Double and triple thermodynamic mutant cycles reveal the basis for specific MsbA-lipid interactions
Affiliation
Department of Chemistry and Biochemistry and Bio5 Institute, University of Arizona, Tucson, United StatesIssue Date
2024-01-22Keywords
ABC transporterbiochemistry
chemical biology
E. coli
molecular biophysics
native mass spectrometry
protein-lipid interactions
structural biology
thermodynamics
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eLife Sciences Publications LtdCitation
Jixing Lyu Tianqi Zhang Michael T Marty David Clemmer David H Russell Arthur Laganowsky (2024) Double and triple thermodynamic mutant cycles reveal the basis for specific MsbA-lipid interactions eLife 12:RP91094.Journal
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© Lyu et al. This article is distributed under the terms of the Creative Commons Attribution License.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
Structural and functional studies of the ATP-binding cassette transporter MsbA have revealed two distinct lipopolysaccharide (LPS) binding sites: one located in the central cavity and the other at a membrane-facing, exterior site. Although these binding sites are known to be important for MsbA function, the thermodynamic basis for these specific MsbA-LPS interactions is not well understood. Here, we use native mass spectrometry to determine the thermodynamics of MsbA interacting with the LPS-precursor 3-deoxy-D-manno-oct-2-ulosonic acid (Kdo)2-lipid A (KDL). The binding of KDL is solely driven by entropy, despite the transporter adopting an inward-facing conformation or trapped in an outward-facing conformation with adenosine 5'-diphosphate and vanadate. An extension of the mutant cycle approach is employed to probe basic residues that interact with KDL. We find the molecular recognition of KDL is driven by a positive coupling entropy (as large as -100 kJ/mol at 298 K) that outweighs unfavorable coupling enthalpy. These findings indicate that alterations in solvent reorganization and conformational entropy can contribute significantly to the free energy of protein-lipid association. The results presented herein showcase the advantage of native MS to obtain thermodynamic insight into protein-lipid interactions that would otherwise be intractable using traditional approaches, and this enabling technology will be instrumental in the life sciences and drug discovery. © 2023, Lyu et al.Note
Open access journalISSN
2050-084XPubMed ID
38252560Version
Final Published Versionae974a485f413a2113503eed53cd6c53
10.7554/eLife.91094
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Except where otherwise noted, this item's license is described as © Lyu et al. This article is distributed under the terms of the Creative Commons Attribution License.
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