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C E Inturrisi

Publications and source records attributed to C E Inturrisi.

At least 37 records · Page 2Linked to original sources

d-Methadone is antinociceptive in the rat formalin test.

The l-isomer of methadone possesses opioid activity, whereas the d-isomer is weak or inactive as an opioid. Both d- and l-methadone have been shown to bind to the N-methyl-D-aspartate (NMDA) receptor. To determine whether d-methadone has functional, in vivo NMDA receptor antagonist activity, the antinociceptive effects of d-methadone were evaluated in the rat tail-flick and formalin tests. Cumulative dose-response analysis in the tail-flick test revealed an ED50 value for intrathecal (spinal) l-methadone of 15.6 microg/rat. In contrast, spinal d-methadone produced no antinociception at a cumulative dose of 460 microg/rat. d-Methadone in a dose range from 32 to 320 microg/rat dose-dependently reduced formalin-induced flinching behavior during phase 2 but not during phase 1 of the formalin test. These antinociceptive effects of d-methadone were not blocked by a spinal dose of naloxone that effectively antagonized an antinociceptive (tail-flick test) dose of l-methadone. d-Methadone at an intrathecal dose of 250 microg shifted the ED50 value for NMDA-induced nociceptive behaviors more than 3-fold to the right, which indicates an antagonism of these NMDA receptor-mediated effects. These results indicate that d-methadone is antinociceptive as a result of its NMDA receptor antagonist activity.

Analgesics, Opioid↗

The competitive alpha-amino-3-hydroxy-5-methylisoxazole-4-propionate receptor antagonist LY293558 attenuates and reverses analgesic tolerance to morphine but not to delta or kappa opioids.

Antagonists of the NMDA type of excitatory amino acid (EAA) receptor attenuate or reverse the development of tolerance to the analgesic effects of the mu opioid agonist morphine, the delta-1 opioid agonist DPDPE but not the kappa-1 agonist U50,488H or the kappa-3 agonist naloxone benzoylhydrazone. The role of the AMPA subtype of EAA receptor in analgesic tolerance was examined using LY293558, a selective competitive antagonist that is active after systemic administration. Administration of morphine, DPDPE, or U50,488H three times daily for 3 days according to an escalating dosing schedule resulted in analgesic tolerance as indicated by an increase in analgesic ED50 values using the tail-flick test in mice. Analgesic tolerance was attenuated when mice received a continuous subcutaneous infusion of LY293558 at doses of 30, 45 or 60 mg/kg/24 hr via an osmotic pump concurrent with the morphine treatment. Continuous subcutaneous infusion of LY293558 (45 mg/kg/24 hr) also reversed established morphine tolerance. In contrast, continuous subcutaneous infusion of the highest dose of LY293558 (60 mg/kg/24 hr) was ineffective in preventing the development of analgesic tolerance to DPDPE or U50,488H. Continuous subcutaneous infusion of LY293558 (60 mg/kg/24 hr) for 3 days protected mice from generalized convulsions produced by the selective AMPA agonist ATPA, indicating that the dosage of LY293558 that attenuated morphine tolerance was effective as an antagonist at AMPA receptors. These results demonstrate that AMPA receptors may play a role in the development and maintenance of morphine, but not DPDPE or U50,488H, analgesic tolerance.

3,4-Dichloro-N-methyl-N-(2-(1-pyrrolidinyl)-cycloh↗

Cerebrospinal fluid distribution of opioids after intraventricular & lumbar subarachnoid administration in sheep.

The study of opioid distribution in blood and cerebrospinal fluid (CSF) is required to understand pharmacokinetic-pharmacodynamic relationships following lumbar intrathecal (it) and intracerebroventicular (i.c.v.) administration, and to investigate the contributions of spinal or supraspinal sites of action. The sheep model developed for pharmacokinetic study of analgesics allows atraumatic sampling of plasma and CSF after drug administration by the intravenous (i.v.), i.c.v., and it routes in an unanesthetized animal. Five adult female sheep were prepared with femoral vascular catheters, lumbar it and epidural cannulae, i.c.v. cannulae, and cisterna magna cannulae. Hydromorphone, methadone, naloxone, and [14C] sucrose were injected and collected by two methods: 1) injection into the i.c.v. cannula with lumbar CSF samples collected via the lumbar cannula and 2) injection into the lumbar cannula and cisternal CSF samples collected via ventriculocisternal cannula. Hydromorphone, morphine, and [14C] sucrose were detected at 90-105 min in lumbar CSF after i.c.v. injection. Hydromorphone and [14C] sucrose were detected in i.c.v. cerebrospinal fluid at 50 min after lumbar i.t. injection. Methadone was not detected in i.c.v. cerebrospinal fluid after i.t. injection, nor was methadone significantly detected in lumbar CSF after i.c.v. injection. These data indicate that i.c.v. and i.t. administration of lipophilic opioids produces CSF distributions different from those of hydrophilic opioids. This suggests that lipophilic opioids such as methadone or naloxone exert their effects predominantly on tissues near the site of injection. The study of i.t. and i.c.v. opiate administration and CSF pharmacokinetics may therefore have direct clinical implications.

