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Pharmacological characterization of sigma binding sites in guinea pig brain membranes.

The discovery of sigma binding sites has prompted investigation into the functional role of these sites. Binding studies have revealed that sigma sites exhibit a unique pharmacological profile, and have provided evidence favoring the existence of a multiplicity of sigma binding sites in central nervous system. However, the findings that chemicals having diverse structures and therapeutic applications are all potent sigma agents, and that sigma binding sites are present in peripheral tissues, have raised concerns about the physiological and pharmacological relevances of this site. Furthermore, an endogenous ligand for the sigma binding site has not yet been identified. Finally, there is a lack of data regarding the functional coupling of sigma binding sites, although recent studies have provided some clues as to a possible signalling mechanism (Karbon et al., 1990). Besides raising questions about the relevance of sigma sites, the paucity of information on their functional properties has made it difficult to distinguish sigma agonists from and antagonists. While haloperidol is assumed to be a sigma antagonist, the finding that prolonged administration of this neuroleptic decreases the number of sigma sites would seem to argue in favor of it being an agonist for this site. Regardless of the precise nature of the sigma binding site, studies have suggested that it may represent the site of action for a number of important drugs. For example, haloperidol, a butyrophenone antipsychotic, exhibits high affinity for sigma binding sites, and several psychotomimetics, including PCP and (+)-benzomorphans, also bind this site.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Sites of action of morphine involved in the development of physical dependence in rats. I. Comparison of precipitated morphine withdrawal after intraperitoneal and intraventricular injection of morphine antagonists.

In rats made dependent on morphine by implantation of morphine pellets, withdrawal, as precipitated by intraventricular injection of morphine antagonists, was compared to withdrawal as precipitated by systemic antagonist application. The results, most clearly those obtained with a hydrophilic compound, diallyl-nor-morphinium-bromide, point to periventricularly located sites of action for the release of most withdrawal signs by antagonists. Jumping, reaching only low levels after i.ventr. injection of levallorphan and nalorphine, was very pronounced when the benzomorphane derivative SH 254, was used. In the case of writhing and diarrhea, the situation is more complicated. Possibly, central as well as peripheral mechanisms are involved in the expression of these signs.

Animals↗

Further characterization of opioid receptors in the striatum mediating muscular rigidity in rats.

In previous studies, we had found that opioid receptors in the striatum can mediate muscular rigidity which can be recorded as a tonic EMG activity in the gastrocnemius-soleus muscle of rats. We have now tried to evaluate the type of opioid receptors mediating the EMG activity. For this purpose, opioids regarded to be selective agonists at one type of opioid receptors were injected into the striatum of unanesthesized rats. Morphine, a micro-type agonist, in the dose of 40 nmol induced a pronounced EMG activity, while 10 to 40 nmol of [D-Ala2, D-Leu5] enkephalin, a delta-type agonist, led to no or little effect, respectively. beta-Endorphin, which reacts with the epsilon -type of receptors, was completely ineffective in doses of 3 or 15 nmol. The benzomorphan compound Mr 2033-Cl, which is a kappa-type agonist, induced a moderate activity in the dose of 15 nmol; 3 nmol were ineffective. beta-Casomorphin-4 was the most potent of the drugs studied in our system, since 9 nmol induced a pronounced rigidity, which was naloxone-reversible (2 mg/kg i.p.). The doses of these opioids effective in comparison with their known in vitro potencies suggest that the rigidity is mediated by a group of striatal opioid receptors, which has some similarity to the micro-type, but also shows some differences. In contrast, haloperidol, injected either into the striatum (30 nmol) or systemically (2 mg/kg i.p.), did not induce any EMG activity, suggesting that a decrease in dopaminergic neurotransmission is not the primary mechanism inducing the rigidity. beta-LPH62-77 and beta-LPH66-77 (15 nmol) intrastritally] were also completely inactive.

