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Identification and Characterization of Outer Membrane Proteins and Membrane Spanning Protein Complexes in Brucella
Jahnvi Kapoor1, Amisha Panda1, Ilmas Naqvi2
1Protein Biology Lab, Room No. 115, Department of Zoology, University of Delhi, Delhi, India.
Abstract:
Brucellosis (Malta fever) is a zoonotic disease that affects both humans and animals, including cattle, sheep, and goats. Brucella melitensis is the most virulent and clinically significant species in humans. It is a gram-negative bacterium with three groups of outer membrane proteins (OMPs): minor OMPs (Group 1) and major OMPs (Groups 2 and 3). OMPs with β-barrel architecture play important roles in nutrient transport, efflux, adhesion, and membrane biogenesis. Despite their importance, the structure, function, and interaction dynamics of several B. melitensis β-barrel OMPs and associated protein complexes remain mostly unexplored. In this study, we conducted a comprehensive in silico analysis to characterize known outer membrane β-barrel (OMBB) proteins and identify novel OMBBs in B. melitensis 16 M. Proteins were modeled using five computational tools: AlphaFold 3, ESMFold, SWISS-MODEL, RoseTTAFold, and TrRosetta. Outer-membrane insertion of 12 novel OMBBs was confirmed using PPM 3.0, Protein GRAVY, DREAMM, and MemProtMD_Insane. Putative functions were predicted using structure- and sequence-based annotations. Sequence variation across 46 B. melitensis strains was identified and mapped onto the structural models. OMBB-associated protein complexes-the RND (Resistance-Nodulation-Division) efflux pumps, the lipopolysaccharide transport (Lpt) complex, and the β-barrel assembly machinery (BAM) complex-were modeled, and protein-protein interactions (PPIs) were analyzed to confirm thermodynamically stable assemblies. This study presents a robust in silico strategy for exploring OMP architecture and provides valuable structural insights to support the development of diagnostics, targeted therapeutics, and vaccines against B. melitensis.
Insights
This study used computational methods to analyze outer membrane proteins in Brucella melitensis, identifying new targets for developing diagnostics and vaccines against this significant zoonotic disease.
Area of Science:
- Microbiology and Structural Biology
- Computational Biology and Bioinformatics
Background:
- Brucellosis, caused by Brucella species, is a significant zoonotic disease with Brucella melitensis being the most virulent for humans.
- Outer membrane proteins (OMPs) with beta-barrel architecture are crucial for bacterial function but remain underexplored in B. melitensis.
Purpose of the Study:
- To perform a comprehensive in silico analysis of outer membrane beta-barrel (OMBB) proteins in B. melitensis 16 M.
- To identify novel OMBBs, predict their functions, analyze sequence variations, and model associated protein complexes.
Main Methods:
- Utilized five computational tools (AlphaFold 3, ESMFold, SWISS-MODEL, RoseTTAFold, TrRosetta) for protein modeling.
- Employed PPM 3.0, Protein GRAVY, DREAMM, and MemProtMD_Insane to confirm outer-membrane insertion.
- Modeled OMBB-associated complexes (RND efflux pumps, Lpt, BAM) and analyzed protein-protein interactions (PPIs).
Main Results:
- Characterized known OMBBs and identified 12 novel OMBBs in B. melitensis 16 M.
- Confirmed outer-membrane insertion for novel OMBBs and predicted putative functions.
- Mapped sequence variations across 46 strains and analyzed the stability of protein complexes.
Conclusions:
- Developed a robust in silico strategy for exploring OMP architecture in B. melitensis.
- Provided valuable structural insights into B. melitensis OMBBs and their complexes.
- The findings support the development of novel diagnostics, therapeutics, and vaccines against Brucellosis.
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