Publication:
A simple quantitative model of neuromodulation, Part II: Mechanosensitive channel gating

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SCHOOL OF MEDICINE
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Werneck, L.
Han, M.
Yildiz, E.
Keip, M.
Ortiz, M.

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eng

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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.

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Elsevier

Subject

Materials science, Mechanics, Physics

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Journal of the Mechanics and Physics of Solids

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DOI

10.1016/j.jmps.2026.106609

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