9XSN | pdb_00009xsn

Crystal structure of the QatD nuclease from the Qat anti-phage system


Experimental Data Snapshot

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.42 Å
  • R-Value Free: 
    0.265 (Depositor), 0.268 (DCC) 
  • R-Value Work: 
    0.245 (Depositor), 0.247 (DCC) 
  • R-Value Observed: 
    0.246 (Depositor) 

Starting Model: in silico
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Literature

Structural and enzymatic insights into QatD, a dual-function TatD-like nuclease in the QatABCD anti-phage defense system.

Wang, X.Wang, N.Zhang, L.Zhang, M.Xu, Y.Cao, Z.Ge, H.Ma, J.

(2026) Nucleic Acids Res 54

  • DOI: https://doi.org/10.1093/nar/gkag776
  • Primary Citation Related Structures: 
    9XSN

  • PubMed Abstract: 

    The qatABCD system is a widespread anti-phage module featuring a core QatBC complex, but the specific biological role of its conserved component, QatD, has long been enigmatic. Here, we establish QatD is a TatD-family nuclease co-opted for antiviral defense. The crystal structure of Acinetobacter baumannii QatD reveals a classic TIM-barrel fold featuring a conserved "HxH" active-site motif characteristic of Type II TatD enzymes. Biochemically, QatD exhibits metal-dependent dual activity: a Mg2+-dependent 3'-5' exonuclease and a Ca2+-dependent apurinic/apyrimidinic (AP) endonuclease. We further demonstrate that QatD confers resistance against diverse bacteriophages in vivo, suggesting its defense function is tied to its catalytic activity. Crucially, we discovered that the nuclease activity of QatD is tightly inhibited by physiological concentrations of host nucleoside triphosphates (NTPs). Based on these findings, we propose a mechanistic model wherein the massive nucleotide consumption during rapid viral transcription and replication depletes local host NTP pools, thereby relieving the metabolic inhibition on QatD. The unleashed QatD subsequently targets and degrades single-stranded replication intermediates and AP-site-containing viral genomes. Our work not only elucidates the molecular basis of QatD activation but also highlights an elegant evolutionary strategy wherein bacteria couple metabolic sensing with ancient DNA repair machinery for specialized immune defense.


  • Organizational Affiliation
    • School of Life Sciences and Medical Engineering, Anhui University, Hefei 230601, China.

Macromolecule Content 

  • Total Structure Weight: 56.6 kDa 
  • Atom Count: 3,733 
  • Modeled Residue Count: 489 
  • Deposited Residue Count: 492 
  • Unique protein chains: 1

Macromolecules

Find similar proteins by:|  3D Structure
Entity ID: 1
MoleculeChains  Sequence LengthOrganismDetailsImage
Hydrolase TatD
A, B
246Acinetobacter baumanniiMutation(s): 0 
Gene Names: B9W25_08185CPI82_11510FPK63_02310GNY86_17025IAG11_08825
Entity Groups
Sequence Clusters30% Identity50% Identity70% Identity90% Identity95% Identity100% Identity
Sequence Annotations
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Reference Sequence

Experimental Data & Validation

Experimental Data

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.42 Å
  • R-Value Free:  0.265 (Depositor), 0.268 (DCC) 
  • R-Value Work:  0.245 (Depositor), 0.247 (DCC) 
  • R-Value Observed: 0.246 (Depositor) 
Space Group: P 21 21 21
Unit Cell:
Length ( Å )Angle ( ˚ )
a = 57.154α = 90
b = 64.994β = 90
c = 141.447γ = 90
Software Package:
Software NamePurpose
PHENIXrefinement
PDB_EXTRACTdata extraction
autoPXdata reduction
XSCALEdata scaling
PHASERphasing

Structure Validation

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Ligand Structure Quality Assessment 


Entry History 

& Funding Information

Deposition Data


Funding OrganizationLocationGrant Number
National Natural Science Foundation of China (NSFC)China32071215

Revision History  (Full details and data files)

  • Version 1.0: 2026-08-12
    Type: Initial release