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Differential interaction of opiates to multiple "kappa" binding sites in the guinea-pig lumbo-sacral spinal cord.

Binding characteristics of [3H]-etorphine and [3H]-ethylketocyclazocine are different in the lumbo-sacral spinal cord of guinea-pig. [3H]-etorphine binds to a single class of high affinity sites whereas [3H]-ethylketocyclazocine interacts with two components, a high affinity and a low affinity components. In the presence of 5 microM (D-Ala2, D-Leu5) enkephalin (DAL), the total high affinity sites can be resolved in two classes of sites, DAL sensitive sites (DALs sites) and DAL insensitive sites (DALI sites). In these conditions, [3H]-etorphine binding is completely abolished, and the binding capacity and properties of [3H]-etorphine correspond to the DALs sites. Pharmacological investigations indicated that DALI sites represent the kappa sites, whereas DALs sites closely correspond to benzomorphan sites described in rat brain and spinal cord. From these results, a new subclassification of "kappa" sites is proposed.

Analgesics, Opioid↗

Inhibitory effect of a new opioid agonist on reproductive endocrine activity in rats of both sexes.

Morphine and other opioid compounds such as the new benzomorphan derivative, bremazocine, inhibit the secretion of luteinizing hormone in rats of both sexes (1, 2, 3, 4). The aim of our work was to compare in rats the LH-secretion inhibiting properties of bremazocine, a putative opiate kappa agonist (5), with those of the mu agonist morphine. Acute administration of bremazocine (0.005 - 1 mg/kg s.c.) or of morphine (10 - 20 mg/kg s.c.) diminished serum LH levels and spontaneous ovulation in female rats in a dose-dependent manner. Chronic treatment with bremazocine significantly diminished LH and testosterone secretions in male rats which in turn led to a fall in weight of the prostate gland; prolactin and FSH secretions were not influenced significantly. The mu-antagonist naloxone, which increases LH release in rats, in acute experiments significantly antagonized the inhibiting effect of morphine, but not that of bremazocine on LH secretion. Neither the basal nor the LHRH-stimulated secretion of LH in pituitary cell cultures were changed by bremazocine (10(-11) to 10(-5) M), however the release of LHRH-like activity from hypothalamic fragments was significantly impaired by 10(-7) M bremazocine. In conclusion, the data presented here show that bremazocine is a new non-morphine-like opioid agonist which selectively inhibits LH release in rats.

Animals↗

Stereospecific reduction by narcotic antagonists of clonidine-induced food intake.

The present study examined the effect of opiate antagonists on clonidine-induced feeding in rabbits. The change in food intake induced by clonidine was blocked by naltrexone. The active (-)-isomer of the antagonist 5,9 alpha-diethyl-2-(3-furylmethyl)-2'-hydroxy-6,7-benzomorphan had an effect similar to naltrexone. Similar doses of the (+)-isomer were inactive, except at the highest dose used in the study. The results suggest that opiate antagonists block feeding elicited by a specific noradrenoreceptor agonist and that this inhibition is due to a direct interaction with opiate systems.

Animals↗

Effects of phencyclidine (PCP)-like drugs on turning behavior, 3H-dopamine uptake, and 3H-PCP binding.

In this study representatives from three chemical classes which are known to produce a phencyclidine (PCP)-like discriminative stimulus cue in rats were tested for their ability to inhibit synaptosomal uptake of 3H-dopamine (3H-DA) and to compete for a binding site labeled with 3H-PCP. Although there was a good correlation between these two in vitro activities within the arylcycloalkylamine class (PCP, N-ethyl-phenylcyclohexylamine (PCE), and ketamine) it did not hold when representatives from the benzomorphans, N-allynormetazocine (NANM), cyclazocine (CYCL), and ethylketocyclazocine (EKC), or a substituted dioxolane (etoxadrol) were included. At some dose each of these drugs with the exception of EKC also produced ipsilateral turning in rats with a unilateral 6-hydroxydopamine lesion of the substantia nigra. This effect was also not well correlated with inhibition of 3H-DA uptake. However, a significant correlation was found to exist between turning behavior and affinity for the putative PCP/sigma receptor. The possibility that a non-dopaminergic mechanism involving the PCP/sigma receptor underlies the ability of these agents to induce turning behavior is discussed.

Animals↗

Kappa opioid binding sites in the dog cerebral cortex and spinal cord.

