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Published on: July 16, 2014
'Knock-down' of spinal CB1 receptors produces abnormal pain and elevates spinal dynorphin content in mice
Ahmet Dogrul1, Luis R Gardell, Shouwu Ma
1Department of Pharmacology, School of Medicine, Gülhane Military Medical Academy, 06018, Etlik, Ankara, Turkey.
Abstract:
Recent studies demonstrate the possible existence of tonic modulatory control of nociceptive input mediated by spinal cannabinoid receptors (CB1). Accordingly, it is predicted that a reduction in the spinal CB1 receptors may enhance sensitivity to sensory stimuli and a decrease in spinal antinociceptive potency to cannabinoid agonists. An antisense oligodeoxynucleotide (ODN) specific to the CB1 receptor was used to 'knock-down' CB1 receptors in the lumbar spinal cord and dorsal root ganglia by the local, repeated intrathecal (i.th.) administration of the ODN. This treatment resulted in a decrease in lumbar spinal CB1 receptor expression accompanied by a decrease in the response thresholds to both innocuous tactile and noxious thermal stimuli. The antinociceptive action of the CB1 agonist, WIN 55,212-2, by i.th. administration was also significantly attenuated after treatment with the antisense ODN. Similar treatment using a mismatch control ODN had no effect on receptor protein or on sensory thresholds. The effects of the antisense ODN treatment on sensory thresholds were fully reversed after discontinuation of the ODN injection. The antisense ODN treated rats also showed a significant increase in lumbar spinal dynorphin A. Acute i.th. injection of MK-801 or an antidynorphin antiserum blocked the antisense ODN-induced tactile and thermal hypersensitivity. These data support the possibility of endogenous inhibitory cannabinoid tone to limit spinal afferent input of thermal and tactile stimuli. Lifting of this inhibitory tone through a 'knock-down' of spinal CB1 receptors apparently lowers the thresholds for sensory input, as reflected by the actions of MK-801 to block tactile and thermal hypersensitivity. The increased spinal dynorphin may act to further promote afferent outflow and abnormal pain because sequestration of spinal dynorphin with antiserum also reverses the manifestations of abnormal pain following knock-down of CB1 receptors.
Insights
Reducing spinal cannabinoid receptors (CB1) in rats increased sensitivity to touch and heat. This suggests an endogenous cannabinoid system normally limits sensory input, and its disruption causes pain hypersensitivity.
Area of Science:
- Neuroscience
- Pharmacology
- Pain Research
Background:
- Spinal cannabinoid receptors (CB1) may tonically modulate nociceptive input.
- Reduced CB1 receptors are hypothesized to increase sensory sensitivity and decrease cannabinoid-mediated antinociception.
Purpose of the Study:
- To investigate the role of spinal CB1 receptors in sensory processing and pain modulation.
- To determine if reducing CB1 receptor expression affects sensitivity to tactile and thermal stimuli.
Main Methods:
- Antisense oligodeoxynucleotide (ODN) was used to reduce CB1 receptor expression in rat lumbar spinal cord.
- Intrathecal administration of ODN and a CB1 agonist (WIN 55,212-2) were employed.
- Sensory thresholds, receptor expression, and effects of MK-801 and antidynorphin antiserum were assessed.
Main Results:
- Reduced spinal CB1 receptor expression led to decreased response thresholds for tactile and thermal stimuli.
- Antinociceptive effects of a CB1 agonist were attenuated.
- These effects were reversed upon ODN discontinuation and blocked by MK-801 or antidynorphin antiserum.
- Increased spinal dynorphin A was observed.
Conclusions:
- Data support an endogenous inhibitory cannabinoid tone limiting spinal afferent input.
- Disrupting this tone via CB1 receptor knockdown lowers sensory thresholds, potentially involving dynorphin.
- Findings highlight the role of spinal CB1 receptors in regulating sensory perception and pain.
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