AI Article Synopsis

  • Traditional models like Hodgkin-Huxley struggle to explain how action potentials travel quickly in myelinated axons, prompting new theories.
  • The novel concept of an "ephaptic field" suggests that electrical signals from ion channels can affect nearby axons, allowing for a form of communication between them.
  • Simulations indicate that while direct stimulation of adjacent nodes is unlikely, the combined effect of ion channel activity and ephaptic feedback can enhance the speed and zig-zag pattern of action potential propagation.

Article Abstract

The generation and propagation of physical signals in living biosystems are continuous issues. Traditional Hodgkin-Huxley model based on ionic current conduction could not explain the fast transmission of action potential in myelinated axons and factors influencing action potential velocity. We propose that the ion flow induced by channel generates near field quasi-static electric field at extracellular space, termed as an ephaptic field which is able to excite nearby passive axons. Our simulation indicates that the static electric field produced by sodium ion channels in one node of Ranvier is improbable to stimulate the ion channels in the adjacent neighboring node. However, the ion channel ring in one node of Ranvier could induce the shift of membrane potential (0.01 mV) on the node at nearby axons (100 μm) in a bundle of axon synchronously, suggesting zig-zag propagation of action potential. Together with the superposition effect of ephaptic feedback field generated by the synchronized movement of adjacent parallel axons stimulate the adjacent node of the original axon, strengthen the action potential to travel in a zig-zag pattern. Our model also provides an explanation for the rapid velocity of action potential propagation reported in experimental studies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11422045PMC
http://dx.doi.org/10.1016/j.heliyon.2024.e37637DOI Listing

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