence Clusters30% Identity50% Identity70% Identity90% Identity95% Identity100% Identity
UniProt GroupA0A5H7DAD8
Sequence Annotations
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Reference Sequence

Experimental Data & Validation

Experimental Data

  • Method: ELECTRON MICROSCOPY
  • Resolution: 2.72 Å
  • Aggregation State: PARTICLE 
  • Reconstruction Method: SINGLE PARTICLE 
EM Software:
TaskSoftware PackageVersion
MODEL REFINEMENTPHENIX
RECONSTRUCTIONcryoSPARC

Structure Validation

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Entry History 

& Funding Information

Deposition Data


Funding OrganizationLocationGrant Number
Not funded--

Revision History  (Full details and data files)

  • Version 1.0: 2026-08-26
    Type: Initial release