Analgesics, Opioid↗

An antisense oligodeoxynucleotide to the delta opioid receptor (DOR-1) inhibits morphine tolerance and acute dependence in mice.

Pharmacological data from several laboratories support a modulatory role for the delta opioid receptor in morphine analgesia, tolerance, and physical dependence. We examined the role of the delta opioid receptor in these processes using an in vivo antisense strategy in mice. Intracerebroventricular administration of a 20mer antisense or a mismatch control oligodeoxynucleotide (ODN) targeting the mRNA of the cloned delta opioid receptor (DOR-1) for 3 days did not affect baseline nociceptive thresholds or morphine analgesia compared to untreated or saline-treated mice. However, dose-response studies indicate that the induction of morphine tolerance following 3 days of chronic morphine administration was blocked in antisense but not mismatch ODN or saline-treated mice. Antisense ODN treatment also blocked the development of acute morphine dependence, whereas similar protection was not afforded to mice treated with saline or mismatch ODN. This study demonstrates the relevance of the cloned DOR-1 in morphine tolerance and dependence and provides new evidence for a modulatory role of the delta opioid receptor using this novel approach.

Animals↗

Retinoic acid-induced increase in delta-opioid receptor and N-methyl-D-aspartate receptor mRNA levels in neuroblastoma x glioma (NG108-15) cells.

We determined the effects of all-trans retinoic acid (RA) on the levels of delta opioid receptor (DOR) mRNA and N-Methyl-D-Aspartate receptor (NMDAR1) mRNA in neuroblastoma x glioma hybrid cells (NG108-15) by use of quantitative solution hybridization assays. The assays utilized riboprobes complementary to major portions of the coding region of the DOR and NMDAR1 cDNAs. At 10 microM RA a 3-fold increase in DOR mRNA at 48 h, and later (144 h) alterations were observed in NMDAR1 mRNA levels. Northern blot analysis revealed six transcripts for DOR mRNA ranging in size from 8.7 to 2.0 Kb, and three transcripts for NMDAR1 mRNA ranging in size from 4.1 to 3.5 Kb. Neither the size nor the fractional band intensity was affected by RA treatment. The delayed induction of DOR mRNA suggests an indirect mechanism by which RA acts on transcription of this gene. A surprising induction of DOR mRNA by the protein synthesis inhibitor cycloheximide (CHX) suggests that either a repressor molecule or degrading enzymes/proteases may regulate basal levels of this mRNA. Treatment with RA resulted in a concentration- and time-dependent morphological differentiation characterized by increased size of the cell body and the appearance of numerous short and long processes.

Animals↗

Competitive and non-competitive NMDA antagonists block the development of antinociceptive tolerance to morphine, but not to selective mu or delta opioid agonists in mice.