Animals↗

Antagonism of the discriminative effects of ethylketazocine, cyclazocine, and nalorphine in macaques.

dl-Ethylketazocine (EKC, 0.01 mg/kg) and saline were established as discriminative stimuli for food-maintained responding in macaque monkeys. Thirty consecutive presses on a right or left lever were reinforced with food, contingent on whether EKC or saline were administered before the session. For tests of antagonism, naltrexone, or UM 979 [(l)-5,9-alpha-dimethyl-2-(3-furylmethyl)-2'-hydroxy-6,7-benzomorphan] was administered concomitantly with EKC, dl-cyclazocine, or nalorphine. Both antagonists blocked completely the EKC discriminative stimulus. The antagonism of the stimulus and rate-altering effects of EKC was surmountable, with considerable intersubject variability in the magnitude of the EKC dose increase required to overcome the blockade. Cyclazocine and nalorphine, mixed agonist-antagonist opioids that share stimulus properties with EKC, were also susceptible to antagonism. Naltrexone antagonized completely the EKC stimulus effects of nalorphine; naltrexone and UM 979 antagonized completely the EKC stimulus effects of cyclazocine. Naltrexone antagonism of the cyclazocine stimulus was not surmountable, due to a lack of antagonism of the rate-decreasing effects of high cyclazocine doses.

Analgesics, Opioid↗

Differential tolerance to antinociceptive effects of mu opioids during repeated treatment with etonitazene, morphine, or buprenorphine in rats.

RATIONALE: Repeated treatment experiments with high and low efficacy agonists provide critical insight into possible mechanisms underlying development of opioid tolerance. OBJECTIVE: Experiments in a tail-withdrawal assay tested the hypothesis that magnitude of tolerance to antinociceptive effects is inversely related to agonist relative efficacy in rats intermittently treated with etonitazene. morphine, or buprenorphine. METHODS: The antinociceptive effects of five mu opioid agonists were tested in male, Sprague-Dawley rats in a warm-water tail-withdrawal assay. To induce tolerance, escalating doses of the higher efficacy agonist etonitazene, the high efficacy agonist morphine, or the lower efficacy agonist buprenorphine were administered twice daily for 2-8 weeks. RESULTS: Etonitazene, etorphine, morphine, buprenorphine, and GPA 1657 [(1)-beta-2'-hydroxy-2,9-dimethyl-5-phenyl-6,7-benzomorphan] produced dose-dependent increases in tail-withdrawal latency until 100% maximum possible effect (%MPE) was obtained. Treatment with escalating doses of etonitazene, morphine, or buprenorphine produced greater tolerance to the lower efficacy agonists buprenorphine and GPA 1657 than to the higher efficacy agonists etonitazene, etorphine, and morphine. Treatment with buprenorphine, a lower efficacy agonist, produced greater tolerance than did treatment with equivalent doses of the higher efficacy agonists morphine or etonitazene. CONCLUSIONS: Taken together, these data suggest that magnitude of antinociceptive tolerance is inversely related to relative efficacy of mu agonists, with lower efficacy agonists being more susceptible to tolerance than are higher efficacy agonists under these intermittent dosing conditions.

Analgesics↗

Spinal anesthesia with pentazocine for total abdominal hysterectomy.

Intraspinal pentazocine, 1.5 mg/kg, produced sufficient analgesia and moter block in 50 cases of abdominal total hysterectomy. Pentazocine, a derivative of benzomorphans, shares some common characteristics with local anesthetics in the chemical structure. Both agents have an aromatic ring and an intermediate chain, in common, which connects the former to nitrogen moiety, and the local anesthetic action was anticipated. The onset of the sensory block was 3.2 +/- 0.9 (mean +/- SD) min, and the maximum level was T10 and T4 with mean level of T6. The onset of motor weakness at the knee was 4.1 +/- 1.9 min, and the duration was 108 +/- 10.5 min.

Journal Article↗

Effects of endorphins on single myenteric neurons.

Methionine-enkephalin, leucine-enkephalin and beta-endorphin were applied in known concentrations to an in vitro preparation of myenteric neurons from the guinea-pig ileum. All 3 substances caused a rapid, reversible and dose related inhibition of the firing of myenteric neurons induced and recorded with extracellular suction electrodes. This inhibition of firing occurred at low agonist concentrations (1-300 nM) and was reversed by naloxone and a benzomorphan narcotic antagonist. The inhibition persisted in solutions which were completely free of calcium ions -- thus indicating that the observed effect is taking place directly on the neuron from which the recording is made, and that calcium ions are not required for this inhibitory action of endorphins on neuronal firing.

Animals↗

Specific binding of [3H]phencyclidine in rat central nervous tissue: further characterization and technical considerations.

