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Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture

[Image: see text] The plasma membrane protects the interiors of cells from their surroundings and also plays a critical role in communication, sensing, and nutrient import. As a result, the cell membrane and its constituents are among the most important drug targets. Studying the cell membrane and t...

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Autores principales: Andersson, Jakob, Kleinheinz, David, Ramach, Ulrich, Kiesenhofer, Nikolaus, Ashenden, Alex, Valtiner, Markus, Holt, Stephen, Koeper, Ingo, Schmidpeter, Philipp A. M., Knoll, Wolfgang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10150356/
https://www.ncbi.nlm.nih.gov/pubmed/37072125
http://dx.doi.org/10.1021/acs.jpcb.2c07252
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author Andersson, Jakob
Kleinheinz, David
Ramach, Ulrich
Kiesenhofer, Nikolaus
Ashenden, Alex
Valtiner, Markus
Holt, Stephen
Koeper, Ingo
Schmidpeter, Philipp A. M.
Knoll, Wolfgang
author_facet Andersson, Jakob
Kleinheinz, David
Ramach, Ulrich
Kiesenhofer, Nikolaus
Ashenden, Alex
Valtiner, Markus
Holt, Stephen
Koeper, Ingo
Schmidpeter, Philipp A. M.
Knoll, Wolfgang
author_sort Andersson, Jakob
collection PubMed
description [Image: see text] The plasma membrane protects the interiors of cells from their surroundings and also plays a critical role in communication, sensing, and nutrient import. As a result, the cell membrane and its constituents are among the most important drug targets. Studying the cell membrane and the processes it facilitates is therefore crucial, but it is a highly complex environment that is difficult to access experimentally. Various model membrane systems have been developed to provide an environment in which membrane proteins can be studied in isolation. Among them, tethered bilayer lipid membranes (tBLMs) are a promising model system providing a solvent-free membrane environment which can be prepared by self-assembly, is resistant to mechanical disturbances and has a high electrical resistance. tBLMs are therefore uniquely suitable to study ion channels and charge transport processes. However, ion channels are often large, complex, multimeric structures and their function requires a particular lipid environment. In this paper, we show that SthK, a bacterial cyclic nucleotide gated (CNG) ion channel that is strongly dependent on the surrounding lipid composition, functions normally when embedded into a sparsely tethered lipid bilayer. As SthK has been very well characterized in terms of structure and function, it is well-suited to demonstrate the utility of tethered membrane systems. A model membrane system suitable for studying CNG ion channels would be useful, as this type of ion channel performs a wide range of physiological functions in bacteria, plants, and mammals and is therefore of fundamental scientific interest as well as being highly relevant to medicine.
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spelling pubmed-101503562023-05-02 Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture Andersson, Jakob Kleinheinz, David Ramach, Ulrich Kiesenhofer, Nikolaus Ashenden, Alex Valtiner, Markus Holt, Stephen Koeper, Ingo Schmidpeter, Philipp A. M. Knoll, Wolfgang J Phys Chem B [Image: see text] The plasma membrane protects the interiors of cells from their surroundings and also plays a critical role in communication, sensing, and nutrient import. As a result, the cell membrane and its constituents are among the most important drug targets. Studying the cell membrane and the processes it facilitates is therefore crucial, but it is a highly complex environment that is difficult to access experimentally. Various model membrane systems have been developed to provide an environment in which membrane proteins can be studied in isolation. Among them, tethered bilayer lipid membranes (tBLMs) are a promising model system providing a solvent-free membrane environment which can be prepared by self-assembly, is resistant to mechanical disturbances and has a high electrical resistance. tBLMs are therefore uniquely suitable to study ion channels and charge transport processes. However, ion channels are often large, complex, multimeric structures and their function requires a particular lipid environment. In this paper, we show that SthK, a bacterial cyclic nucleotide gated (CNG) ion channel that is strongly dependent on the surrounding lipid composition, functions normally when embedded into a sparsely tethered lipid bilayer. As SthK has been very well characterized in terms of structure and function, it is well-suited to demonstrate the utility of tethered membrane systems. A model membrane system suitable for studying CNG ion channels would be useful, as this type of ion channel performs a wide range of physiological functions in bacteria, plants, and mammals and is therefore of fundamental scientific interest as well as being highly relevant to medicine. American Chemical Society 2023-04-18 /pmc/articles/PMC10150356/ /pubmed/37072125 http://dx.doi.org/10.1021/acs.jpcb.2c07252 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Andersson, Jakob
Kleinheinz, David
Ramach, Ulrich
Kiesenhofer, Nikolaus
Ashenden, Alex
Valtiner, Markus
Holt, Stephen
Koeper, Ingo
Schmidpeter, Philipp A. M.
Knoll, Wolfgang
Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture
title Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture
title_full Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture
title_fullStr Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture
title_full_unstemmed Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture
title_short Native Function of the Bacterial Ion Channel SthK in a Sparsely Tethered Lipid Bilayer Membrane Architecture
title_sort native function of the bacterial ion channel sthk in a sparsely tethered lipid bilayer membrane architecture
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10150356/
https://www.ncbi.nlm.nih.gov/pubmed/37072125
http://dx.doi.org/10.1021/acs.jpcb.2c07252
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