9OME | pdb_00009ome

CryoEM structure of FPM13

  • Classification: METAL BINDING PROTEIN
  • Organism(s): Francisella
  • Mutation(s): No 

  • Deposited: 2025-05-13 Released: 2026-03-18 
  • Deposition Author(s): Liu, X., Zhou, Z.H., Clemens, D.L., Lee, B.Y., Horwitz, M.A.
  • Funding Organization(s): National Institutes of Health/National Institute Of Allergy and Infectious Diseases (NIH/NIAID), National Institutes of Health/National Institute of General Medical Sciences (NIH/NIGMS)

Experimental Data Snapshot

  • Method: ELECTRON MICROSCOPY
  • Resolution: 3.60 Å
  • Aggregation State: PARTICLE 
  • Reconstruction Method: SINGLE PARTICLE 

wwPDB Validation 3D Report Full Report

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This is version 1.1 of the entry. See complete history

Literature

Discovery and cryoEM structure of FPM13, a periplasmic metalloprotein unique to Francisella.

Clemens, D.L.Lee, B.Y.Liu, X.Zhou, Z.H.Horwitz, M.A.

(2026) PLoS Pathog 22: e1014024-e1014024

  • DOI: https://doi.org/10.1371/journal.ppat.1014024
  • Primary Citation Related Structures: 
    9OME

  • PubMed Abstract: 

    We report the identification and cryoEM structure of the Francisella protein FTN_1118, a previously uncharacterized 13 kDa periplasmic protein unique to the Francisella genus. The protein was serendipitously discovered during purification of Francisella type VI secretion system (T6SS) effector proteins and is hereby designated as FPM13 (Francisella Periplasmic Metalloprotein, 13 kDa) based on its cellular and biochemical properties. Identified by the cryoID approach based on our cryoEM density map, FPM13 exists naturally as a cylindrical 18-mer complex with 9-fold dihedral symmetry, formed by stacking two donut-shaped nonamers head-to-head. Measuring ~8 nm in height and outer diameter with a 3.5 nm central channel, the complex features a double-layered wall comprising an inner β-sheet core and an outer α-helical shell. Each FPM13 monomer adopts a compact fold comprising an N-terminus β-strand, an α-helix and two additional β strands at the C-terminus. Inter-ring loop interactions, hydrophobic contacts, and electrostatic interactions between adjacent subunits stabilize the assembly. Biochemical analyses, including APEX-biotinylation and Triton X-114 phase partitioning, confirmed FPM13 as a soluble periplasmic protein. Inductively coupled plasma mass spectrometry (ICP-MS) revealed FPM13 binds iron, copper, and zinc, with alanine substitution of predicted metal-binding cysteine and histidine residues abolishing this capability. Biochemical assays further revealed that wild-type FPM13 catalyzes disulfide bond formation and rescues alkaline phosphatase from reductive inactivation, indicating a role in maintaining periplasmic disulfide bonds. The metal-binding disruption mutant loses this oxidation activity. Deletion of FPM13 in Francisella novicida caused no growth defects in vitro, in macrophages, or in mice under tested conditions, suggesting functional redundancy may compensate for its absence. This study unveils a novel metalloprotein and demonstrates the power of cryoID in identifying uncharacterized proteins directly from structural data, offering new insights into Francisella biology.


  • Organizational Affiliation
    • Department of Medicine, University of California, Los Angeles (UCLA), Los Angeles, California, United States of America.

Macromolecule Content 

  • Total Structure Weight: 234.86 kDa 
  • Atom Count: 10,602 
  • Modeled Residue Count: 1,260 
  • Deposited Residue Count: 1,998 
  • Unique protein chains: 1

Macromolecules

Find similar proteins by:|  3D Structure
Entity ID: 1
MoleculeChains  Sequence LengthOrganismDetailsImage
Lipoprotein
A, B, C, D, E
A, B, C, D, E, F, G, H, I, J, K, L, M, N, O, P, Q, R
111FrancisellaMutation(s): 0 
UniProt
Find proteins for A0Q6Y9 (Francisella tularensis subsp. novicida (strain ATCC 15482 / CCUG 33449 / U112))
Explore A0Q6Y9 
Go to UniProtKB:  A0Q6Y9
Entity Groups
Sequence Clusters30% Identity50% Identity70% Identity90% Identity95% Identity100% Identity
UniProt GroupA0Q6Y9
Sequence Annotations
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Reference Sequence

Experimental Data & Validation

Experimental Data

  • Method: ELECTRON MICROSCOPY
  • Resolution: 3.60 Å
  • Aggregation State: PARTICLE 
  • Reconstruction Method: SINGLE PARTICLE 

Structure Validation

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Entry History 

& Funding Information

Deposition Data


Funding OrganizationLocationGrant Number
National Institutes of Health/National Institute Of Allergy and Infectious Diseases (NIH/NIAID)United StatesAI151055
National Institutes of Health/National Institute of General Medical Sciences (NIH/NIGMS)United StatesGM071940

Revision History  (Full details and data files)

  • Version 1.0: 2026-03-18
    Type: Initial release
  • Version 1.1: 2026-04-08
    Changes: Data collection, Database references