Publication: A simple quantitative model of neuromodulation, part ii: mechanosensitive channel gating
Program
KU-Authors
KU Authors
Co-Authors
Werneck, L.
Han, M.
Yıldız, E.
Keip, M.
Sitti, M.
Ortíz, M.
Editor & Affiliation
Compiler & Affiliation
Translator
Other Contributor
Date
Language
eng
Type
Embargo Status
N/A
Journal Title
Journal ISSN
Volume Title
Alternative Title
Abstract
We develop a simple model of mechanosensitive channel gating of neuronal ion channels as a function of applied strain. The model considers channel gating as a two-state system obeying transition-state theory with an elastic bias introduced by the applied strain. Compelled by observations of electric signaling in human neurons, which evince a lack of time-sigmoidicity of the channel conductances and an ability of the membrane voltage to jump instantaneously upon application of a step current, we propose a resistor model of membrane signaling that departs from conventional capacitor models such as Hodgkin–Huxley. We validate the theory on the basis of an in-house testing program of human-derived immortalized neural cell line at applied various strains, combining calcium imaging integrated tension bioreactors under fluorescence microscopes with high-speed cameras. The ability of the theory to reproduce the experimentally observed action potentials is remarkable.
Source
Publisher
Elsevier BV
Subject
Mechanosensitive ion channels, Action potential, Mechanotransduction
Citation
Has Part
Source
Journal of the Mechanics and Physics of Solids
Book Series Title
Edition
DOI
10.1016/j.jmps.2026.106609
