Literature DB >> 14744604

Effect of K+ channel modulators on the antiallodynic effect of gabapentin.

Teresa Mixcoatl-Zecuatl1, Roberto Medina-Santillán, Gerardo Reyes-García, Guadalupe C Vidal-Cantú, Vinicio Granados-Soto.   

Abstract

The effect of K+ channel inhibitors on the antiallodynic activity induced by spinal gabapentin was assessed in rats. Ligation of L5 and L6 spinal nerves made the rats allodynic, whereas that intrathecal administration of gabapentin (25-200 microg) reduced tactile allodynia in a dose-dependent manner. Spinal pretreatment with glibenclamide (12.5-50 microg, ATP-sensitive K+ channel inhibitor), charybdotoxin (0.01-1 ng) or apamin (0.1-3 ng, large-and small-conductance Ca2+-activated K+ channel blockers, respectively), but not margatoxin (0.01-10 ng, voltage-dependent K+ channel inhibitor), significantly prevented gabapentin-induced antiallodynia. Pinacidil (1-30 microg, K+ channel opener) significantly reduced nerve ligation-induced allodynia. Intrathecal glibenclamide (50 microg), charybdotoxin (1 ng) and apamin (3 ng), but not margatoxin (10 ng), significantly reduced pinacidil-induced antiallodynia. K+ channel inhibitors alone did not modify allodynia produced by spinal nerve ligation. Results suggest that gabapentin and pinacidil may activate Ca2+-activated and ATP-sensitive K+ channels in order to produce part of its spinal antiallodynic effect in the Chung model.

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Year:  2004        PMID: 14744604     DOI: 10.1016/j.ejphar.2003.11.022

Source DB:  PubMed          Journal:  Eur J Pharmacol        ISSN: 0014-2999            Impact factor:   4.432


  8 in total

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8.  Protective effects of gabapentin on allodynia and alpha 2 delta 1-subunit of voltage-dependent calcium channel in spinal nerve-ligated rats.

Authors:  Tae Soo Hahm; Hyun Joo Ahn; Chang-Dae Bae; Han-Seop Kim; Seung Woon Lim; Hyun Sung Cho; Sangmin M Lee; Woo Seog Sim; Jie Ae Kim; Mi Sook Gwak; Soo Joo Choi
Journal:  J Korean Med Sci       Date:  2009-02-28       Impact factor: 2.153

  8 in total

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