Cite this article:
Rong Hu, Yong Xie. Conduction failure in axonal signal propagation: Effects of Ih in a Hodgkin–Huxley cable modelJ. Chin. Phys. B, 2026, 35(6): 068706.
| Rong Hu, Yong Xie. Conduction failure in axonal signal propagation: Effects of Ih in a Hodgkin–Huxley cable modelJ. Chin. Phys. B, 2026, 35(6): 068706. |
Conduction failure in axonal signal propagation: Effects of Ih in a Hodgkin–Huxley cable model
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Abstract
Axonal conduction failure, characterized by spike loss during propagation, represents a fundamental nonlinear phenomenon underlying unreliable signal conduction in excitable media, but its dynamical origins remain unclear. Here, we develop a Hodgkin–Huxley cable model to investigate conduction failure during axonal propagation, incorporating the hyperpolarization-activated cyclic nucleotide-gated (Ih) current. By varying the Ih conductance gh, diffusion coefficient D, stimulation period Ts, and temperature T, we quantify conduction reliability using conduction rate and conduction velocity. Increasing gh elevates the resting potential and expands the parameter region supporting faithful conduction. Conduction rate maps in the (Ts, D) plane reveal that reliable conduction requires sufficient axial diffusion and appropriate input timing. Conduction velocity increases monotonically with D but shows nontrivial dependence on Ts and gh. Temperature reshapes axonal conduction dynamics by suppressing spike initiation at low T and inducing spike multiplication at high T. Bifurcation analysis links these effects to T- and gh-dependent shifts of saddle-node and Hopf bifurcation boundaries. -
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