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Anti-phencyclidine monoclonal antibodies provide long-term reductions in brain phencyclidine concentrations during chronic phencyclidine administration in rats.

These studies examined the hypothesis that a single large dose of monoclonal anti-phencyclidine (PCP) antibody could provide long-term reductions in brain PCP concentrations despite continuous PCP administration. PCP (18 mg/kg/day, s.c.) was infused to steady-state (24 h) and then a mole-equivalent dose of a short-acting anti-PCP antigen-binding fragment (Fab) or a long-acting anti-PCP IgG was administered i.v. The PCP infusion continued for up to 27 days, even though the binding capacity of the single dose of antibody used should have been saturated within the first day. At selected time points after antibody administration, brain, testis, and serum PCP concentrations were measured. Serum PCP concentrations rapidly increased approximately 100- and 300-fold after Fab or IgG administration, respectively. Based on the antibody-bound PCP concentrations in serum, the functional elimination half-life (t(1/2lambdaZ)) values for PCP-Fab and PCP-IgG complexes were 9.4 h and 15.4 days, respectively. Fab and IgG administration produced a complete removal of PCP from the brain within 15 min. Although brain PCP concentrations were significantly decreased for only 4 h in Fab-treated animals, IgG administration resulted in significant decreases in brain PCP concentrations lasting for at least 27 days. In contrast, testis PCP concentrations were not substantially affected by antibody administration, suggesting that redistribution of PCP from the testis is too slow to benefit from a limited dose of antibody. These results indicate that anti-PCP IgG can preferentially protect the brain for approximately 4 weeks after IgG administration, even when the antibody binding capacity should have been saturated with continuously administered PCP.

Animals↗

Rapid acquisition of oral phencyclidine self-administration in food-deprived and food-satiated rhesus monkeys: concurrent phencyclidine and water choice.

Eight rhesus monkeys were trained to self-administer orally-delivered phencyclidine, with water concurrently available, under a fixed ratio (FR) schedule during daily 3-hr sessions. Liquid deliveries (0.55 ml) were contingent upon lip-contact responses on solenoid-operated drinking spouts. During the sessions, phencyclidine and water were available under FRs ranging from 1 to 16. Water was always available between sessions (FR 1), and food initially was available 24 hr/day. In Experiment 1 the monkeys initially were given access to water (FR 1) during the 3-hr sessions. Subsequently, phencyclidine (0.25 mg/ml) was substituted for water, and the monkeys were reduced to 85 percent of their free-feeding weights. The FR value was then increased from 1 to 8. Next, the monkeys received concurrent access to water from one spout and phencyclidine from the other (each under the FR 8 schedule), then the FR value was increased to 16 for both drug and water. Orally-delivered phencyclidine was rapidly demonstrated to function as a reinforcer (37.2 sessions) without using food to induce drinking. In Experiment 2 a similar procedure was used for another group of monkeys, except the monkeys remained food satiated throughout the acquisition phase. Phencyclidine was rapidly demonstrated to function as a reinforcer (25.9 sessions), although intakes were lower than in Experiment 1. After concurrent phencyclidine- and water-maintained performance stabilized at FR 16, the monkeys were food deprived, and phencyclidine intake increased to the levels reported in Experiment 1. Food deprivation greatly enhanced the reinforcing effect of phencyclidine and changed the temporal pattern of responding, but neither food deprivation nor food-induced drinking were necessary conditions to demonstrate the drug's reinforcing effects.

Animals↗

Relationship of plasma phencyclidine levels to phencyclidine discrimination in the pigeon.

Plasma phencyclidine levels were determined in pigeons trained to discriminate 1.5 mg/kg phencyclidine from saline under a second-order schedule using a color-tracking procedure. With both cumulative and non-cumulative dosing procedures, pigeons reliably discriminated plasma phencyclidine levels above 200 ng/ml. When the time course of phencyclidine discrimination was determined and compared with the time course of phencyclidine levels in plasma in a different group of birds, a similar relationship between discrimination and plasma phencyclidine was generally observed. Plasma phencyclidine levels did not correlate well with position responding observed in some birds after lower phencyclidine doses.

Animals↗

Specificity of phencyclidine-like drugs and benzomorphan opiates for two high affinity phencyclidine binding sites in guinea pig brain.

