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A Cowan

Publications and source records attributed to A Cowan.

At least 73 records · Page 4Linked to original sources

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Dental Caries↗

Supraspinal and spinal potency of selective opioid agonists in the mouse writhing test.

Three agonists with the highest degree of selectivity available for mu ([D-Ala2,NMePhe4,Gly-ol]enkephalin, DAGO), delta ([ D-Pen2,D-Pen5]enkephalin, DPDPE) and kappa (U-50,488H, U50) opioid receptors were compared for their activity in inhibiting acetic acid-induced writhing in mice. Additionally, three reference agonists for mu (morphine), delta ([ D-Ala2,D-Leu5]enkephalin, DADLE) and kappa (ketocyclazocine, KC) receptors were also studied in this test. The agonists were given directly into the lateral cerebral ventricle (i.c.v.) or into the lumbar spinal subarachnoid space (intrathecal), and the potency of each compound was compared across injection sites and with data previously obtained in a thermal analgesic test (mouse hot-plate test). The rank order of potency for inhibition of writhing after i.c.v. administration was DAGO greater than DADLE greater than morphine greater than DPDPE; KC and U50 showed no significant activity by this route. After intrathecal administration, the compounds inhibited writhing with a rank potency order of DAGO greater than KC greater than morphine = DADLE greater than DPDPE greater than U50. All compounds were more potent in inhibiting writhing at spinal sites than at supraspinal sites; DPDPE and DAGO were 15 and 24 times more potent after intrathecal than after i.c.v. administration, respectively. The proposed delta agonists DPDPE and DADLE inhibited writhing at both spinal and supraspinal sites. Further, although the proposed kappa-acting compounds KC and U50 were effective at relatively low doses at spinal levels, these compounds lacked activity at supraspinal sites at doses not causing sedation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Neurokinin-induced salivation in the anesthetized rat: a three receptor hypothesis.

Substance P (3 micrograms/kg), neurokinin A (20 micrograms/kg), neurokinin B (6 micrograms/kg) and acetylcholine (875 micrograms/kg) all produced salivation upon i.v. infusion in the anesthetized rat. Against single equivalent agonist doses, atropine (135 micrograms/kg i.v.) blocked both acetylcholine- and neurokinin B-, but not substance P- or neurokinin A-induced salivation. [D-Pro2,D-Trp7,9]-substance P (1 mg/kg i.v.), a putative substance P antagonist, reduced responses to mammalian neurokinins but caused a 2-fold potentiation of acetylcholine-induced salivation. [D-Pro2,D-Trp6,8,Nle10]-Neurokinin B (1 mg/kg i.v.), a novel putative neurokinin B antagonist, significantly reduced substance P- and neurokinin B- but not acetylcholine- or neurokinin A-induced salivation. The three agonists (at doses that produced salivation) and [D-Pro2,D-Trp6,8,Nle10]-neurokinin B (1 mg/kg i.v.) lowered blood pressure in anesthetized rats by 35 to 40%. [D-Pro2,D-Trp7,9]-Substance P (1 mg/kg i.v.) had no significant effect on blood pressure. Hydralazine at 0.60 mg/kg (i.v.), a dose which lowered blood pressure by 47%, did not reduce substance P-induced salivation. Thus, blockade of neurokinin-induced salivation by [D-Pro2,D-Trp6,8,Nle10]-neurokinin B was probably not due to hypotension. Based on the differential effects of the three antagonists on neurokinin- and acetylcholine-induced salivation, we hypothesize the existence of three distinct neurokinin receptors in rat salivary gland, and suggest that neurokinin B receptors reside presynaptically.

Anesthesia↗

Intrathecal bombesin-induced inhibition of gastrointestinal transit: requirement for an intact pituitary-adrenal axis.

The role of the pituitary-adrenal axis in the inhibition of gastrointestinal transit caused by intrathecal administration of bombesin was examined. Bombesin (0.3-10 micrograms) slowed transit by this route in a dose-related manner. Either hypophysectomy or adrenalectomy prevented the inhibition of gastrointestinal transit associated with bombesin (10 micrograms, i.th.). The inhibitory gut effects of this peptide were not prevented in sham-operated rats. Intrathecal bombesin-induced inhibition of gastrointestinal transit is thus dependent upon an intact pituitary-adrenal axis.

Adrenal Glands↗

In vivo studies on delta opioid receptors.

[D-Pen2, D-Pen5]enkephalin (DPDPE), a selective agonist at delta opioid receptors, causes excessive vertical rearing when given icv to rats or s.c. to mice. Tolerance develops to this behaviour. Rats do not rear excessively when injected icv with the following prototype agonists at opioid receptors: DAGO, dynorphin A, U-50488H or SK&F 10047. The incidence of DPDPE-induced rearing is reduced when rats are pretreated s.c. with ICI 174864 (a selective antagonist at delta opioid receptors) (A50 = 0.09 mg/kg) but not by ICI 178173 (an inactive analogue of ICI 174864); this finding suggests that delta binding sites mediate the behaviour. Pretreatment with naloxone attenuates rearing but the antagonism is unimpressive over the dose range tested (0.05-1 mg/kg, s.c.). Low doses of haloperidol (A50 = 0.05 mg/kg, s.c.) antagonize the rearing. Dopamine may therefore mediate the behaviour through delta receptor modulation of dopamine release. The practical gain from this study is as follows: a simple, discriminating test is now available for evaluating novel delta agonists and antagonists in vivo.

