arXiv · 2111.02689
Long anisotropic absolute refractory periods with rapid rise-times to reliable responsiveness
Abstract
Refractoriness is a fundamental property of excitable elements, such as neurons, indicating the probability for re-excitation in a given time-lag, and is typically linked to the neuronal hyperpolarization following an evoked spike. Here we measured the refractory periods (RPs) in neuronal cultures and observed that an average anisotropic absolute RP could exceed 10 milliseconds and its tail 20 milliseconds, independent of a large stimulation frequency range. It is an order of magnitude longer than anticipated and comparable with the decaying membrane potential timescale. It is followed by a sharp rise-time (relative RP) of merely ~1 millisecond to complete responsiveness. Extracellular stimulations result in longer absolute RPs than solely intracellular ones, and a pair of extracellular stimulations from two different routes exhibits distinct absolute RPs, depending on their order. Our results indicate that a neuron is an accurate excitable element, where the diverse RPs cannot be attributed solely to the soma and imply fast mutual interactions between different stimulation routes and dendrites. Further elucidation of neuronal computational capabilities and their interplay with adaptation mechanisms is warranted.
Explore related subjects
Keep this discovery
Shira Sardi, Roni Vardi, Yael Tugendhaft, Anton Sheinin, Amir Goldental, Ido Kanter. 2021-11-04. Long anisotropic absolute refractory periods with rapid rise-times to reliable responsiveness. https://doi.org/10.1103/physreve.105.014401
Cite the original work for its findings. Save a collection to share your selection of sources.