Recently, the presence of two high affinity binding sites for phencyclidine were described in guinea pig brain, with one site coupled to the glutamate excitatory amino acid receptor, specifically activated by N-methyl-D-aspartate (NMDA) (site 1) and the other site associated with the dopamine (DA) reuptake carrier (site 2). Phencyclidine and its analogs, as well as the benzomorphan opiates, are known to interact with binding sites for phencyclidine. In this study, the equilibrium dissociation constants (Kd) of these compounds for the two binding sites for phencyclidine were determined. Phencyclidine and 1-[1-(2-thienyl)cyclohexyl]piperidine (TCP), an analog of PCP, were essentially non-selective between the two sites and also were the two drugs of the group observed to have the highest affinity for site 2. (+)-5-Methyl-10,11-dihydro-5H-dibenzo[a,d]cycloheptene-5,10-imine [(+)MK801] was the most selective agent for site 1, while none of the drugs tested showed selectivity for site 2. In humans, phencyclidine produces psychotomimetic effects, while (+)MK801 has been reported to produce minimal, if any, psychotomimetic effects, at doses sufficient to reduce seizures. These clinical observations, in conjunction with the present biochemical binding data, suggest that (+)MK801 may serve as a "marker" for site 1 and that the psychotomimetic effects of phencyclidine might be mediated by site 2.

Analgesics↗

Chronic phencyclidine treatment decreases phencyclidine and dopamine receptors in rat brain.

Chronic phencyclidine treatment (10 mg/kg/day, SC for 14 days) significantly decreased the number of [3H]phencyclidine and [3H]spiperone binding sites in rat brain. [3H]Dihydromorphine binding was not affected by the same treatment. An acute treatment with phencyclidine (10 mg/kg, SC) did not modify any of the binding sites under study. These results suggest that a chronic phencyclidine treatment induces a down-regulation of phencyclidine and dopamine receptors without affecting opiate receptors. These reductions in the number of phencyclidine and dopamine binding sites might be related to the development of tolerance and/or dependence to phencyclidine.

Animals↗

MK-801 and phencyclidine act at phencyclidine sites that are not linked to N-methyl-D-aspartate activity to inhibit behavioral sensitization to kainate.

Sensitization to the behavioral effects of intrathecal kainate in mice depends on an accumulation of the N-terminus of substance P in the spinal cord and may reflect similar synaptic activity as that underlying pain transmission. The purpose of this study was to determine whether kainate sensitization, like pain, is sensitive to inhibition by phencyclidine ligands. Doses that selectively inhibit the behavioral response to a single injection of N-methyl-D-aspartate, but not kainate, were established for two non-competitive antagonists, dizocilpine (MK-801) and phencyclidine, as well as two competitive antagonists, D-amino-5-phosphonovaleric acid and (+/-)-3-(2-carboxypiperazin-4-yl)-propyl-1-phosphonic acid, of N-methyl-D-aspartate. Using these doses, we found that 1 nmol of MK-801 or 3 nmol of phencyclidine blocked sensitization to four injections of 25 pmol of kainate administered at 2 min intervals. In contrast, 1.48 nmol of D-amino-5-phosphonovaleric acid and 0.5 nmol of (+/-)-3)2-carboxypiperazin-4-yl)-propyl-1-phosphonic acid failed to alter sensitization to kainate, indicating that activation of N-methyl-D-aspartate receptors is not necessary for kainate sensitization. Haloperidol (1 nmol), a sigma receptor ligand, also failed to inhibit sensitization to kainate, suggesting that the actions of MK-801 and phencyclidine were not produced by a non-selective effect at sigma sites. Together, these data suggest that MK-801 and phencyclidine inhibit behavioral sensitization to kainate via phencyclidine receptors that are not linked to the N-methyl-D-aspartate receptor complex.(ABSTRACT TRUNCATED AT 250 WORDS)

2-Amino-5-phosphonovalerate↗

Phencyclidine suppresses hippocampal long-term potentiation through stereospecific activation of phencyclidine receptors.

The effects of phencyclidine and the dioxolane enantiomers, dexoxadrol and levoxadrol, on long-term potentiation in the hippocampus were compared. Field potentials were evoked by stimulation of Schaffer collaterals and recorded from the CA1 region. Long-term potentiation was induced by stimulation with a single train of 25 pulses at 50 Hz. The drugs were delivered by pressure, 1 min before tetanization. Phencyclidine and its receptors ligand, dexoxadrol, abolished the induction of long-term potentiation. Levoxadrol which has very low affinity for the phencyclidine receptor was devoid of this action although it reduced the magnitude of long-term potentiation. These results indicate that phencyclidine blocks long-term potentiation by stereospecific activation of phencyclidine receptors.

