Literature DB >> 8994216

Selective blockade of peripheral delta opioid agonist induced antinociception by intrathecal administration of delta receptor antisense oligodeoxynucleotide.

E J Bilsky1, T Wang, J Lai, F Porreca.   

Abstract

Previous studies have shown that intrathecal (i.t.) administration of antisense, but not mismatch, oligodeoxynucleotides (ODNs) to the cloned delta opioid receptor (DOR) can inhibit the antinociceptive actions of i.t. delta (delta), but not mu (mu) or kappa (kappa), opioid agonists. As a major portion of spinal opioid receptors are localized on the central terminals of the small afferent fibers, we hypothesized that the effects of antisense ODNs given i.t. might be the result of actions at the level of the cell body in the dorsal root ganglion (DRG). This possibility was investigated by assessing the antinociceptive actions of an i.t. or intrapaw (ipaw) administered mu (morphine), delta ([D-Ala2, Glu4]deltorphin) or kappa (CI977) opioid agonist in rats treated with i.t. saline or antisense or mismatch ODNs to the DOR (12.5 micrograms, twice-daily for 3 days). The opioid agonists produced significant antinociception in the 5% formalin-flinch test following either i.t. or ipaw administration. DOR antisense ODN treatment blocked the antinociceptive actions of both i.t. or ipaw [D-Ala2, Glu4]deltorphin without affecting the antinociceptive actions of i.t. or ipaw morphine or CI977. Radioligand binding studies with [3H]naltrindole (NTI), a delta selective antagonist, indicated an approximate 50% decrease in delta opioid receptors in the lumbar spinal cord following i.t. DOR antisense, but not mismatch, ODN treatment. DOR antisense or mismatch ODN treatment did not affect nu or kappa radioligand binding in lumbar spinal cord. These data suggest the possibility that peripheral proteins can be targeted with i.t. antisense ODNs providing significant opportunities for the exploration of the physiological and pathological significance of these substances.

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Year:  1996        PMID: 8994216     DOI: 10.1016/s0304-3940(96)13262-6

Source DB:  PubMed          Journal:  Neurosci Lett        ISSN: 0304-3940            Impact factor:   3.046


  11 in total

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Journal:  J Neurosci       Date:  1999-10-01       Impact factor: 6.167

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Review 3.  Tetrodotoxin-resistant Na+ currents and inflammatory hyperalgesia.

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Review 4.  A comparison of the potential role of the tetrodotoxin-insensitive sodium channels, PN3/SNS and NaN/SNS2, in rat models of chronic pain.

Authors:  F Porreca; J Lai; D Bian; S Wegert; M H Ossipov; R M Eglen; L Kassotakis; S Novakovic; D K Rabert; L Sangameswaran; J C Hunter
Journal:  Proc Natl Acad Sci U S A       Date:  1999-07-06       Impact factor: 11.205

Review 5.  Alleviating pain with delta opioid receptor agonists: evidence from experimental models.

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6.  kappa -opioid receptor agonists modulate visceral nociception at a novel, peripheral site of action.

Authors:  S K Joshi; X Su; F Porreca; G F Gebhart
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7.  Morphine peripheral analgesia depends on activation of the PI3Kgamma/AKT/nNOS/NO/KATP signaling pathway.

Authors:  Thiago M Cunha; Danilo Roman-Campos; Celina M Lotufo; Hugo L Duarte; Guilherme R Souza; Waldiceu A Verri; Mani I Funez; Quintino M Dias; Ieda R Schivo; Andressa C Domingues; Daniela Sachs; Silvana Chiavegatto; Mauro M Teixeira; John S Hothersall; Jader S Cruz; Fernando Q Cunha; Sergio H Ferreira
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8.  Role of nociceptor αCaMKII in transition from acute to chronic pain (hyperalgesic priming) in male and female rats.

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9.  Hydrogen sulphide induces micro opioid receptor-dependent analgesia in a rodent model of visceral pain.

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10.  Endogenous kappa-opioid receptor systems inhibit hyperalgesia associated with localized peripheral inflammation.

Authors:  R J Schepers; Janet Lynn Mahoney; Brenda Jean Gehrke; Toni Shaun Shippenberg
Journal:  Pain       Date:  2008-03-19       Impact factor: 7.926

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