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Analyzing Protein Architectures and Protein-Ligand Complexes by Integrative Structural Mass Spectrometry
Published on: October 15, 2018
Analysis of AcrB and AcrB/DARPin ligand complexes by LILBID MS
Lorenz Brandstätter1, Lucie Sokolova, Thomas Eicher
1Institute of Biochemistry and Cluster of Excellence Frankfurt - Macromolecular Complexes, Goethe-University Frankfurt, Max-von-Laue-Str. 9, D-60438 Frankfurt am Main, Germany.
Abstract:
The AcrA/AcrB/TolC complex is responsible for intrinsic multidrug resistance (MDR) in Escherichia coli. Together with the periplasmic adaptor protein AcrA and the outer membrane channel TolC, the inner membrane component AcrB forms an efflux complex that spans both the inner and outer membrane and bridges the periplasm of the Gram-negative cell. Within the entire tripartite complex, homotrimeric AcrB plays a central role in energy transduction and substrate selection. In vitro selected designed ankyrin repeat proteins (DARPin) that specifically bind to the periplasmic domain of AcrB were shown to ameliorate diffraction resolution of AcrB/DARPin protein co-crystals (G. Sennhauser, P. Amstutz, C. Briand, O. Storchenegger, M.G. Grutter, Drug export pathway of multidrug exporter AcrB revealed by DARPin inhibitors, PLoS Biol 5 (2007) e7). Structural analysis by X-ray crystallography revealed that 2 DARPin molecules were bound to the trimeric AcrB wildtype protein in the crystal, whereas the V612F and G616N AcrB variant crystal structures show 3 DARPin molecules bound to the trimer. These specific stoichiometric differences were analyzed in solution via densitometry after microchannel electrophoresis, analytical ultracentrifugation and via laser-induced liquid bead ion desorption mass spectrometry (LILBID-MS). Using the latter technology, we investigated the gradual disassembly of the AcrB trimer and bound DARPin ligands in dependence on laser intensity in solution. At low laser intensity, the release of the detergent molecule micelle from the AcrB/DARPin complex was observed. By increasing laser intensity, dimeric and monomeric AcrB species with bound DARPin molecules were detected showing the high affinity binding of DARPin to monomeric AcrB species. High laser intensity LILBID MS experiments indicated a spectral shift of the monomeric AcrB peak of 3.1kDa, representing a low molecular weight ligand in all detergent-solubilized AcrB samples and in the AcrB crystal. The identity of this ligand was further investigated using phospholipid analysis of purified AcrB and AcrB variant samples, and indicated the presence of phosphatidylethanolamine and possibly cardiolipin, both constituents of the Escherichia coli membrane.
Insights
Designed ankyrin repeat proteins (DARPins) bind specifically to the AcrB multidrug resistance transporter in Escherichia coli. This binding affinity was studied in solution using laser-induced liquid bead ion desorption mass spectrometry, revealing interactions with monomeric AcrB and membrane lipid ligands.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- The AcrA/AcrB/TolC complex confers intrinsic multidrug resistance (MDR) in Escherichia coli.
- AcrB, an inner membrane component, is central to this tripartite efflux complex, mediating energy transduction and substrate selection.
Purpose of the Study:
- To investigate the binding stoichiometry and affinity of designed ankyrin repeat proteins (DARPins) to the AcrB multidrug exporter.
- To characterize the solution behavior and disassembly of the AcrB/DARPin complex using advanced mass spectrometry techniques.
- To identify low molecular weight ligands associated with AcrB in solution and crystal structures.
Main Methods:
- X-ray crystallography to determine AcrB/DARPin complex structures.
- Densitometry after microchannel electrophoresis and analytical ultracentrifugation for solution analysis.
- Laser-induced liquid bead ion desorption mass spectrometry (LILBID-MS) to study complex disassembly and ligand interactions.
- Phospholipid analysis to identify AcrB-associated lipids.
Main Results:
- X-ray crystallography revealed differences in DARPin binding stoichiometry to wildtype and variant AcrB trimers.
- LILBID-MS demonstrated gradual disassembly of the AcrB trimer and high-affinity DARPin binding to monomeric AcrB.
- A consistent low molecular weight ligand (3.1 kDa) was detected with monomeric AcrB, identified as membrane phospholipids like phosphatidylethanolamine and cardiolipin.
Conclusions:
- DARPins exhibit high-affinity binding to monomeric AcrB, offering insights into inhibitor interactions.
- The study identified native membrane lipid ligands associated with AcrB, suggesting their role in transporter function or stability.
- LILBID-MS is a powerful tool for analyzing complex protein-ligand interactions and disassembly pathways in solution.
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