N-Methyl-D-aspartate (NMDA) receptor antagonists have been shown to block the development of antinociceptive tolerance to morphine. Assessment of the effects of NMDA antagonists on development of antinociceptive tolerance to selective opioid mu (mu) and delta (delta) agonists, however, has not been reported. In these experiments, selective mu and delta receptor agonists, and morphine, were repeatedly administered to mice either supraspinally (i.c.v.) or systemically (s.c.), alone or after pretreatment with systemic NMDA antagonists. Antinociception was evaluated using a warm-water tail-flick test. Repeated i.c.v. injections of mu agonists including morphine, fentanyl, [D-Ala2, NMePhe4, Gly-ol]enkephalin (DAMGO) and Tyr-Pro-NMePhe-D-Pro-NH2 (PL017) or [D-Ala2, Glu4]deltorphin, a delta agonist, or s.c. injections of morphine or fentanyl, produced antinociceptive tolerance as shown by a significant rightward displacement of the agonist dose-response curves compared to controls. Single injections or repeated administration of MK801 (a non-competitive NMDA antagonist) or LY235959 (a competitive NMDA antagonist) at the doses employed in this study did not produce behavioral toxicity, antinociception or alter the acute antinociceptive effects of the tested opioid agonists. Consistent with previous reports, pretreatment with MK801 or LY235959 (30 min prior to agonist administration throughout the tolerance regimen) prevented the development of antinociceptive tolerance to i.c.v. or s.c. morphine. Neither NMDA antagonist, however, affected the development of antinociceptive tolerance to i.c.v. fentanyl, DAMGO, or [D-Ala2, Glu4]deltorphin. Additionally, MK801 pretreatment did not affect the development of antinociceptive tolerance to i.c.v. PL017 or to s.c. fentanyl. Further, MK801 pretreatment also did not affect the development of tolerance to the antinociception resulting from a cold-water swim-stress episode, previously shown to be a delta-opioid mediated effect. These data lead to the suggestion that the mechanisms of tolerance to receptor selective mu and delta opioids may be regulated differently from those associated with morphine. Additionally, these findings emphasize that conclusions reached with studies employing morphine cannot always be extended to 'opiates' in general.

Analgesics, Opioid↗

Ketamine attenuates and reverses morphine tolerance in rodents.

BACKGROUND: The development of tolerance complicates the use of morphine to manage persistent pain. N-methyl-D-aspartate receptor antagonists can attenuate or reverse morphine tolerance. The authors studied ketamine's ability to modulate morphine tolerance. METHOD: Tolerance was produced in mice given morphine subcutaneously and was assessed by a cumulative dose-response analysis using the tail-flick test. The ability of ketamine at 0.3, 3, or 10 mg/kg given subcutaneously before and after morphine to attenuate the development of tolerance was assessed. The ability of 10 mg/kg ketamine to reverse tolerance produced by the subcutaneous implantation of morphine pellets to mice was also assessed. Rats were made tolerant to intraspinal morphine and the effects of the coadministration of 12 micrograms intraspinal ketamine were assessed. RESULTS: Morphine given subcutaneously produced a fivefold increase in the median effective (ED50) dose of morphine, which was dose-dependently attenuated by subcutaneously administered ketamine. A tenfold increase in the morphine ED50 produced by morphine pellets was completely reversed by ketamine given subcutaneously. Intraspinal morphine produced a 46-fold increase in its ED50, which was almost completely attenuated by the coadministration of intraspinal ketamine. CONCLUSIONS: Systemically administered ketamine attenuates and reverses systemically induced morphine tolerance in mice, and intraspinal ketamine attenuates tolerance produced by intraspinal morphine in rats.

Analgesia↗

The effect of the irreversible mu-opioid receptor antagonist clocinnamox on morphine potency, receptor binding and receptor mRNA.

In these experiments, the effect of the irreversible mu-opioid receptor antagonist clocinnamox on the potency of morphine, opioid receptor binding and mu-opioid receptor mRNA was examined. Mice were injected with clocinnamox (0.32-12.8 mg/kg) and the analgesic potency of morphine was examined 24 h later. Clocinnamox produced a dose-dependent decrease in the potency of morphine; and at the higher dose of clocinnamox the maximal analgesic effect was not observed following doses of morphine in excess of 500 mg/kg s.c. In saturation binding studies in brain, clocinnamox (0.32-25.6 mg/kg) dose-dependently decreased mu-opioid ([3H][D-Ala2,MePhe4,Gly-ol5]enkephalin; DAMGO) receptor Bmax with relatively minimal effects on Kd. Binding to delta-opioid receptor ([3H][D-Pen2,D-Pen5]enkephalin; DPDPE) and kappa-opioid receptor ([3H](5,7,8)-(-)-N-methyl-N-(7-(1-pyrrolidinyl)-1-oxaspiro(4,5)dec -8-yl) benzeneacetamide; U69,593) was not affected by clocinnamox. The effect of clocinnamox was time-dependent in that the greatest changes in morphine potency and mu-opioid receptor density were observed within 24 h of administration and decreased with time (336 h). Although mu-opioid receptor density was decreased to less than 30% of control 24 h following clocinnamox (12.8 mg/kg) and had increased to 80% by 5 days, a solution hybridization assay for mu-opioid receptor mRNA transcript revealed no changes in the steady-state levels of this mRNA. These studies indicate that clocinnamox is an irreversible antagonist at the mu-opioid receptor since it appears to selectively affect receptor density with minimal effects on affinity. Furthermore, clocinnamox produces time- and dose-dependent changes in Bmax and these changes appear to be unrelated to changes in mu-opioid receptor mRNA. It is possible that the repopulation of brain by mu-opioid receptors following clocinnamox is mediated by an existing pool of receptors that are activated following treatment.