Analgesics↗

Is Metaphit a phencyclidine antagonist? Studies with ketamine, phencyclidine and N-methylaspartate.

The dissociative anaesthetics, phencyclidine and ketamine, block excitation of central neurones by N-methylaspartate. Using the technique of microelectrophoresis on rat spinal neurones in vivo Metaphit, a phencyclidine receptor acylating agent, was tested to see whether it would antagonise this effect of dissociative anaesthetics. The predominant effect of Metaphit was, however, to reduce N-methylaspartate induced excitation. It is concluded that Metaphit has mixed agonist/antagonist effects at the phencyclidine receptor.

Action Potentials↗

Effects of phencyclidine and phencyclidine biologs on sensorimotor gating in the rat.

Prepulse inhibition of the startle response occurs when a weak prestimulus precedes a startling stimulus and decreases the resulting reflex response. Prepulse inhibition provides a measure of sensorimotor gating that is readily assessed in humans and animals. As in event-related-potential models of sensory gating, prepulse inhibition is decreased in schizophrenic patients. In the present study, prepulse inhibition was measured in rats following injections of the N-methyl-D-aspartate (NMDA) antagonists phencyclidine, ketamine, and (+)-5-methyl-10,11-dihydro-5H-dibenzo(a,d)-cyclohepten-5,10-imine (MK-801). Startle was elicited by two different noise intensities or by air-puffs (tactile) and was inhibited by weak acoustic prepulse stimuli presented 100 msec before the startle stimuli. The different eliciting stimuli produced different levels of startle in both control and drug-treated animals, startle being increased by phencyclidine and MK-801. Both phencyclidine (3.0 to 10.0 mg/kg) and MK-801 (0.3 to 1.0 mg/kg) significantly reduced the amount of acoustic prepulse inhibition whereas ketamine did not. These results demonstrate that putative noncompetitive NMDA antagonists disrupt sensorimotor gating in rats and suggest that their effects may provide a model of the deficits in sensory gating exhibited by schizophrenic patients.

Animals↗

Regional heterogeneity of rat brain phencyclidine (PCP) receptors revealed by photoaffinity labeling with [3H] azido phencyclidine.

Photoaffinity labeling of rat brain phencyclidine (PCP) receptors with [3H] azido phencyclidine ([3H]AZ-PCP) reveals the existence of five polypeptides which are specifically labeled by the affinity probe (Mr's 90,000, 62,000, 49,000, 40,000 and 33,000). These labeled components are unevenly distributed in rat brain. In the frontal cortex, thalamus and olfactory bulb, the major bands labeled are the Mr's 90 K and 62 K polypeptides; in the cerebellum most of the labeling is in the 90 K and 33 K bands; and in the hippocampus all but the Mr 40 K band are heavily labeled. Together with dexoxadrol/[3H]PCP competition binding data, which indicated the existence of high and low affinity dexoxadrol/PCP binding sites, these results suggest regional heterogeneity of PCP receptors. The regional distribution of the high affinity dexoxadrol binding sites correlates best with that of the Mr 90 K polypeptide.

Affinity Labels↗

Multiple mode of binding of phencyclidines: high affinity association between phencyclidine receptors in rat brain and a monovalent ion-sensitive polypeptide.

Two populations of phencyclidine (PCP) binding sites are shown to exist in the rat brain: a high-affinity monovalent ion-sensitive site (Kd of 10-14 nM for [3H]TCP, [3H]N-[1-(2-thienyl)cyclohexyl]piperidine), which exists in both the frontal cortex and the hippocampus, and a lower affinity site (Kd of 80-130 nM for [3H]TCP) which is found in the hippocampus but not in the frontal cortex. The nature of the interactions between the ion-binding sites and the high affinity PCP receptors depend on both ligand structure (PCP or TCP) and the ion involved (K' or Na'). The high-affinity sites are associated with an Mr 90,000 polypeptide whose labeling by [3H]azido phencyclidine is selectively inhibited by monovalent ions.