In the dog cerebral cortex and spinal cord, [3H]bremazocine and [3H]U69593 both bound with high affinity to an apparent single population of binding sites under kappa-selective conditions. In the cortex similar Bmax values for both radioligands in the saturation studies and the high affinity of the kappa-selective agents PD117302 and U69593 for both [3H]bremazocine and [3H]U69593 labelled sites in the competition studies suggested a predominance of U69593-sensitive sites previously described as kappa 1 in the guinea-pig and rat brain. The lower slope values for the inhibition curves of PD117302 and U69593 against [3H]bremazocine but not against [3H]U69593 suggested that [3H]bremazocine could also be binding to a relatively minor proportion of additional, possibly kappa 2, sites while [3H]U69593 would appear to be selective for the kappa 1 site. In contrast, in the dog spinal cord, [3H]U69593 appeared to recognize only a proportion (approximately 35%) of the [3H]bremazocine labelled binding site. The significantly lower affinities and slope values of U69593 and PD117302 against [3H]bremazocine were consistent with the additional sites representing the k2 (benzomorphan) sites previously described in guinea-pig and rat spinal cord. Alternatively, the low (micromolar) affinity of the mu-selective ligand, [D-Ala2, MePhe4, Gly-ol5]enkephalin, implied that these additional sites might not be kappa 2 but possibly a low affinity mu site normally expressed under more physiological conditions.

Animals↗

Effect of opioid antagonists on acetylcholine release from guinea-pig brain slices: influence of peptidase inhibition.

With the aim of ascertaining the existence of an endogenous opioid control on cholinergic structures, the effects of the opioid antagonists naloxone, Mr 1452, Mr 2266, and ICI 174864 on spontaneous and electrically evoked [3H]choline (Ch) efflux from guinea-pig brain slices were tested. In cerebral cortex and caudate nucleus slices, no drug changed either resting or stimulus-evoked 3H-Ch efflux whether in the absence or in the presence of peptidase inhibitors (thiorphan 0.3 microM, bestatin 10 microM, captopril 10 microM, l-leucyl-l-leucine 2 mM). Conversely, in thalamus slices, the benzomorphan opioid antagonists Mr 1452 and Mr 2266 (but not their non-opioid stereoisomers Mr 1453 and Mr 2267) dose dependently increased St2/St1 ratios, when applied 15 min before St2 to slices superfused with normal Krebs solution. Peptidase inhibition potentiated the facilitatory effect of Mr compounds. Peptidase inhibitors per se reduced the stimulus evoked efflux of 3H-Ch, when present either from the beginning or from 15 min before St2 and potentiated the inhibition induced by dynorphin (Dyn). Mr 2266 fully antagonized any inhibitory effect induced by peptidase inhibitors, Dyn or their combination. ICI 174864, a selective delta antagonist, did not affect 3H-Ch efflux, while naloxone showed a tendency to increase it when peptidases were inhibited. Taken together, these data suggest the existence of an endogenous opioid tone inhibiting acetylcholine release in the guinea-pig thalamus. The relative affinities of the antagonists used suggest that the receptor involved may be of the kappa type.

Acetylcholine↗

A novel and facile preparation of bremazocine enantiomers through optically pure N-norbremazocines.

In order to provide ready access to multigram quantities of the optically pure bremazocines [(-)- and (+)-9,9-dimethyl-5-ethyl-2-hydroxy-2-(1-hydroxy-cyclopropylmethyl)-6,7-benzomorphan)], we have developed an improved non-chromatographic synthesis, and determined the optical purity of their N-nor precursors using a rapid and relatively simple 1H NMR method based on diastereomeric derivatization with optically pure 1-phenylethylisocyanate. This method of determining optical purity should be readily amenable to similar systems containing phenolic amino functionalities. Finally, a greatly simplified methodology for introduction of the N-(1-hydroxycyclopropylmethyl) substituent in bremazocine is described. The improved synthetic method-the overall yield was increased about 3-fold-combined with the practical methodology to determine optical purity will considerably facilitate the employment of these enantiomers as pharmacological tools for examination of the kappa-opioid receptor system, as well as their evaluation as drug abuse treatment agents. This synthesis will also enable the study of these enantiomers for other, non-classical applications (e.g., treatment agents for HIV).

Benzomorphans↗

Analysis of [3H]bremazocine binding in single and combinatorial opioid receptor knockout mice.

Despite ample pharmacological evidence for the existence of multiple mu-, delta- and kappa-opioid receptor subtypes, only three genes encoding mu-(MOR), delta-(DOR) and kappa-(KOR) opioid receptor have been cloned. The KOR gene encodes kappa(1)-sites, which specifically bind arylacetamide compounds, and the possible existence of kappa-opioid receptor subtypes derived from another kappa-opioid-receptor gene, yet to be characterized, remains a very contentious issue. kappa(2)-Opioid receptors are described as binding sites typically labelled by the non-selective benzomorphan ligand [3H]bremazocine in the presence of mu-, delta- and kappa(1)-opioid receptor blocking ligands. To investigate the genetic origin of kappa(2)-opioid receptors, we have carried out homogenate binding experiments with [3H]bremazocine in brains of single MOR-, DOR-, KOR- and double MOR/DOR-deficient mice. Scatchard analysis showed that 68+/-12% of the binding sites arise from the MOR gene, 27+/-1% from the DOR gene and 14.5+/-0.2% from the KOR gene, indicating that the three known genes account for total [3H]bremazocine binding. Experiments in the presence of mu-, delta- and kappa(1)-opioid receptor suppressor ligands further showed that non-kappa(1)-opioid receptor labelling can be accounted for by binding to both the mu- and delta-opioid receptors. Finally, [3H]bremazocine binding experiments performed on brain membranes from the triple MOR/DOR/KOR-deficient mice revealed a complete absence of binding sites, confirming definitively that no additional gene is required to explain the total population of [3H]bremazocine binding sites. Altogether the data show that the putative kappa(2)-opioid receptors are in fact a mixed population of KOR, DOR and predominantly MOR gene products.