Animals↗

Assessment of delta opioid antinociception and receptor mRNA levels in mouse after chronic naltrexone treatment.

The antinociceptive potency of the delta opioid receptor (DOR) agonist [D-Ala2]Deltorphin II and the levels of DOR mRNA were measured in mice chronically treated with naltrexone. ED50 determinations for [D-Ala2]Deltorphin II, using the tail-flick test with mice that had been treated with naltrexone for 7 days followed by a 24 h naltrexone free period (study day 8), revealed a 7.7-fold increase in antinociceptive potency, indicating functional supersensitivity. Utilization of a micro-dissection technique followed by quantitative solution hybridization measurements of RNA extracts from mouse CNS revealed levels of DOR mRNA ranging from 2.8 pg/microgram RNA in the caudate-putamen to 0.3 pg/microgram RNA in cerebellum. However, despite the functional increase in DOR sensitivity, the DOR mRNA levels in selected brain areas and spinal cord of naltrexone-treated and control mice did not differ. Assessment of DOR mRNA levels in whole brain and selected CNS regions after shorter treatment intervals (1, 6 and 12 h and 2 and 7 days) in naltrexone-treated and control mice revealed a similar pattern of results. Northern blot analysis of mouse whole brain RNA extracts after 7 days of naltrexone treatment did not show any alteration in the size of the DOR transcript. These data demonstrate that DOR mRNA levels are not altered during and after chronic naltrexone treatment and therefore are not associated with opioid-induced DOR up-regulation or DOR functional supersensitivity.

Animals↗

Differential regulation of c-fos, proenkephalin and tyrosine hydroxylase gene expression by metrazole in the hamster adrenal and hippocampus.

Metrazole (MTZ) induces sequential activation of c-fos, proenkephalin (Penk) and tyrosine hydroxylase (TH) gene expression in the rat adrenal and c-fos and Penk gene expression in the rat hippocampus. As in the rat, MTZ produced a dose-dependent induction of c-fos mRNA in the hamster adrenal and hippocampus together with an increase in adrenal TH mRNA. Although MTZ-induction of preproenkephalin (PPenk) mRNA was observed in the hippocampus of the hamster, the same treatment failed to induce PPenk mRNA in the hamster adrenal. These results indicate that Penk gene expression in the hamster is differentially regulated in the adrenal and hippocampus. Furthermore, the regulation of adrenal Penk gene expression differs significantly when rat and hamster are compared.

Adrenal Glands↗

Proenkephalin gene expression: interaction of glucocorticoid and cAMP regulatory elements.

We used gel shift assays to determine the affinities of a 15 base glucocorticoid response element (GRE) derived from the rat proenkephalin (Penk) gene for the glucocorticoid receptor. A DNA binding domain of the glucocorticoid receptor interacted with a rat GRE (RGRE) with an apparent affinity intermediate between that of a consensus positive GRE oligo (GRE+) and a mismatch GRE oligo (GRE-). When inserted in front of a chloramphenicol acyl transferase (CAT) construct that is driven by a Penk promoter containing a cAMP response element, dexamethasone (10 microM) produced a 5-fold increase with GRE+, a small increase with RGRE, and no change with GRE- or the Penk promoter alone. Forskolin (20 microM) stimulated CAT activity 4- to 9-fold with each construct. However, dexamethasone plus forskolin caused a synergistic induction of CAT expression with the GRE+ oligo, no effect with the RGRE and an antagonistic effect with the Penk promoter alone and the GRE- oligo. These results demonstrate that GRE+, and to a lesser degree RGRE, can mimic the response of the endogenous Penk gene to dexamethasone and forskolin. Furthermore, a dexamethasone activated glucocorticoid receptor may inhibit cAMP mediated transcription of the Penk gene when a GRE+ or RGRE is not present.

Animals↗

Quantitation of mu-opioid receptor (MOR-1) mRNA in selected regions of the rat CNS.