Animals↗

The role of striatal dopaminergic mechanisms in rotational behavior induced by phencyclidine and phencyclidine-like drugs.

Phencyclidine (PCP) and phencyclidine-like drugs (TCP, dexoxadrol, MK-801, and SKF 10,047) were evaluated for their ability to induce rotational behavior in rats with unilateral 6-OHDA lesions of the medial forebrain bundle and for their ability to alter striatal dopamine (DA) overflow with microdialysis procedures. All of the compounds tested produced rotational behavior ipsilateral to the lesion, suggesting that they were enhancing extracellular dopamine in the intact striatum. The microdialysis studies, however, did not support this contention. There appeared to be a complete dissociation between the ability of the five compounds to produce ipsilateral rotations and their ability to enhance extracellular dopamine levels in the striatum. PCP was the only compound able to elicit significant increases in striatal dopamine overflow following i.p. injections and also produce dramatic rotational behavior. MK-801 was the most potent compound in enhancing rotational output while it had no effect at all on striatal dopamine overflow. Dexoxadrol also produced significant rotational output without having any effect on extracellular levels of dopamine following i.p. injections. TCP and SKF 10,047, at doses which produced significant rotational behavior, only elevated dopamine 16% and 12%, respectively, at peak effect. It is most parsimonious to conclude that the effects of PCP-like drugs on nigro-striatal function are mediated through their ability to act as indirect NMDA receptor antagonists and not through their ability to alter striatal dopamine activity.

Animals↗

Metabolic studies on phencyclidine: characterization of a phencyclidine iminium ion metabolite.

Studies on the metabolic bioactivation of the psychotomimetic amine phencyclidine have been pursued through the characterization of a new metabolite which is formed via initial cytochrome P-450 catalyzed oxidation of the parent drug to the corresponding iminium species. CI mass spectrometric and diode array UV and 1H NMR spectral analyses provided evidence for the conjugated amino enone compound, 1-(1-phenylcyclohexyl)-2,3-dihydro-4-pyridone. Confirmation of the proposed structure was achieved by comparing the 1H NMR and high-resolution EI mass spectral properties of the metabolic isolate with the corresponding spectra of an authentic synthetic sample. Possible intermediates involved in the formation of the dihydropyridone metabolite from the phencyclidine iminium ion are discussed in terms of structural analogies to reactive intermediates formed in the bioactivation of the nigrostriatal toxin 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP).

Animals↗

Genetic polymorphism of cytochrome P-450-dependent phencyclidine hydroxylation in mice. Comparison of phencyclidine hydroxylation in humans.

A mouse model of P-450 phencyclidine 3-cyclohydroxylase (P-450 PCP 3-cyclohydroxylase) genetic polymorphism is described. Up to a 3-fold difference was observed in the constitutive liver microsomal activity of P-450 PCP 3-cyclohydroxylase between "slow" (A/J and DBA/2J) and "rapid" (C57BL/6J and BALB/CJ) phencyclidine (PCP) metabolizers. The segregation of slow and rapid hydroxylator phenotypes between 17 recombinant inbred mouse strains derived from A/J and C57BL/2J mice suggests control of the activity by a single gene located on the X-chromosome or, less likely, on chromosome 17. A liver deficiency of P-450 PCP 3-cyclohydroxylase was observed in the New Zealand rabbit and Wistar rat, as well as in some human subjects. Any relationship of P-450 PCP 3-cyclohydroxylase polymorphism to other well characterized P-450 polymorphisms in mice (aryl hydrocarbon hydroxylase and coumarin hydroxylase) was excluded on the basis of differences in inducibility and activity distribution among the inbred mouse strains. Lack of relationship to the P-450 debrisoquine hydroxylase was confirmed by direct comparison of both activities in the same mouse and human liver microsomes. The pharmacological consequence of the observed polymorphism in mice appears to be that the rapid PCP metabolizers are more resistant to the effects of PCP compared to the slow metabolizers as based upon its ED50 and duration of action in A/J and C57BL/6J mice. The relevance of this data to humans remains to be determined, but clearly the latter show marked differences in PCP 3-cyclohydroxylase activity, which separate into low, intermediate, and high groups.

Animals↗

Anti-phencyclidine monoclonal Fab fragments markedly alter phencyclidine pharmacokinetics in rats.