The interaction of phencyclidine (PCP) with its specific receptor sites in the central nervous system has been further characterized. Kinetic association and dissociation rate constants of 2.9 X 10(6) M-1 and 4.8 X 10(-1) min-1 were determined, yielding a kinetic KD of 1.6 X 10(-7) M, in agreement with the KD previously determined at equilibrium. Permissible separation time of 13 s was calculated from the kinetic data, well above the actual separation time of less than 10 s in the rapid filtration assay. Presoaking of filters in 0.01% poly-L-lysine eliminated displacable [3H]PCP adsorption to filter material. Binding data obtained via centrifugation assays was identical to that obtained with the rapid filtration method. Stereospecificity of the PCP receptor was demonstrated by the finding that (+)-ketamine is four-fold more potent than (-)-ketamine in displacing specifically bound [3H]PCP. Several proteolytic enzymes including trypsin, papain and thermolysin potently inactivated PCP receptors. Detailed regional distribution studies showed highest density of PCP receptors in subicular cortex and hippocampus, intermediate levels in hypothalamus, striatum, frontal cortex and cerebellum, lower levels in brainstem and spinal cord, and negligible levels in corpus callosum, a white-matter control area. Benzomorphan opiates with PCP-like behavioral effects interact with the PCP receptor. These data support the pharmacological relevance of the PCP receptor site as demonstrated by the rapid filtration method.

Animals↗

Autoradiographic identification and characterization of sigma receptors in guinea pig brain using [3H]1(cyclopropylmethyl)-4-(2'-(4''-fluorophenyl)-2'-oxoethyl) piperidine ([3H]DuP 734), a novel sigma receptor ligand.

The psychotomimetic effects of certain cycloalkyls and benzomorphans that interact with sigma receptors has led to the hypothesis that these sites may be important in the etiology of schizophrenia. DuP 734 [1-(cyclopropylmethyl)-4-(2'-(4''-fluoro-phenyl)-2'-oxoethyl) piperidine HBr] is a novel sigma receptor ligand. The receptor binding specificity and neuroanatomical distribution of [3H]DuP 734-labeled sigma receptors in guinea pig brain were examined using quantitative autoradiography. [3H]DuP 734 binding (10 microM haloperidol displaceable) to slide-mounted sections of guinea pig brain was saturable and of high affinity (Ki = 3.9 nM). Competition studies, under conditions identical to those used to visualize the receptor, yielded the following rank order of potency: DuP 734 > haloperidol > (+)-pentazocine > (-)-butaclamol > DTG > (+)-SKF 10,047 > (+)-3-PPP > (-)-pentazocine > (+)-butaclamol > U50,488H > (-)-SKF 10,047 > cinanserin > PCP >> MK801, sulpiride. High densities of [3H]DuP 734 binding sites displaceable by haloperidol were present in the limbic system, in particular the dorsal and ventral bands of Broca as well as the ventral pallidum. Within the hippocampus, the pyramidal layers were sparsely labeled, while higher densities of binding sites were evident in the dentate gyrus. The frontal cortex, the mammillary complex of the hypothalamus, the central gray and red nucleus of the midbrain, the pontine reticular nucleus, the Purkinje cell layer of the cerebellum and dorsal and ventral horns, as well as the central gray matter of the spinal cord, all showed enrichments of [3H]DuP 734 binding sites. Lower levels of binding were present in the other regions of the cerebral cortex including parietal, pyriform, occipital, cingulate cortex, as well as the basal ganglia, and negligible specific binding was present in the white matter tracts. The kinetic and pharmacological characteristics and distribution of [3H]DuP 734 binding sites in brain are similar to those previously reported for sigma receptors.

Animals↗

Dose-dependent effects of D-N-allylnormetazocine on regional cerebral metabolic rates for glucose.

Cerebral metabolic patterns produced by different doses of the benzomorphan opioid drug, D-N-allylnormetazocine (D-NANM), were studied using the 2-deoxy-D-[1-14C]glucose method in rats. The lowest dose of D-NANM (0.5 mg/kg) decreased regional cerebral metabolic rates for glucose (rCMRglc) in areas, such as cranial nerve nuclei, that contain high densities of sigma (sigma) receptors. However, higher doses of the drug (2.7 and 5 mg/kg) increased rCMRglc in components of the extrapyramidal motor and limbic systems. Some of these latter areas (e.g. molecular layer of the dentate gyrus, accumbens nucleus, globus pallidus, ventral posterior nucleus of the thalamus) are not enriched in sigma receptors. Reductions in rCMRglc produced by the lowest dose of D-NANM probably reflect direct interactions of the drug with sigma receptors, whereas increases in rCMRglc observed with the highest doses more likely result from effects of D-NANM on PCP receptors.

