Protein-lipid interactions with Fusobacterium nucleatum major outer membrane protein FomA: spin-label EPR and

V Anbazhagan1, N Vijay, J H Kleinschmidt

  • 1Max-Planck-Institut fur biophysikalische Chemie, Abt. Spektroskopie, 37070 Gottingen, Germany.

Biochemistry
|July 23, 2008
PubMed

Insights

The major outer membrane protein FomA from Fusobacterium nucleatum forms a 14- to 16-stranded beta-barrel structure. This structure is monomeric and interacts with specific lipid chains, influencing its membrane orientation.

Area of Science:

  • Structural biology
  • Membrane protein biophysics
  • Microbial outer membrane proteins

Background:

  • Fusobacterium nucleatum is a key oral bacterium.
  • Outer membrane proteins (OMPs) are crucial for bacterial outer membrane function.
  • FomA is the major OMP of F. nucleatum, but its structure and membrane interactions are poorly understood.

Purpose of the Study:

  • To determine the secondary structure, conformation, and orientation of the FomA protein within a lipid bilayer.
  • To characterize the lipid-protein interactions of FomA.
  • To elucidate the oligomeric state of FomA in a membrane environment.

Main Methods:

  • Reconstitution of purified FomA into phosphatidylcholine lipid bilayers.
  • Polarized attenuated total reflection infrared (ATR-IR) spectroscopy for conformational analysis.
  • Electron paramagnetic resonance (EPR) spectroscopy using spin-labeled lipids for lipid-protein interactions and stoichiometry.

Main Results:

  • FomA adopts a beta-sheet configuration, forming a 14-strand transmembrane beta-barrel structure.
  • The beta-strands are tilted approximately 45 degrees relative to the barrel axis.
  • FomA interacts with approximately 23 lipids per monomer, indicating a monomeric state, and shows selectivity for certain lipid types, suggesting specific residue placements within the membrane.

Conclusions:

  • FomA forms a monomeric beta-barrel structure in lipid bilayers.
  • Hydrophobic matching between FomA and C(13:0) lipid chains influences its orientation.
  • The findings are consistent with FomA topology models and comparable to other bacterial OMPs.