The purpose of these studies was to explore the use of phencyclidine (PCP)-specific high affinity antibodies as a possible treatment for phencyclidine toxicity. High affinity (Kd = 1.8 nM) anti-PCP monoclonal Fab fragments were purified from papain digested anti-PCP immunoglobulin produced in mouse ascites. Control animals (n = 5) received an i.v. bolus dose of 1 mg/kg of PCP, along with a tracer dose of 250 microCi of [3H]PCP. Fab-treated rats (n = 5) also received this PCP dose, but at 2 hr after dosing (when PCP distribution was complete) they received an equimolar dose of anti-PCP Fab (50 mg). Within 5 min after the anti-PCP Fab administration, serum [3H]PCP concentrations increased approximately 60- to 100-fold. Fab treatment caused the [3H]PCP volume of distribution at steady state to decrease from 12.6 +/- 3.0 liters/kg (mean +/- S.D.) in control animals to 0.6 +/- 0.2 liters/kg in the Fab-treated animals (about 5% of control values). Systemic clearance changed from 66.3 +/- 16.9 to 6.8 +/- 2.8 ml/min/kg (about 10% of control values). Because both volume of distribution and systemic clearance decreased to a similar degree, the terminal elimination half-life did not change significantly (3.9 hr in controls vs. 4.9 hr in treated animals, harmonic means). Renal clearance decreased from 1.8 +/- 0.6 to 0.62 +/- 0.17 ml/min/kg after Fab treatment. The anti-PCP Fab caused the percentage of PCP recovered in urine to increase from 2.5 +/- 0.5 to 10.3 +/- 4.7%.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Phencyclidine binding sites in the nucleus accumbens and phencyclidine-induced hyperactivity are decreased following lesions of the mesolimbic dopamine system.

[3H]Phencyclidine [( 3H]PCP) binding to rat nucleus accumbens, hippocampal and striatal membranes, and PCP-induced locomotor hyperactivity were assessed following selective lesions of the mesolimbic dopaminergic system. 6-Hydroxydopamine (6-OHDA) injections into the A10 region of the ventral tegmental area or into the accumbens itself resulted in a blockade of PCP's stimulatory effects and a highly significant reduction in the number of [3H]PCP binding sites and dopamine content of the nucleus accumbens. However, destruction of the dopaminergic mesolimbic fibers did not significantly alter hippocampal or striatal [3H]PCP binding. The data suggest that PCP elicits its locomotor stimulating effects via an interaction with PCP binding sites located mostly on mesolimbic dopaminergic terminals within the nucleus accumbens.

Animals↗

Phencyclidine-induced discriminative stimulus is mediated via phencyclidine binding sites on the N-methyl-D-aspartate receptor-ion channel complex, not via sigma(1) receptors.

The effects of several N-methyl-D-aspartate (NMDA) receptor- and sigma receptor-related compounds on the discriminative stimulus effects of phencyclidine (PCP) were examined in rats trained to discriminate PCP (1.5 mg/kg, i.p.) from saline under a two-lever fixed ratio 20 schedule of food reinforcement. PCP produced a dose-dependent increase in PCP-appropriate responding. A non-competitive NMDA receptor antagonist, dizocilpine (0.2 mg/kg, i.p.) and a putative sigma(1) receptor agonist, (+)-SKF-10047 (10 mg/kg, i.p.) fully substituted for PCP in every rat tested. Neither a competitive NMDA receptor antagonist, CGS-19755 (0.1-3 mg/kg, i.p.), sigma(1) receptor agonist, (+)-pentazocine (10-30 mg/kg, i.p.) nor dextromethorphan (10-20 mg/kg, i.p.) produced PCP-like discriminative stimulus effects. The discriminative stimulus effects of PCP (1.5 mg/kg, i.p.), dizocilpine (0.2 mg/kg, i.p.) and (+)-SKF-10047 (10 mg/kg, i.p.) were significantly attenuated by CGS-19755 (1 mg/kg, i.p.), but not by sigma(1) receptor antagonist BMY-14802 (10 mg/kg, i.p.) and NE-100 (5 mg/kg, i.p.). These results suggest that the discriminative stimulus effects of PCP are predominantly mediated via PCP binding sites on the NMDA receptor-ion channel complex, not via sigma(1) receptors. In addition, the PCP-like discriminative stimulus effects of (+)-SKF-10047 were demonstrated to be mediated via PCP binding sites.

Animals↗