Monitoring the conformational ensemble and lipid environment of a mechanosensitive channel under cyclodextrin-induced membrane tension

Abstract

Membrane forces shift the equilibria of mechanosensitive channels enabling them to convert mechanical cues into electrical signals. Molecular tools to stabilize and methods to capture their highly dynamic states are lacking. Cyclodextrins can mimic tension through the sequestering of lipids from membranes. Here we probe the conformational ensemble of MscS by EPR spectroscopy, the lipid environment with NMR, and function with electrophysiology under cyclodextrin-induced tension. We show the extent of MscS activation depends on the cyclodextrin-to-lipid ratio, and that lipids are depleted slower when MscS is present. This has implications in MscS’ activation kinetics when distinct membrane scaffolds such as nanodiscs or liposomes are used. We find MscS transits from closed to sub-conducting state(s) before it desensitizes, due to the lack of lipid availability in its vicinity required for closure. Our approach allows for monitoring tension-sensitive states in membrane proteins and screening molecules capable of inducing molecular tension in bilayers.

Publication DOI: https://doi.org/10.1016/j.str.2024.02.020
Divisions: College of Health & Life Sciences
Aston University (General)
Funding Information: This project was supported by a Biotechnology and Biological Sciences Research Council (BBSRC) grant (BB/S018069/1) to C.P., who acknowledges support from the Wellcome Trust (WT) (219999/Z/19/Z) in the form of studentship for B.J.L. We also acknowledge su
Additional Information: Copyright © 2024 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY license (https://creativecommons.org/licenses/by/4.0/).
Uncontrolled Keywords: DEER,EPR,MscS,NMR,PELDOR,cyclodextrin,electrophysiology,lipids,mechanosensitive ion channel,membrane,Structural Biology,Molecular Biology
Publication ISSN: 1878-4186
Last Modified: 07 Mar 2025 08:10
Date Deposited: 06 Jan 2025 18:34
Full Text Link:
Related URLs: https://www.sci ... 969212624000807 (Publisher URL)
http://www.scop ... tnerID=8YFLogxK (Scopus URL)
PURE Output Type: Article
Published Date: 2024-06-06
Published Online Date: 2024-03-22
Accepted Date: 2024-02-27
Authors: Lane, Benjamin J. (ORCID Profile 0000-0002-3563-2716)
Ma, Yue
Yan, Nana
Wang, Bolin
Ackermann, Katrin
Karamanos, Theodoros K.
Bode, Bela E.
Pliotas, Christos

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