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Thermodynamics of ion binding and occupancy in potassium channels

Potassium channels modulate various cellular functions through efficient and selective conduction of K(+) ions. The mechanism of ion conduction in potassium channels has recently emerged as a topic of debate. Crystal structures of potassium channels show four K(+) ions bound to adjacent binding site...

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Autores principales: Jing, Zhifeng, Rackers, Joshua A., Pratt, Lawrence R., Liu, Chengwen, Rempe, Susan B., Ren, Pengyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8246295/
https://www.ncbi.nlm.nih.gov/pubmed/34257893
http://dx.doi.org/10.1039/d1sc01887f
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author Jing, Zhifeng
Rackers, Joshua A.
Pratt, Lawrence R.
Liu, Chengwen
Rempe, Susan B.
Ren, Pengyu
author_facet Jing, Zhifeng
Rackers, Joshua A.
Pratt, Lawrence R.
Liu, Chengwen
Rempe, Susan B.
Ren, Pengyu
author_sort Jing, Zhifeng
collection PubMed
description Potassium channels modulate various cellular functions through efficient and selective conduction of K(+) ions. The mechanism of ion conduction in potassium channels has recently emerged as a topic of debate. Crystal structures of potassium channels show four K(+) ions bound to adjacent binding sites in the selectivity filter, while chemical intuition and molecular modeling suggest that the direct ion contacts are unstable. Molecular dynamics (MD) simulations have been instrumental in the study of conduction and gating mechanisms of ion channels. Based on MD simulations, two hypotheses have been proposed, in which the four-ion configuration is an artifact due to either averaged structures or low temperature in crystallographic experiments. The two hypotheses have been supported or challenged by different experiments. Here, MD simulations with polarizable force fields validated by ab initio calculations were used to investigate the ion binding thermodynamics. Contrary to previous beliefs, the four-ion configuration was predicted to be thermodynamically stable after accounting for the complex electrostatic interactions and dielectric screening. Polarization plays a critical role in the thermodynamic stabilities. As a result, the ion conduction likely operates through a simple single-vacancy and water-free mechanism. The simulations explained crystal structures, ion binding experiments and recent controversial mutagenesis experiments. This work provides a clear view of the mechanism underlying the efficient ion conduction and demonstrates the importance of polarization in ion channel simulations.
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spelling pubmed-82462952021-07-12 Thermodynamics of ion binding and occupancy in potassium channels Jing, Zhifeng Rackers, Joshua A. Pratt, Lawrence R. Liu, Chengwen Rempe, Susan B. Ren, Pengyu Chem Sci Chemistry Potassium channels modulate various cellular functions through efficient and selective conduction of K(+) ions. The mechanism of ion conduction in potassium channels has recently emerged as a topic of debate. Crystal structures of potassium channels show four K(+) ions bound to adjacent binding sites in the selectivity filter, while chemical intuition and molecular modeling suggest that the direct ion contacts are unstable. Molecular dynamics (MD) simulations have been instrumental in the study of conduction and gating mechanisms of ion channels. Based on MD simulations, two hypotheses have been proposed, in which the four-ion configuration is an artifact due to either averaged structures or low temperature in crystallographic experiments. The two hypotheses have been supported or challenged by different experiments. Here, MD simulations with polarizable force fields validated by ab initio calculations were used to investigate the ion binding thermodynamics. Contrary to previous beliefs, the four-ion configuration was predicted to be thermodynamically stable after accounting for the complex electrostatic interactions and dielectric screening. Polarization plays a critical role in the thermodynamic stabilities. As a result, the ion conduction likely operates through a simple single-vacancy and water-free mechanism. The simulations explained crystal structures, ion binding experiments and recent controversial mutagenesis experiments. This work provides a clear view of the mechanism underlying the efficient ion conduction and demonstrates the importance of polarization in ion channel simulations. The Royal Society of Chemistry 2021-06-02 /pmc/articles/PMC8246295/ /pubmed/34257893 http://dx.doi.org/10.1039/d1sc01887f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Jing, Zhifeng
Rackers, Joshua A.
Pratt, Lawrence R.
Liu, Chengwen
Rempe, Susan B.
Ren, Pengyu
Thermodynamics of ion binding and occupancy in potassium channels
title Thermodynamics of ion binding and occupancy in potassium channels
title_full Thermodynamics of ion binding and occupancy in potassium channels
title_fullStr Thermodynamics of ion binding and occupancy in potassium channels
title_full_unstemmed Thermodynamics of ion binding and occupancy in potassium channels
title_short Thermodynamics of ion binding and occupancy in potassium channels
title_sort thermodynamics of ion binding and occupancy in potassium channels
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8246295/
https://www.ncbi.nlm.nih.gov/pubmed/34257893
http://dx.doi.org/10.1039/d1sc01887f
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