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Published on: March 16, 2022
Binding regions of outer membrane protein A in complexes with the periplasmic chaperone Skp. A site-directed
Jian Qu1, Susanne Behrens-Kneip, Otto Holst
1Fachbereich Biologie, Universität Konstanz, Germany.
Abstract:
Periplasmic Skp facilitates folding and membrane insertion of many outer membrane proteins (OMPs) into the outer membrane of Gram-negative bacteria. We have examined the binding sites of outer membrane protein A (OmpA) from Escherichia coli in its complexes with the membrane protein chaperone Skp and with Skp and lipopolysaccharide (LPS) by site-directed fluorescence spectroscopy. Single-Trp OmpA mutants, W(n)-OmpA, with tryptophan at position n in the polypeptide chain were isolated in the unfolded form in 8 M urea. In five beta(x)W(n)-OmpA mutants, the tryptophan was located in beta-strand x, in four l(y)W(n)-OmpA mutants, in outer loop y, and in three t(z)W(n)-OmpA mutants in turn z of the beta-barrel transmembrane domain (TMD) of OmpA. PDW(286)-OmpA contained tryptophan in the periplasmic domain (PD). After dilution of the denaturant urea in aqueous solution, spectra indicated a more hydrophobic environment of the tryptophans in beta(x)W(n) mutants in comparison to l(y)W(n)-OmpA and t(z)W(n)-OmpA, indicating that the loops and turns form the surface of hydrophobically collapsed OmpA, while the strand regions are less exposed to water. Addition of Skp increased the fluorescence of all OmpA mutants except PDW(286)-OmpA, demonstrating binding of Skp to the entire beta-barrel domain but not to the PD of OmpA. Skp bound the TMD of OmpA asymmetrically, displaying much stronger interactions with strands beta(1) to beta(3) in the N-terminus than with strands beta(5) to beta(7) in the C-terminus. This asymmetry was not observed for the outer loops and the periplasmic turns of the TMD of OmpA. The fluorescence results demonstrated that all turns and loops l(1), l(2), and l(4) were as strongly bound to Skp as the N-terminal beta-strands. Addition of five negatively charged LPS per one preformed Skp.W(n)-OmpA complex released the C-terminal loops l(2), l(3), and l(4) of the TMD of OmpA from the complex, while its periplasmic turn regions remained bound to Skp. Our results demonstrate that interactions of Skp.OmpA complexes with LPS change the conformation of OmpA in the Skp complex for facilitated insertion and folding into membranes.
Insights
The chaperone Skp binds the outer membrane protein A (OmpA) beta-barrel domain asymmetrically, with stronger interactions at the N-terminus. Lipopolysaccharide (LPS) binding alters OmpA conformation, facilitating its membrane insertion and folding.
Area of Science:
- Molecular Biology
- Protein Folding
- Membrane Protein Insertion
Background:
- Periplasmic Skp is crucial for outer membrane protein (OMP) folding and insertion in Gram-negative bacteria.
- Outer membrane protein A (OmpA) is a key OMP requiring chaperones for proper localization.
Purpose of the Study:
- To investigate the binding sites of OmpA within complexes formed with the chaperone Skp, and with Skp and lipopolysaccharide (LPS).
- To elucidate the conformational changes of OmpA upon Skp and LPS interaction, facilitating membrane insertion.
Main Methods:
- Site-directed fluorescence spectroscopy was employed using single-Tryptophan OmpA mutants (W(n)-OmpA).
- Mutants were designed with Tryptophan in beta-strands, outer loops, turns of the transmembrane domain (TMD), and the periplasmic domain (PD).
- Fluorescence spectra were analyzed after urea denaturation and refolding in the presence of Skp and LPS.
Main Results:
- Skp binds the OmpA beta-barrel domain but not the periplasmic domain, with asymmetric interactions favoring N-terminal beta-strands.
- Outer loops and periplasmic turns of OmpA bind strongly to Skp, similar to N-terminal beta-strands.
- LPS addition releases C-terminal loops of OmpA from the Skp complex, while periplasmic turns remain bound, inducing conformational changes.
Conclusions:
- Skp interacts asymmetrically with the OmpA transmembrane domain, with specific loops and turns showing strong binding.
- Lipopolysaccharide binding to Skp-OmpA complexes induces conformational rearrangements essential for OmpA insertion into the outer membrane.
- This study provides insights into the chaperone-mediated mechanism of OmpA folding and membrane integration.