Animals↗

Purification, pharmacological characterization and photoaffinity labeling of sigma receptors from rat and bovine brain.

The sigma receptor/binding site, found in the brain and periphery, binds haloperidol, (+)-benzomorphans, N-propyl-3-(3-hydroxyphenyl)-piperidine (3-PPP) and certain atypical neuroleptics with high affinity. We have succeeded in ca. 6,000-fold purification of protein(s) from rat and bovine cerebellum which display pharmacology characteristic of the sigma receptor. This purification was achieved by affinity chromatography using a Sepharose gel linked to a new high-affinity ligand, (S)-3-(3-methoxyphenyl)-3'-oxo-3'-phenyl-N-propylpiperidine, an analog of (S)-3-PPP. Elution of the affinity column with haloperidol afforded material which, after reconstitution into bimolecular lipid vesicles, was pharmacologically characterized by specific radioligand binding assays using [3H]haloperidol combined with competitive displacement using appropriate selective ligands. Comparison of the relative rank orders of potency of the ligands in these selective sigma receptor assays corresponded well with values obtained with tissue homogenates. The observed enantioselectivity for the binding of SKF-10,047 and cyclazocine suggests that the material purified corresponds to the sigma 1 receptor subtype. SDS-PAGE indicated that the purified material consisted of two bands of approximate molecular masses 65 and 63 kilodaltons. Photoaffinity labeling of the affinity-purified receptor with [3H]azido-DTG led to incorporation of the label into material of molecular mass 50-70 kDa, by slicing of SDS gels, while similar photolabeling of crude cerebellar homogenates led to exclusive labeling of a 29 kDa polypeptide, as found previously using other tissues. Molecular sizing under non-denaturing conditions indicated the photolabeled species is a labile large receptor complex of mass ca. 300-500 kDa which gradually breaks down upon standing at -80 degrees C into the lower mass (50-70 kDa) material. The sigma receptor ligand binding subunit, which appears to be of the sigma 1 subtype, appears to be contained within the 29 kDa polypeptide, which may be a subunit of the 63-65 kDa protein, which in turn appears to be a component of a much larger receptor complex. It further appears that the 29 kDa polypeptide is readily dissociable from a larger photolabeled sigma receptor complex in tissue homogenates, but does not dissociate from the photolabeled affinity-purified CHAPS-solubilized sigma receptor.

Animals↗

Naltrexone fails to antagonize the sigma effects of PCP and SKF 10,047 in the dog.

SKF 10,047, N-allylnormetazocine, a benzomorphan narcotic antagonist, and the arylcyclohexylamine anesthetic phencyclidine produced similar reflex, autonomic and behavioral effects in the chronic spinal dog which were not antagonized by naltrexone pretreatment. Naltrexone did effectively prevent the effects of morphine. These data provide further evidence that the acute effects of phencyclidine and SKF 10,047 are alike and that their principal mechanism of action does not involve opiate activity of the morphine type.

Animals↗

Expression of (+)-3-PPP binding sites in the PC12 pheochromocytoma cell line.

Phencyclidine binds with high affinity to both PCP and sigma receptors. We investigated whether the clonal cell line PC12 expressed either of these receptors, and found that these cells contain a haloperidol-sensitive (+)-[3H]3-PPP binding site with a KD of 56 nM, but no PCP binding sites. The (+)3-PPP binding sites in PC12 cells displayed a reversed stereoselectivity for the benzomorphan opiates compared to CNS sigma receptors. Neither nerve growth factor nor sodium butyrate treatment affected the expression of either (+)-3-PPP or TCP binding sites in PC12 cells.

Adrenal Gland Neoplasms↗

[3H]ohmefentanyl preferentially binds to mu-opioid receptors but also labels sigma-sites in rat brain sections.

