7V0F

Structure of 6-carboxy-5,6,7,8-tetrahydropterin synthase paralog QueD2 from Acinetobacter baumannii


Experimental Data Snapshot

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.35 Å
  • R-Value Free: 0.274 
  • R-Value Work: 0.237 
  • R-Value Observed: 0.239 

wwPDB Validation   3D Report Full Report


This is version 1.0 of the entry. See complete history


Literature

Metal retention and replacement in QueD2 protect queuosine-tRNA biosynthesis in metal-starved Acinetobacter baumannii.

Jordan, M.R.Gonzalez-Gutierrez, G.Trinidad, J.C.Giedroc, D.P.

(2022) Proc Natl Acad Sci U S A 119: e2213630119-e2213630119

  • DOI: https://doi.org/10.1073/pnas.2213630119
  • Primary Citation of Related Structures:  
    7V0F

  • PubMed Abstract: 

    In response to bacterial infection, the vertebrate host employs the metal-sequestering protein calprotectin (CP) to withhold essential transition metals, notably Zn(II), to inhibit bacterial growth. Previous studies of the impact of CP-imposed transition-metal starvation in A. baumannii identified two enzymes in the de novo biosynthesis pathway of queuosine-transfer ribonucleic acid (Q-tRNA) that become cellularly abundant, one of which is QueD2, a 6-carboxy-5,6,7,8-tetrahydropterin (6-CPH 4 ) synthase that catalyzes the initial, committed step of the pathway. Here, we show that CP strongly disrupts Q incorporation into tRNA. As such, we compare the Ab QueD2 "low-zinc" paralog with a housekeeping, obligatory Zn(II)-dependent enzyme QueD. The crystallographic structure of Zn(II)-bound Ab QueD2 reveals a distinct catalytic site coordination sphere and assembly state relative to QueD and possesses a dynamic loop, immediately adjacent to the catalytic site that coordinates a second Zn(II) in the structure. One of these loop-coordinating residues is an invariant Cys18, that protects QueD2 from dissociation of the catalytic Zn(II) while maintaining flux through the Q-tRNA biosynthesis pathway in cells. We propose a "metal retention" model where Cys18 introduces coordinative plasticity into the catalytic site which slows metal release, while also enhancing the metal promiscuity such that Fe(II) becomes an active cofactor. These studies reveal a complex, multipronged evolutionary adaptation to cellular Zn(II) limitation in a key Zn(II) metalloenzyme in an important human pathogen.


  • Organizational Affiliation

    Department of Chemistry, Indiana University, Bloomington, IN 47405.


Macromolecules
Find similar proteins by:  (by identity cutoff)  |  3D Structure
Entity ID: 1
MoleculeChains Sequence LengthOrganismDetailsImage
6-carboxy-5,6,7,8-tetrahydropterin synthase
A, B
200Acinetobacter baumannii ATCC 17978Mutation(s): 0 
Gene Names: 
EC: 4.1.2.50
UniProt
Find proteins for A0A081GYS3 (Acinetobacter baumannii)
Explore A0A081GYS3 
Go to UniProtKB:  A0A081GYS3
Entity Groups  
Sequence Clusters30% Identity50% Identity70% Identity90% Identity95% Identity100% Identity
UniProt GroupA0A081GYS3
Sequence Annotations
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  • Reference Sequence
Experimental Data & Validation

Experimental Data

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.35 Å
  • R-Value Free: 0.274 
  • R-Value Work: 0.237 
  • R-Value Observed: 0.239 
  • Space Group: I 4
Unit Cell:
Length ( Å )Angle ( ˚ )
a = 84.06α = 90
b = 84.06β = 90
c = 122.42γ = 90
Software Package:
Software NamePurpose
PHENIXrefinement
PHENIXrefinement
XDSdata reduction
XDSdata scaling
PHASERphasing

Structure Validation

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Entry History & Funding Information

Deposition Data


Funding OrganizationLocationGrant Number
National Institutes of Health/National Institute of General Medical Sciences (NIH/NIGMS)United StatesR35 GM118157
National Institutes of Health/National Institute Of Allergy and Infectious Diseases (NIH/NIAID)United StatesR01 AI110171
National Institutes of Health/National Institute of General Medical Sciences (NIH/NIGMS)United StatesT32 GM109825
National Institutes of Health/National Institute of General Medical Sciences (NIH/NIGMS)United StatesT32 GM131994

Revision History  (Full details and data files)

  • Version 1.0: 2022-12-07
    Type: Initial release