The mu opioid receptor (MOR-1) mRNA was quantified in rat CNS by a sensitive solution hybridization (SH) technique, employing a 32P-labeled riboprobe derived from the coding region of MOR-1 cDNA. In a Northern blot analysis this riboprobe hybridized to a 14 kb form of rat MOR-1 mRNA. The linear range of SH assay extends from 1 to 250 pg of MOR-1 sense transcript (equivalent to 9.3-2325 pg of MOR-1 mRNA). A microdissection technique for reproducible sampling of selected CNS regions, followed by the SH assay, allowed for a quantitative study of MOR-1 mRNA distribution. The highest levels of MOR-1 mRNA were present in medial thalamus (17.8 +/- 0.3 pg/micrograms RNA), and the lowest in the cerebellum (0.4 +/- 0.1 pg/microgram RNA). Hypothalamus, dorsal spinal horn, nucleus raphe, periaqueductal gray, and sensorimotor cortex contained intermediate levels. This distribution closely parallels the pattern of mu receptor binding, suggesting that both the mRNA and the receptor protein are colocalized within most of the regions studied.

Amino Acid Sequence↗

NMDA antagonists and clonidine block c-fos expression during morphine withdrawal.

The c-fos gene is expressed in the central nervous system (CNS) in response to neuronal stimuli. Induction of c-fos in certain CNS regions occurs following naltrexone precipitated withdrawal in morphine dependent rats. Non-competitive (MK801) and competitive (LY274614) NMDA receptor antagonists and clonidine, an alpha2 partial agonist, attenuate the intensity of naltrexone precipitated withdrawal. We determined the levels of c-fos mRNA by solution hybridization in several brain regions in control and morphine dependent rats following pretreatment with saline, MK801 (1 mg/kg, s.c.), LY274614 (100 mg/kg, i.p.), or clonidine (1.5 mg/kg, i.p.). Morphine treatment increased c-fos mRNA levels in striatum (STR) and amygdala (AMY). Naltrexone did not alter c-fos mRNA levels in placebo-treated rats. However, naltrexone increased c-fos mRNA levels in morphine dependent rats in the nucleus accumbens (NA), frontal cortex (FC), AMY, and hippocampus (HIP) but not in STR or spinal cord. Pretreatment with MK801 blocked this effect of naltrexone in AMY but not in NA, FC, or HIP, while pretreatment with LY274614 or clonidine blocked this effect of naltrexone in AMY and NA but not in FC or HIP. These results further delineate both the neuroanatomical pathways involved in morphine withdrawal and the locus of action of compounds that reduce morphine-withdrawal symptoms.

Animals↗

Quantitative distribution of the delta opioid receptor mRNA in the mouse and rat CNS.

We have used a sensitive solution hybridization assay that employs a riboprobe obtained from the mouse delta opioid receptor (DOR) coding sequence to quantitate the relative abundance of DOR mRNA in the central nervous system (CNS) of the adult mouse and rat. In brain Poly A+ RNA extracts this riboprobe hybridized to a single 10 kb transcript from mouse and two transcripts, one of 12 and the other of 4.5 kb in size from rat. In mouse CNS the highest levels of DOR mRNA were found in the caudate-putamen at 3.3 +/- 0.1 (SEM) pg/micrograms RNA. DOR mRNA levels in the range from 2.6 to 2.1 pg/micrograms RNA were measured in frontal cortex, nucleus accumbens, whole brain and olfactory tubercle. Spinal cord, periaqueductal gray and hippocampus had DOR mRNA levels in the range from 1.8 to 1.5 pg/micrograms RNA, while medial thalamus and cerebellum had the lowest levels (0.5 pg/micrograms RNA). These results correlate with the reported relative distribution of DOR mRNA in mouse using an in situ hybridization technique. In rat CNS, the highest levels of DOR mRNA were measured in caudate-putamen at 2.3 +/- 0.1 pg equivalents/micrograms RNA. Whole brain, cerebral cortex, olfactory bulb and brain stem had levels in the range from 1.5 to 0.9 pg equivalents/micrograms RNA while the lowest DOR mRNA levels were measured at 0.5 pg equivalents/micrograms RNA or less in thalamus, hippocampus, substantia nigra and cerebellum. This study demonstrates the ability of solution hybridization assays to quantitate homologous (mouse) as well as similar but heterologous (rat) DOR mRNA levels.

Animals↗

CNS levels of mu opioid receptor (MOR-1) mRNA during chronic treatment with morphine or naltrexone.