Analgesics↗

Synthesis and receptor binding properties of fluoro- and iodo-substituted high affinity sigma receptor ligands: identification of potential PET and SPECT sigma receptor imaging agents.

Unlabeled fluoro- and iodo-substituted ligands exhibiting very high affinity and selectivity for sigma receptors were synthesized based on three different structural classes of sigma receptor ligands. These compounds were evaluated for sigma receptor affinity and specificity in order to assess their potential as PET/SPECT imaging agents. Thus, (+)- and (-)-N-(5-fluoro-1-pentyl)normetazocines [(+)- and (-)-4] based on the (+)-benzomorphan class of sigma ligands were synthesized via N-alkylation of optically pure (+)- and (-)-normetazocine with 5-[(methylsulfonyl)oxy]-1-pentyl fluoride (11). (+)- and (-)-4 displaced [3H](+)-3-PPP with Ki values of 0.29 and 73.6 nM and [3H](+)-pentazocine with Ki values of 10.5 and 38.9 nM, respectively. The second class of PET/SPECT ligands was based upon the N-(arylethyl)-N-alkyl-2-(1-pyrrolidinyl)ethylamine class of sigma ligands; N-[2-(3,4-dichlorophenyl)-1-ethyl]-N-(3-fluoro-1-propyl)-2-(1- pyrrolidinyl)ethylamine (5) was obtained via N-alkylation of N-[2-(3,4-dichlorophenyl)-1-ethyl]-2-(1-pyrrolidinyl)ethylamine (14) with 3-fluoropropyl p-toluenesulfonate. 5 exhibited Ki values of 4.22 and 5.07 nM for displacement of [3H](+)-3-PPP and [3H](+)-pentazocine, respectively, comparable with the parent N-propyl compound. Attempts to synthesize N-[2-(3,4-dichlorophenyl)-1-ethyl]-N-[3- [(methylsulfonyl)oxy]-1-propyl]-2-(1-pyrrolidinyl)ethylamine (26), a precursor to 5 that could conceivably be converted to [18F]-5 by treatment with 18F-, proved unsuccessful. The sequence of regioselective nitration, catalytic hydrogenation, and diazotization followed by NaI quench of N-[2-(3,4-dichlorophenyl)-1-ethyl]-N-methyl-2-(1- pyrrolidinyl)ethylamine (2) afforded the iodinated ethylenediamine N-[2-(2-iodo-4,5-dichlorophenyl)-1-ethyl]-N-methyl-2-(1- pyrrolidinyl)ethylamine (8), a potential SPECT ligand for sigma receptors. This compound showed an affinity of 0.54 nM ([3H](+)-3-PPP) comparable with the parent compound 2 (Ki = 0.34 nM, [3H](+)-3-PPP). Ligand 8 exhibited a similar potency against [3H](+)-pentazocine. The third class of high-affinity sigma receptor ligands was rationalized based on rearrangement of the bonds in ethylenediamine 2 to give 1-[2-(3,4-dichlorophenyl)-1-ethyl]-4-(1-propyl)piperazine (3). This compound exhibited very high affinity (Ki = 0.31 nM, [3H](+)-3-PPP) and selectivity for sigma receptors.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Synthesis and analgesic properties of N-substituted trans-4a-aryldecahydroisoquinolines.

A representative series of N-substituted derivatives of the morphine-based trans-4a-aryldecahydroisoquinoline were synthesized and evaluated for opioid analgesic activities. Compounds with potent analgesic activity and high affinities for the mu and kappa opioid receptors were discovered. The effect of varying the N-substituent in the trans-4a-aryldecahydroisoquinoline paralleled, to a certain extent, previous findings with other morphine part structures. Replacement of the N-methyl with a phenethyl group significantly increased analgesic potency. The N-cyclopropylmethyl analogue was found in rodents to have mixed agonist-antagonist properties; however, its antagonist activity was far weaker than those reported for the N-(cyclopropylmethyl)morphinan and -benzomorphan derivatives. Resolution of the stereoisomers and determination of their absolute configuration by X-ray crystallography showed that the opioid receptor effects were predominantly found with the 4aR,8aR isomer, the same relative absolute configuration of morphine. Unexpectedly, the 4aR,8aR N-cyclopropylmethyl analogue (compound 30), which in rodents had mixed agonist-antagonist properties similar to those of pentazocine, was found in rhesus monkeys to behave as a full morphine-like agonist.

