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Updated: Jan 31, 2026

Crystallizing Membrane Proteins for Structure Determination using Lipidic Mesophases
Published on: November 21, 2010
3D structure of a Brucella melitensis porin: molecular modelling in lipid membranes
Maximilien Lopes-Rodrigues1,2,3,4, David Zanuy3, Carlos Alemán3,4
1a Laboratoire de Chimie Physique des Biomolécules, Unité de Chimie Physique Théorique et Structurale (UCPTS), University of Namur , Namur , Belgium.
Abstract:
Brucella melitensis is a pathogenic bacterium responsible for brucellosis in mammals and humans. Its outer membrane proteins (Omp) control the diffusion of solutes through the membrane, and they consequently have a crucial role in the design of diagnostics and vaccines. Moreover, such proteins have recently revealed their potential for protein-based biomaterials. In the present contribution, the structure of the B. melitensis porin Omp2a is built using the RaptorX threading method. This is a 16-stranded β-barrel with an α-helix on the third loop folding inside the barrel and forming the constriction zone of the channel, a typical feature of general porins such as PhoE and OmpF. The preferential diffusion of cations over anions experimentally observed in anterior studies is evidenced by the presence of distinct clusters of charges in the extracellular loops and in the inner pore. Docking studies support the previously reported hypothesis of Omp2a ability to aid maltotetraose diffusion. The monomer model is then assembled into a homotrimer, stabilized by the L2 loop involved in most of the interface interactions. The stability of the trimer is evaluated in three bilayers: pure 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC), pure 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphoethanolamine (POPE) and a mixture of 1:1 of POPC/POPE. All-atom molecular dynamics simulations demonstrate the β-barrel-structural stability over time even though a breathing-like motion is observed. Compared to the pure bilayers, the POPC/POPE better preserves the integrity of the protein and its channel. Overall, this work demonstrates the relevancy of the Omp2a model and will help to design new therapeutic agents and bioinspired nanomaterials.
Insights
Brucella melitensis outer membrane protein Omp2a
Area of Science:
- Structural biology
- Bacterial outer membrane proteins
- Biomolecular modeling
Background:
- Brucella melitensis causes brucellosis in mammals and humans.
- Outer membrane proteins (Omps) are crucial for bacterial function and potential vaccine/diagnostic targets.
- Omps also show promise for developing protein-based biomaterials.
Purpose of the Study:
- To determine the structural model of Brucella melitensis porin Omp2a.
- To investigate the stability and behavior of the Omp2a trimer in different membrane environments.
- To explore the potential applications of Omp2a in diagnostics, vaccines, and biomaterials.
Main Methods:
- RaptorX threading method for porin structure prediction.
- Molecular docking studies for ligand interaction analysis.
- All-atom molecular dynamics simulations in various lipid bilayers (POPC, POPE, POPC/POPE).
Main Results:
- A 16-stranded beta-barrel model for Omp2a was constructed, featuring an internal alpha-helix in the constriction zone.
- Charge distributions in the pore and loops explain observed cation selectivity.
- The Omp2a monomer forms a stable homotrimer, with the L2 loop mediating interactions.
- Molecular dynamics simulations confirmed beta-barrel stability and revealed breathing-like motions.
- The POPC/POPE lipid mixture best maintained the integrity of the Omp2a trimer.
Conclusions:
- The developed Omp2a structural model is relevant for understanding its function.
- The Omp2a trimer exhibits stability in a mixed lipid bilayer environment.
- This research provides a foundation for designing novel therapeutic agents and bioinspired nanomaterials.
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