Animals↗

Independent central and peripheral mediation of morphine-induced inhibition of gastrointestinal transit in rats.

The individual contributions of central (brain) and peripheral (enteric) sites in the mediation of the systemic actions of opioids are not well established. In this study, we made use of naltrexone methobromide, a quaternary analog of naltrexone, to separate the central and peripheral components of the slowing action of morphine on gastrointestinal transit in rats. It was established that i.c.v., but not s.c., administration of quaternary naltrexone antagonized morphine-induced analgesia in the radiant-heat tail-flick assay in rats. Thus, quaternary naltrexone probably does not enter the central nervous system in significant amounts after systemic administration. Systemic quaternary naltrexone antagonized, in a dose-related manner, the delaying effects of morphine on the movement of a charcoal meal along the gastrointestinal tract. Quaternary naltrexone was 30 or 100 times less potent than naltrexone when administered s.c. or i.c.v., respectively. Unlike naltrexone, quaternary naltrexone antagonized morphine-induced slowing of gastrointestinal transit only when administered by the same route (i.e., both s.c. or both i.c.v.). The apparent pA2 for s.c. quaternary naltrexone against s.c. morphine was not significantly different from the apparent pA2 for i.c.v. quaternary naltrexone against i.c.v. morphine. Distinct and independent central and peripheral systems appear to mediate morphine-induced inhibition of gastrointestinal transit in rats. However, the receptors are probably of the same type. Peripherally selective antagonists such as quaternary naltrexone may be useful in reversing morphine-induced inhibition of gastrointestinal transit without affecting analgesia.

Analgesia↗

Intrathecal morphine slows gastrointestinal transit in rats.

Intrathecal (i.th.) (by direct lumbar puncture) and intraperitoneal (i.p.) administration of morphine (30-100 micrograms/rat) caused a dose-related inhibition of gastrointestinal transit in the rat. Pretreatment with i.th. naloxone (5 micrograms at -5 min) reversed the effects of i.th., but not i.p., morphine. These results suggest that the spinal cord appears to be a target site for the inhibitory effects of morphine on gastrointestinal transit in the rat.

Animals↗

Rat cold water tail-flick: a novel analgesic test that distinguishes opioid agonists from mixed agonist-antagonists.

The models currently used to assess antinociceptive efficacy in animals are far from ideal. Those procedures that detect both opioid agonists and mixed agonist-antagonists fail to differentiate between them unless the noxious stimulus is adjusted. Furthermore, changes in the sensitivity of the test often result in positive responses being elicited from agents that are either not analgesics or only weak ones, at best. The technique described in this report uses cold water as the noxious stimulus in rats. It is simple, requires no complicated instrumentation or training, correlates well with clinical efficacy in man, and allows separation of opioid agonists from mixed agonist-antagonists without detecting non-opioid agents.

Analgesics↗

Cross-tolerance between morphine- and bombesin-induced inhibition of intestinal transit in rats.

Intracerebroventricular (i.c.v.) injection of either morphine or bombesin to rats inhibits intestinal transit of an intraduodenally administered radiochromium marker. In this work, we show that tolerance develops to this effect of bombesin after i.c.v. infusion of the peptide (0.5 micrograms/h for 4 days via an s.c. implanted Alzet 2001 osmotic minipump). Tolerance also develops to the inhibition of intestinal transit associated with i.c.v. morphine after s.c. injections of morphine. Bombesin-induced delay of transit is not attenuated by naltrexone (10 mg/kg, s.c.), a standard narcotic antagonist. Nevertheless, two-way cross-tolerance develops between bombesin and morphine in this system. This is a surprising result since both bombesin and morphine are believed to act on different receptors and cause opposite effects on intestinal motility in rats.

Animals↗

Effects of bombesin on behavior.

This report describes the influence of bombesin on the gross behavior of goldfish, frogs, mice, rats, guinea pigs, rabbits, chicks, pigeons and monkeys. Goldfish, frogs, chicks and pigeons were overtly unaffected by bombesin given centrally and/or peripherally. Mice, rats, guinea pigs, rabbits and monkeys responded quickly to intracerebroventricular (i.c.v.) and/or intrathecal (i.th.) administration of bombesin by displaying a range of behaviors suggestive of altered skin sensation. In mice, bombesin was essentially equipotent as a scratch inducer by i.c.v. and i.th. routes (A50 = 0.010-0.019 microgram) but 6800 times less potent i.p. In rats, bombesin-induced grooming and scratching behaviors were shown to be qualitatively different from those associated with ACTH-(1-24) and thyrotropin releasing hormone. Spantide and [D-Arg1, D-Pro2, D-Trp7,9, Leu11]substance P (both at 0.20, 0.50 and 0.80 microgram i.c.v.), two proposed bombesin receptor antagonists, did not markedly influence bombesin-induced scratching or hypothermia in rats.