Ohmefentanyl has been shown to be 6300 times more potent than morphine for analgesia. The receptor binding characteristics and distribution of [3H]ohmefentanyl in rat brain sections are presented. [3H]Ohmefentanyl bound with high affinity to opioid receptors in a saturable manner (Kd = 0.95 +/- 0.08 nM, Bmax = 337 +/- 14 fmol/mg protein). We used various currently available specific mu, delta and kappa ligands to show that [3H]ohmefentanyl has a high selectivity for the mu opioid receptor. However, [D-Ala2,MePhe4,Gly-ol5]enkephalin (DAGO) was unable to completely inhibit [3H]ohmefentanyl specific binding, while complete inhibition was observed with fentanyl derivatives and the benzomorphan derivative, ethylketocyclazocine. This remaining 20% DAGO-inaccessible [3H]ohmefentanyl specific binding did not correspond to either mu1, delta or kappa sites. Haloperidol and 1,3-di-o-tolylguanidine were able to inhibit DAGO-inaccessible [3H]ohmefentanyl specific binding, suggesting that [3H]ohmefentanyl might also bind to haloperidol-sensitive sigma sites. The topographical distribution of [3H]ohmefentanyl found by autoradiography was generally similar to that of [3H]DAGO. However, in agreement with the biochemical results, quantitative analysis revealed additional sites in several rat brain regions, the greatest discrepancies with [3H]DAGO distribution being observed in cerebellum, central grey, hippocampal formation and locus coeruleus. Finally, our results suggest that this capacity of binding to both mu and sigma sites is shared by various fentanyl derivatives.

Amino Acid Sequence↗

NMDA receptor antagonist effects of the stereoisomers of beta-cyclazocine in rats, in vivo and in vitro.

(+)- and (-)-beta-cyclazocine were examined as NMDA receptor antagonists following bath application to rat cortical wedges in vitro and i.v. administration to rat spinal cord neurones in vivo. Both isomers were found to be selective NMDA antagonists with little effect on excitations evoked by quisqualate. In vitro, IC50 values for (-)- and (+)-beta-cyclazocine against responses to 40 microM NMDA were estimated at 0.51 and greater than 100 microM, respectively. In vivo, (-)-beta-cyclazocine 0.25 mg.kg-1 reduced NMDA-evoked excitations by 70%, an effect substantially greater than that produced by (+)-beta-cyclazocine 2.5 mg.kg-1. (-)-beta-cyclazocine is the most potent NMDA antagonist benzomorphan tested to date, being about twice as potent as (-)-alpha-cyclazocine in this respect. In addition, the separation in potency exhibited by the beta-cyclazocine enantiomers as NMDA antagonists is much greater than that reported previously for the stereoisomers of the alpha-series.

Animals↗

Dynorphin A-(1-13) potently improves scopolamine-induced impairment of passive avoidance response in mice.

The effects of intracerebroventricular administration of dynorphin A-(1-13) on scopolamine-induced amnesia were investigated in mice by using a step-down type passive avoidance task. The pre- or post-training, or pre-retention administration of dynorphin A-(1-13)(0.3-10 micrograms) alone failed to affect step-down latency of the passive avoidance response, while scopolamine (1 mg/kg) significantly shortened step-down latency. Dynorphin A-(1-13)(1 microgram) given 15 min before training and retention tests but not immediately after training significantly improved the scopolamine (1 mg/kg)-induced shortening of step-down latency of the passive avoidance response, indicating antiamnesic effects of dynorphin A-(1-13) (1 microgram). A lower dose (1 mg/kg) of the kappa-opioid receptor antagonist, (-)-(1R,5R,9R)-5,9-diethyl-2-(3-furyl-methyl)- 2'-hydroxy-6,7-benzomorphan, reversed the anti-amnesic effects of dynorphin A-(1-13) (1 microgram). These results suggest that the antiamnesic effects of dynorphin A-(1-13) depend on the timing of drug treatments.

Amnesia↗

Compounds of novel structure having kappa-agonist behavioral effects in rhesus monkeys.

The kappa-agonist behavioral effects of several compounds were studied in rhesus monkeys and mice. Rhesus monkeys trained to discriminate ethylketazocine from saline responded as if ethylketazocine had been administered when given bridged oripavines with either N-allyl or N-cyclopropylmethyl, but not N-methyl, substituents. These compounds had C7 substitutions of either 2-hydroxy-2-pentyl or 2-hydroxy-5-methyl-2-hexyl. Monkeys also showed ethylketazocine-like responding when given U-50,488 (trans-3,4-dichloro-N-methyl-N-[2- (1-pyrrolidinyl) cyclohexyl]-benzeneacetamide), a compound with an atypical structure not resembling any known narcotic. Additionally, ethylketazocine-like responding was produced by two 5,9-alpha dimethyl 6-7-benzomorphans with either an N-2-methoxyisobutyl or an N-2-methoxy-propyl substituent. The latter compound was the only compound active in producing ethylketazocine-like discriminative effects that also reversed morphine-withdrawal signs. The N-methyl bridged oripavines that were inactive in producing ethylketazocine-like discriminative effects reversed morphine withdrawal signs.

Animals↗