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Published on: May 13, 2020
A novel OmpY porin from Yersinia pseudotuberculosis: structure, channel-forming activity and trimer thermal stability
T F Solov'eva1, G N Likhatskaya, V A Khomenko
1Pacific Institute of Bioorganic Chemistry FEBRAS, prospect 100-let Vladivostoku 159, Vladivostok 690022, Russia.
Abstract:
A novel OmpY porin was predicted based on the Yersinia pseudotuberculosis genome analysis. Whereas it has the different genomic annotation such as "outer membrane protein N" (ABS46310.1) in str. IP 31758 or "outer membrane protein C2, porin" (YP_070481.1) in str. IP32953, it might be warranted to rename the OmpN/OmpC2 to OmpY, "outer membrane protein Y", where letter "Y" pertained to Yersinia. Both phylogenetic analysis and genomic localization clearly support that the OmpY porin belongs to a new group of general bacterial porins. The recombinant OmpY protein with its signal sequence was overexpressed in porin-deficient Escherichia coli strain. The mature rOmpY was shown to insert into outer membrane as a trimer. The OmpY porin, isolated from the outer membrane, was studied employing spectroscopic, electrophoretic and bilayer lipid membranes techniques. The far UV CD spectrum of rOmpY was essentially identical to that of Y. pseudotuberculosis OmpF. The near UV CD spectrum of rOmpY was weaker and smoother than that of OmpF. The rOmpY single-channel conductance was 180 ± 20 pS in 0.1 M NaCl and was lower than that of the OmpF porin. As was shown by electrophoretic and bilayer lipid membrane experiments, the rOmpY trimers were less thermostable than the OmpF trimers. The porins differed in the trimer-monomer transition temperature by about 20°C. The three-dimensional structural models of the Y. pseudotuberculosis OmpY and OmpF trimers were generated and the intra- and intermonomeric interactions stabilizing the porins were investigated. The difference in the thermal stability of OmpY and OmpF trimers was established to correlate with the difference in intermonomeric polar contacts.
Insights
A novel outer membrane protein Y (OmpY) from Yersinia pseudotuberculosis was identified and characterized. This new bacterial porin exhibits distinct structural and stability properties compared to OmpF, offering insights into bacterial outer membrane function.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Yersinia pseudotuberculosis possesses uncharacterized outer membrane proteins.
- Porins are crucial for nutrient transport across the bacterial outer membrane.
Purpose of the Study:
- To identify and characterize a novel porin, designated OmpY, from Yersinia pseudotuberculosis.
- To compare the structural, functional, and stability characteristics of OmpY with the well-characterized OmpF porin.
Main Methods:
- Bioinformatic analysis of the Yersinia pseudotuberculosis genome.
- Overexpression and purification of recombinant OmpY (rOmpY).
- Spectroscopic (CD), electrophoretic, and bilayer lipid membrane techniques for functional and stability analysis.
- Generation of 3D structural models for OmpY and OmpF trimers.
Main Results:
- OmpY was identified as a novel general bacterial porin, distinct from previously annotated outer membrane proteins.
- Recombinant OmpY formed stable trimers in the outer membrane and exhibited lower single-channel conductance than OmpF.
- OmpY trimers demonstrated reduced thermostability compared to OmpF trimers, correlating with differences in intermonomeric polar contacts.
Conclusions:
- OmpY represents a new group of bacterial porins with unique structural and stability features.
- The findings provide a deeper understanding of porin diversity and outer membrane protein interactions in Yersinia.
- OmpY's distinct properties may have implications for Yersinia pathogenesis and antibiotic resistance mechanisms.
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