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J Neurophysiol (June 2, 2004). doi:10.1152/jn.00355.2004
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Submitted on April 6, 2004
Accepted on June 1, 2004

Voltage Gated Ion Channels in Nociceptors:Modulation by cGMP

Lieju Liu1*, Tianming Yang1, Michael J. Bruno1, Olaf S. Andersen1, and Sidney A. Simon1

1 Anesthesiology, Duke University, Durham, NC, USA

* To whom correspondence should be addressed. E-mail: lieju{at}neuro.duke.edu.

In tissue or nerve injury, proinflammatory mediators are released that can modulate a variety of ion channels found in nociceptors. The changes in activity of these channels, which primarily occurs through changes in intracellular pathways, may lead to the pathological states of hyperalgesia and allodynia. To understand further the regulatory mechanisms underlying the changes in channel activity, we used whole-cell patch-clamp recordings from capsaicin-sensitive nociceptive neurons in rat trigeminal ganglion neurons to examine how the cGMP-dependent pathways may regulate ion channel function. Addition of the CPT-cGMP, a membrane permeant modulator of ion channels, decreased the number of evoked action potentials by 36% and inhibited the tetrodotoxin-resistant (TTX-R) sodium currents and IA potassium currents by 37% and 32%, respectively. Delayed rectifier potassium (IK) currents were unaffected, suggesting that the effects of CPT-cGMP are unlikely to arise from a nonspecific effect on channel activity, as a consequence of the adsorption of amphipathic CPT-cGMP molecules to the membranes bilayer component. This conclusion was reinforced by the lack of changes in gramicidin A channel function in the presence of CTP-cGMP. In summary, the activation of the cGMP-dependent pathways reduces nociceptor excitability, in part, by decreasing the activity of voltage-gated TTX-R sodium channels. This pathway may be a target for efforts to produce selective analgesics.




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