Conduction velocity is regulated by sodium channel inactivation in unmyelinated axons innervating the rat cranial meninges
Axonal conduction velocity varies according to the level of preceding impulse activity. In unmyelinated axons this typically results in a slowing of conduction velocity and a parallel increase in threshold. It is currently held that Na + âK + -ATPase-dependent axonal hyperpolarization is responsib...
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Veröffentlicht in: | The Journal of physiology 2008-02, Vol.586 (4), p.1089-1103 |
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Sprache: | eng |
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Zusammenfassung: | Axonal conduction velocity varies according to the level of preceding impulse activity. In unmyelinated axons this typically
results in a slowing of conduction velocity and a parallel increase in threshold. It is currently held that Na + âK + -ATPase-dependent axonal hyperpolarization is responsible for this slowing but this has long been equivocal. We therefore
examined conduction velocity changes during repetitive activation of single unmyelinated axons innervating the rat cranial
meninges. In direct contradiction to the currently accepted postulate, Na + âK + -ATPase blockade actually enhanced activity-induced conduction velocity slowing, while the degree of velocity slowing was
curtailed in the presence of lidocaine (10â300 μ m ) and carbamazepine (30â500 μ m ) but not tetrodotoxin (TTX, 10â80 n m ). This suggests that a change in the number of available sodium channels is the most prominent factor responsible for activity-induced
changes in conduction velocity in unmyelinated axons. At moderate stimulus frequencies, axonal conduction velocity is determined
by an interaction between residual sodium channel inactivation following each impulse and the retrieval of channels from inactivation
by a concomitant Na + âK + -ATPase-mediated hyperpolarization. Since the process is primarily dependent upon sodium channel availability, tracking conduction
velocity provides a means of accessing relative changes in the excitability of nociceptive neurons. |
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ISSN: | 0022-3751 1469-7793 |
DOI: | 10.1113/jphysiol.2007.145383 |