Animals↗

Mu and delta, but not kappa, opioid agonists induce contractions of the canine small intestine in vivo.

Extraluminal strain gage transducers were sutured along the transverse axis of the duodenum in order to monitor circular muscle contractile activity in the pentobarbital anesthetized dog. Administration by intravenous bolus of a variety of mu- and delta-directed opioid ligands resulted in a dose-dependent increase in duodenal contractile activity. In contrast, all kappa-directed ligands were devoid of stimulatory activity. Naloxone reversed the effects of normorphine and [Met5]enkephalin but was 20 times more effective against normorphine than [Met5]enkephalin. Based on the inactivity of all kappa ligands examined and the differential potency of naloxone against [Met5]enkephalin and normorphine, we suggest that this model may be useful in the classification of opioid ligands as to their receptor selectivity in vivo. Further, these data indicate that the stimulation of duodenal contractile activity is not mediated by enteric kappa receptors.

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

Studies in vivo with ICI 174864 and [D-Pen2, D-Pen5]enkephalin.

We studied the in vivo pharmacology of a selective agonist (DPDPE) and a selective antagonist (ICI 174864) at delta opioid receptors. ICI 174864 (10 micrograms icv) caused postural abnormalities, barrel rotation and hypothermia in rats. DPDPE induced behavioural arousal (at 75 micrograms icv) and barrel rotation (at 125 micrograms) in rats. ICI 174864 (10 micrograms icv) attenuated acetic acid induced writhing in mice. This action was antagonized by naloxone (10 but not 2 mg/kg s.c.). A lower, non-agonist dose of ICI 174864 (5 micrograms) antagonized DPDPE (3 micrograms icv) in this test without affecting DAGO (0.0006 micrograms icv), a selective agonist at mu receptors. In the mouse tail flick test, ICI 174864 (10-50 micrograms icv) did not significantly antagonize the agonist actions of DPDPE (40 micrograms icv) or DAGO (0.3 micrograms icv). At 10-50 micrograms icv, ICI 174864 had no marked effect on gastrointestinal transit in mice. ICI 174864 (25 micrograms icv or 20 mg/kg s.c.) did not interact with mu opioid receptors in mice rendered physically dependent on morphine.

Analgesics↗

Xorphanol.

Xorphanol is a new mixed agonist-antagonist from the morphinan class of analgesics. On the basis of animal experiments, the physical dependence liability of xorphanol is predicted to be of a low order in man. Conceptually, xorphanol is of interest since in vitro experiments have revealed anti-naloxone properties and resistance to antagonism by opioid antagonists. At the practical level, xorphanol is a well tolerated, orally active analgesic that provides effective pain relief clinically.

Animals↗

ICI 154,129, a delta-opioid receptor antagonist raises seizure threshold in rats.

Acute i.c.v. administration of ICI 154,129 (100-600 micrograms), a delta-opioid receptor antagonist, raised the seizure threshold in a dose-related manner in rats exposed to flurothyl, a volatile convulsant. Pretreatment with naloxone or beta-funaltrexamine (beta-FNA) antagonized this effect. Lower doses of ICI 154,129 (12.5-50 micrograms), which did not influence seizure threshold, selectively antagonized the anticonvulsant action of [D-Ala2,D-Leu5]enkephalin (DADLE) in the same procedure. Consequently, it may be inferred that ICI 154,129 at high doses has mu-agonist and at low doses delta-antagonist properties in the rat flurothyl test.

Animals↗

Studies on the excitatory and inhibitory influence of intracerebroventricularly injected opioids on seizure thresholds in rats.

The influence of centrally administered meperidine, normeperidine and pentazocine on the excitability of brain was studied by measuring the threshold for flurothyl-induced convulsions in rats. All three opioids are reported to lower seizure thresholds when given subcutaneously to rats in this test. Dose-and time-dependent changes in the seizure threshold occurred after intracerebroventricular injection of pentazocine (10-160 micrograms), meperidine (25-150 micrograms) and normeperidine (50-150 micrograms). Rapid increases in the seizure threshold were associated with pentazocine and meperidine, whereas a slowly developing decrease in the threshold was caused by normeperidine. Naloxone (10 mg/kg, s.c.) antagonized the anticonvulsant effect of meperidine (but not that of pentazocine) and enhanced the proconvulsant effect of normeperidine. Thebaine (25-150 micrograms), which had no marked influence on the seizure threshold when given intracerebroventricularly, lowered the threshold after subcutaneous injection of 12.5 and 25 mg/kg. This effect was not altered by injection of naloxone. These results show that centrally administered opioids can act on excitatory or inhibitory systems that regulate seizure mechanisms in the rat brain. Furthermore both naloxone-sensitive and naloxone-insensitive components are involved. Meperidine, pentazocine and thebaine have different actions on the seizure threshold after intracerebroventricular, as opposed to subcutaneous, administration. This work has, therefore, identified the route of administration as a critical variable in the effect of opioids on the seizure threshold in rats.

Animals↗