DocumentCode
3358412
Title
Effect of channel blocking on spike propagation in myelinated axons
Author
Uzun, Rukiye ; Özer, Mahmut
fYear
2010
fDate
22-24 April 2010
Firstpage
85
Lastpage
88
Abstract
Voltage-gated ion channels embedded in neuronal membranes are of great importance in the generation and propagation of electrical signals in the excitable membranes. These channels fluctuate randomly between open and closed states. Blockage of a given channel type is crucial to understand the impact of specific ion channel type on the neuronal dynamics for a given cell size. In this study, the impact of channel blocking on the spike propagation through myelinated axons is examined by using a compartmental stochastic axon model. Potassium channel blocking increases the transmission reliability while sodium channel blocking decreases it. On the other hand, potassium channel blocking decreases the thresold value for the electrical coupling between the nodes of Ranvier while sodium channel blocking increases it. Results also show that an increase in transmission reliability results in the increase in the spike train regularity.
Keywords
bioelectric phenomena; biomembrane transport; neurophysiology; physiological models; potassium; sodium; stochastic processes; electrical signal propagation; myelinated axons; neuronal membranes; nodes of Ranvier; sodium channel blocking; spike propagation; stochastic axon model; transmission reliability; voltage-gated potassium ion channel blocking; Biomembranes; Firing; Fluctuations; Nerve fibers; Noise; Physics;
fLanguage
English
Publisher
ieee
Conference_Titel
Signal Processing and Communications Applications Conference (SIU), 2010 IEEE 18th
Conference_Location
Diyarbakir
Print_ISBN
978-1-4244-9672-3
Type
conf
DOI
10.1109/SIU.2010.5652993
Filename
5652993
Link To Document