The CNS levels of mu opioid receptor (MOR-1) mRNA were determined by solution hybridization in rats treated chronically with morphine or naltrexone. Morphine treatment (2 x 75 mg pellets were implanted SC on Day 1 and 2 more on Day 4) resulted in the development of tolerance to morphine's antinociceptive (analgesic) effect, as assessed by the hot plate procedure on treatment Day 7. Following the hot plate test, selected CNS regions were obtained by microdissection. The levels of MOR-1 mRNA in pg/microgram RNA ranged from 0.7 in sensorimotor cortex to 15.3 in medial thalamus. MOR-1 mRNA levels were not altered in the dorsal horn of spinal cord, nucleus raphe magnus, periaqueductal grey, hypothalamus, medial thalamus, or sensorimotor cortex. In a separate experiment, a 2 day exposure to naltrexone (2 x 30 mg pellets) had no effect on CNS levels of MOR-1 mRNA; however, after an 8 day exposure a decrease was detected in the nucleus raphe magnus (by 28%), hypothalamus (by 21%), and medial thalamus (by 27%). Chronic exposure to morphine or naltrexone did not result in alterations in the size of full-length MOR-1 mRNA from rat brain, or in the size of the region protected by the MOR-1 riboprobe (i.e., the entire coding region). Thus, the neuroadaptive processes associated with the development of analgesic tolerance to morphine do not involve concurrent changes in the steady-state levels of MOR-1 mRNA. Chronic treatment with naltrexone appears to produce a region-specific downregulation of MOR-1 mRNA levels, which may be secondary to the naltrexone-induced increase in mu receptor binding.

Animals↗

N-methyl-D-aspartate (NMDA) receptors, mu and kappa opioid tolerance, and perspectives on new analgesic drug development.

This laboratory perspective reviews the pharmagologic approaches that have been used in preclinical animal models to demonstrate the ability of competitive (LY274614) and noncompetitive (MK801 and dextromethorphan) N-methyl-D-aspartate (NMDA) receptor antagonists to attenuate or reverse the development of morphine tolerance. We provide additional data to support previous observations that these NMDA antagonists modulate morphine (mu) opioid tolerance but do not affect U50488H (kappa 1) opioid tolerance. A strategy, which utilizes efficacy as an NMDA receptor antagonist and clinical safety, provides the basis for a discussion of the clinical potential of dextromethorphan, ketamine, and felbamate as modulators of opioid tolerance in pain patients or opioid addicts. The potential use of NMDA receptor antagonists and nitric oxide synthase (NOS) inhibitors in neuropathic pain is also discussed.

3,4-Dichloro-N-methyl-N-(2-(1-pyrrolidinyl)-cycloh↗

Antisense oligodeoxynucleotides to the cloned delta receptor DOR-1: uptake, stability, and regulation of gene expression.

Phosphodiester antisense oligodeoxynucleotides (ODNs) directed against various domains of the cloned mouse delta receptor DOR-1 reduce delta-opioid receptor binding in vivo and in vitro. The present study examines the stability of an antisense ODN (275 nM) directed against the delta-opioid receptor and its effect on DOR-1 mRNA in cultured neuroblastoma cells and in vivo. When added to NG108-15 cells, much of the antisense ODN is degraded. However, > 1% is intact, associated with cells, and stable for at least 72 h. Northern blot analysis demonstrates that treatment of NG108-15 cells with the antisense ODN reduces the levels of a species of DOR-1 mRNA by approximately 25%. Similarly, intrathecal administration of the antisense ODN results in the accumulation of intact ODN within the spinal cord, which is stable for at least 72 h, although the levels of accumulation in vivo are lower than in vitro after either 4 or 72 h. Antisense ODN treatment lowers DOR-1 mRNA levels by approximately 25%. The loss of mRNA both in vivo and in vitro corresponds quite well to the decreases in receptor binding previously observed by our laboratory and is consistent with reduction of delta-opioid receptor protein in vitro as determined by western blot with a monoclonal antibody selective for the delta-opioid receptor. In conclusion, these studies indicate that a small, but significant, proportion of ODN is taken up by cells and remains intact for up to 72 h. This appears to be sufficient to down-regulate mRNA levels of delta-opioid receptors and their expression.

Animals↗

Dextromethorphan shows efficacy in experimental pain (nociception) and opioid tolerance.

The oral antitussive dextromethorphan is a clinically available N-methyl-D-aspartate receptor antagonist. Dextromethorphan has analgesic efficacy in the experimental formalin test, blocks the nociceptive activation of the immediate-early gene, c-fos proto-oncogene, and prevents and reverses the development of opiate analgesic tolerance in experimental models. These data suggest that dextromethorphan should be evaluated in a controlled clinical trial for analgesic efficacy in zoster-associated neuralgia.

Dextromethorphan↗