Cargando…

Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1

The mathematical modeling of ion channel kinetics is an important tool for studying the electrophysiological mechanisms of the nerves, heart, or cancer, from a single cell to an organ. Common approaches use either a Hodgkin–Huxley (HH) or a hidden Markov model (HMM) description, depending on the lev...

Descripción completa

Detalles Bibliográficos
Autores principales: Langthaler, Sonja, Lozanović Šajić, Jasmina, Rienmüller, Theresa, Weinberg, Seth H., Baumgartner, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8773569/
https://www.ncbi.nlm.nih.gov/pubmed/35053355
http://dx.doi.org/10.3390/cells11020239
_version_ 1784636123842084864
author Langthaler, Sonja
Lozanović Šajić, Jasmina
Rienmüller, Theresa
Weinberg, Seth H.
Baumgartner, Christian
author_facet Langthaler, Sonja
Lozanović Šajić, Jasmina
Rienmüller, Theresa
Weinberg, Seth H.
Baumgartner, Christian
author_sort Langthaler, Sonja
collection PubMed
description The mathematical modeling of ion channel kinetics is an important tool for studying the electrophysiological mechanisms of the nerves, heart, or cancer, from a single cell to an organ. Common approaches use either a Hodgkin–Huxley (HH) or a hidden Markov model (HMM) description, depending on the level of detail of the functionality and structural changes of the underlying channel gating, and taking into account the computational effort for model simulations. Here, we introduce for the first time a novel system theory-based approach for ion channel modeling based on the concept of transfer function characterization, without a priori knowledge of the biological system, using patch clamp measurements. Using the shaker-related voltage-gated potassium channel Kv1.1 (KCNA1) as an example, we compare the established approaches, HH and HMM, with the system theory-based concept in terms of model accuracy, computational effort, the degree of electrophysiological interpretability, and methodological limitations. This highly data-driven modeling concept offers a new opportunity for the phenomenological kinetic modeling of ion channels, exhibiting exceptional accuracy and computational efficiency compared to the conventional methods. The method has a high potential to further improve the quality and computational performance of complex cell and organ model simulations, and could provide a valuable new tool in the field of next-generation in silico electrophysiology.
format Online
Article
Text
id pubmed-8773569
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-87735692022-01-21 Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1 Langthaler, Sonja Lozanović Šajić, Jasmina Rienmüller, Theresa Weinberg, Seth H. Baumgartner, Christian Cells Article The mathematical modeling of ion channel kinetics is an important tool for studying the electrophysiological mechanisms of the nerves, heart, or cancer, from a single cell to an organ. Common approaches use either a Hodgkin–Huxley (HH) or a hidden Markov model (HMM) description, depending on the level of detail of the functionality and structural changes of the underlying channel gating, and taking into account the computational effort for model simulations. Here, we introduce for the first time a novel system theory-based approach for ion channel modeling based on the concept of transfer function characterization, without a priori knowledge of the biological system, using patch clamp measurements. Using the shaker-related voltage-gated potassium channel Kv1.1 (KCNA1) as an example, we compare the established approaches, HH and HMM, with the system theory-based concept in terms of model accuracy, computational effort, the degree of electrophysiological interpretability, and methodological limitations. This highly data-driven modeling concept offers a new opportunity for the phenomenological kinetic modeling of ion channels, exhibiting exceptional accuracy and computational efficiency compared to the conventional methods. The method has a high potential to further improve the quality and computational performance of complex cell and organ model simulations, and could provide a valuable new tool in the field of next-generation in silico electrophysiology. MDPI 2022-01-11 /pmc/articles/PMC8773569/ /pubmed/35053355 http://dx.doi.org/10.3390/cells11020239 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Langthaler, Sonja
Lozanović Šajić, Jasmina
Rienmüller, Theresa
Weinberg, Seth H.
Baumgartner, Christian
Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1
title Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1
title_full Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1
title_fullStr Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1
title_full_unstemmed Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1
title_short Ion Channel Modeling beyond State of the Art: A Comparison with a System Theory-Based Model of the Shaker-Related Voltage-Gated Potassium Channel Kv1.1
title_sort ion channel modeling beyond state of the art: a comparison with a system theory-based model of the shaker-related voltage-gated potassium channel kv1.1
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8773569/
https://www.ncbi.nlm.nih.gov/pubmed/35053355
http://dx.doi.org/10.3390/cells11020239
work_keys_str_mv AT langthalersonja ionchannelmodelingbeyondstateoftheartacomparisonwithasystemtheorybasedmodeloftheshakerrelatedvoltagegatedpotassiumchannelkv11
AT lozanovicsajicjasmina ionchannelmodelingbeyondstateoftheartacomparisonwithasystemtheorybasedmodeloftheshakerrelatedvoltagegatedpotassiumchannelkv11
AT rienmullertheresa ionchannelmodelingbeyondstateoftheartacomparisonwithasystemtheorybasedmodeloftheshakerrelatedvoltagegatedpotassiumchannelkv11
AT weinbergsethh ionchannelmodelingbeyondstateoftheartacomparisonwithasystemtheorybasedmodeloftheshakerrelatedvoltagegatedpotassiumchannelkv11
AT baumgartnerchristian ionchannelmodelingbeyondstateoftheartacomparisonwithasystemtheorybasedmodeloftheshakerrelatedvoltagegatedpotassiumchannelkv11