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Updated: Mar 15, 2026

From Constructs to Crystals – Towards Structure Determination of β-barrel Outer Membrane Proteins
Published on: July 4, 2016
Effect of natural polymorphism on structure and function of the Yersinia pestis outer membrane porin F (OmpF
Hiba Shaban1, Insing Na1, Angelina A Kislichkina2
1a Department of Molecular Medicine, Morsani College of Medicine , University of South Florida , Tampa 33612 , FL , USA.
Abstract:
The Yersinia pestis outer membrane porin F (OmpF) is a transmembrane protein located in the outer membrane of this Gram-negative bacterium which is the causative agent of plague, where it plays a significant role in controlling the selective permeability of the membrane. The amino acid sequences of OmpF proteins from 48 Y. pestis strains representing all currently available phylogenetic groups of this Gram-negative bacterium were recently deduced. Comparison of these amino acid sequences revealed that the OmpF can be present in four isoforms, the pestis-pestis type, and the pestis-microtus types I, II, and III. OmpF of the most recent pestis-pestis type has an alanine residue at the position 148, where all the pestis-microtus types have threonine there (T148A polymorphism). The variability of different pestis-microtus types is caused by an additional polymorphism at the 193rd position, where the OmpFs of the pestis-microtus type II and type III have isoleucine-glycine (IG+193) or isoleucine-glycine-isoleucine-glycine (IGIG+193) insertions, respectively (IG+193 and IGIG+193 polymorphism). To investigate potential effects of these sequence polymorphisms on the structural properties of the OmpF protein, we conducted multi-level computational analysis of its isoforms. Analysis of the I-TASSER-generated 3D-models revealed that the Yersinia OmpF is very similar to other non-specific enterobacterial porins. The T148A polymorphism affected a loop located in the external vestibule of the OmpF channel, whereas IG+193 and IGIG+193 polymorphisms affected one of its β-strands. Our analysis also suggested that polymorphism has moderate effect on the predicted local intrinsic disorder predisposition of OmpF, but might have some functional implementations.
Insights
Yersinia pestis outer membrane porin F (OmpF) exhibits four isoforms due to sequence variations. Computational analysis reveals these polymorphisms affect OmpF structure and may influence function.
Area of Science:
- Microbiology
- Structural Biology
- Bioinformatics
Background:
- Yersinia pestis causes plague and possesses an outer membrane protein F (OmpF) crucial for membrane permeability.
- OmpF sequence analysis across 48 Y. pestis strains identified four distinct isoforms.
Purpose of the Study:
- To investigate the structural impact of Yersinia pestis OmpF sequence polymorphisms.
- To understand how identified variations influence the protein's properties.
Main Methods:
- Deduced amino acid sequences of OmpF from 48 Y. pestis strains.
- Utilized multi-level computational analysis, including I-TASSER for 3D model generation.
- Analyzed T148A, IG+193, and IGIG+193 polymorphisms.
Main Results:
- Yersinia OmpF structures are comparable to other enterobacterial porins.
- T148A polymorphism impacts an external loop; IG+193 and IGIG+193 polymorphisms affect a beta-strand.
- Polymorphisms showed a moderate effect on intrinsic disorder predisposition.
Conclusions:
- Sequence variations in Yersinia pestis OmpF lead to distinct structural alterations.
- These structural changes, particularly in channel regions, may have functional implications for OmpF activity.
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