8J4H

X-ray structure of a ferric ion-binding protein A (FbpA) from Vibrio metschnikovii in complex with Danshensu (DSS)


Experimental Data Snapshot

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.01 Å
  • R-Value Free: 0.209 
  • R-Value Work: 0.159 
  • R-Value Observed: 0.161 

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Literature

Molecular mechanism of Fe 3+ binding inhibition to Vibrio metschnikovii ferric ion-binding protein, FbpA, by rosmarinic acid and its hydrolysate, danshensu.

Lu, P.Jiang, J.Liu, C.Okuda, S.Itoh, H.Okamoto, K.Suzuki, M.Nagata, K.

(2024) Protein Sci 33: e4881-e4881

  • DOI: https://doi.org/10.1002/pro.4881
  • Primary Citation of Related Structures:  
    8J4H, 8J4J

  • PubMed Abstract: 

    Global warming has increased the growth of pathogenic Vibrio bacteria, which can cause foodborne illnesses and death. Vibrio bacteria require iron for growth and survival. They utilize a ferric ion-binding protein (FbpA) to bind and transport Fe 3+ into the cell. FbpA from Vibrio metschnikovii (Vm) is a potential target for inhibiting its growth. Rosmarinic acid (RA) can block the binding of VmFbpA to Fe 3+ ; however, the molecular mechanism of Fe 3+ binding and RA inhibition to VmFbpA is unclear. In this study, we used x-ray crystallography to determine the Fe 3+ -binding mode of VmFbpA and the mechanism of RA inhibition. The structures revealed that in the Fe 3+ bound form, Fe 3+ was coordinated to VmFbpA by two Tyr residues, two HCO 3 - ions, and two water molecules in a six-coordinated geometry. In contrast, in the inhibitor bound form, RA was initially bound to VmFbpA following gel filtration purification, but it was hydrolyzed to danshensu (DSS), which occupied the binding site as shown in an electron density map and reverse phase chromatography (RPC) analysis. Both RA and DSS exhibited a stronger binding affinity to VmFbpA, higher Fe 3+ reduction capacity, and more potent bacteriostatic effect on V. metschnikovii compared with caffeic acid (CA), another hydrolysis product of RA. These results provide insight into the mechanism of iron acquisition by V. metschnikovii and inhibition by RA and DSS. Our findings offer clues on the development of effective strategies to prevent Vibrio infections.


  • Organizational Affiliation

    Department of Applied Biological Chemistry, Graduate School of Agricultural and Life Science, The University of Tokyo, Tokyo, Japan.


Macromolecules
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Entity ID: 1
MoleculeChains Sequence LengthOrganismDetailsImage
Ferric iron ABC transporter iron-binding protein309Vibrio metschnikoviiMutation(s): 0 
Gene Names: VIB_000280
Entity Groups  
Sequence Clusters30% Identity50% Identity70% Identity90% Identity95% Identity100% Identity
Sequence Annotations
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  • Reference Sequence
Small Molecules
Ligands 1 Unique
IDChains Name / Formula / InChI Key2D Diagram3D Interactions
TO9 (Subject of Investigation/LOI)
Query on TO9

Download Ideal Coordinates CCD File 
B [auth A](2~{R})-3-[3,4-bis(oxidanyl)phenyl]-2-oxidanyl-propanoic acid
C9 H10 O5
PAFLSMZLRSPALU-MRVPVSSYSA-N
Experimental Data & Validation

Experimental Data

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.01 Å
  • R-Value Free: 0.209 
  • R-Value Work: 0.159 
  • R-Value Observed: 0.161 
  • Space Group: P 63 2 2
Unit Cell:
Length ( Å )Angle ( ˚ )
a = 90.233α = 90
b = 90.233β = 90
c = 149.475γ = 120
Software Package:
Software NamePurpose
REFMACrefinement
XDSdata scaling
MOLREPphasing
XDSdata reduction

Structure Validation

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Ligand Structure Quality Assessment 


Entry History & Funding Information

Deposition Data


Funding OrganizationLocationGrant Number
Japan Society for the Promotion of Science (JSPS)Japan20K22561
The Japan Science SocietyJapan2023-4016
Japan Science and TechnologyJapanJPMJSP2108
Japan Society for the Promotion of Science (JSPS)Japan18H02151

Revision History  (Full details and data files)

  • Version 1.0: 2024-01-10
    Type: Initial release
  • Version 1.1: 2024-02-07
    Changes: Database references