Analgesics↗

2-aminothiazole-derived opioids. Bioisosteric replacement of phenols.

A series of aminothiazole-derived morphinans, benzomorphans, and morphine were synthesized. Although their affinities were somewhat lower than their phenol prototypes, one compound (9a, ATPM) has been identified possessing high affinity and selectivity at the kappa receptor. Functional assays showed that 9a was a full kappa but partial mu agonist; the efficacy at kappa was significantly greater than at mu receptors. This novel compound may be valuable for the development of long-acting analgesics and drug abuse medication.

Animals↗

Modulation of appetitively and aversively motivated behavior by the kappa opioid antagonist MR2266.

MR2266 (MR), an opioid antagonist that binds to kappa and mu receptors, was examined for its ability to influence the aversively motivated behaviors conditioned by electric shock and the drinking induced by water deprivation or the availability of a palatable saccharin/glucose solution. The intraperitoneal (ip) and intracerebroventricular (icv) administration routes were contrasted. After both ip and icv administration, MR was able to reverse conditional analgesia as measured by the formalin test. MR enhanced the Pavlovian conditional freezing response when administered icv prior to shock exposure but reduced freezing if given ip prior to shock. A related benzomorphan-derived opioid antagonist, MR1452, also reduced freezing when given ip prior to shock. MR2266 was a potent antidipsogenic agent when administered ip but had no such effect when administered icv. It is concluded that separable opioid systems are involved in the modulation of appetitively and aversively motivated behaviors.

Animals↗

Kappa- and delta-opioid receptor agonists differentially inhibit striatal dopamine and acetylcholine release.

At least three different families of endogenous opioid peptides, the enkephalins, endorphins and dynorphins, are present in the mammalian central nervous system (CNS). Immunocytochemical studies have demonstrated their localization in neurones, which supports the view that these peptides may have a role as neurotransmitter or neuromodulators. However, the target cells and cellular processes acted upon by the opioid peptides are still largely unknown. One possible function of neuropeptides, including the opioid peptides, may be presynaptic modulation of neurotransmission in certain neuronal pathways, for example, by inhibition or promotion of neurotransmitter release from the nerve terminals. Here we report that dynorphin and some benzomorphans potently and selectively inhibit the release of (radiolabelled) dopamine from slices of rat corpus striatum, by activating kappa-opioid receptors. In contrast, [Leu5]enkephalin and [D-Ala2, D-Leu5]enkephalin selectively inhibit acetylcholine release by activating delta-opioid receptors.

Acetylcholine↗

Characterization of the decrease of extracellular striatal dopamine induced by intrastriatal morphine administration.

The effect of intrastriatally-administered morphine on striatal dopamine (DA) release was studied in freely moving rats. Morphine (1, 10 or 100 microM) was given into the striatum by reversed microdialysis, and concentrations of DA and its metabolites 3,4-dihydroxyphenylacetic acid (DOPAC) and homovanillic acid (HVA) were simultaneously measured from the striatal dialysates. Intrastriatally-administered morphine significantly and dose-dependently decreased the extracellular concentration of DA, the concentrations of the acidic DA metabolites were only slightly decreased. The effect of morphine was antagonized by naltrexone (2.25 mg kg(-1), s.c.). Pretreatment with a preferential kappa-opioid receptor antagonist, MR2266 [(-)-5,9 alpha-diethyl-2-(3-furylmethyl)-2'-hydroxy-6,7-benzomorphane; 1 mg kg(-1), s.c.], had no effect on the decrease of extracellular DA evoked by intrastriatal morphine (100 microM). Intrastriatal administration of the selective micro-opioid receptor agonist [D-Ala2,MePhe4,Gly-ol5] enkephalin (DAMGO; 1 microM), significantly decreased the extracellular concentration of DA in the striatum. When the rats were given morphine repeatedly in increasing doses (10-25 mg kg(-1), s.c.) twice daily for 7 days and withdrawn for 48 h, the decrease of extracellular DA induced by morphine (100 microM) was significantly less than that seen in saline-treated controls. Our results show that besides the well-known stimulatory effect there is a local inhibitory component in the action of morphine on striatal DA release in the terminal regions of nigrostriatal DA neurones. Tolerance develops to this inhibitory effect during repeated morphine treatment. Furthermore, our results suggest that the effect of intrastriatally-administered morphine is mediated by the micro-opioid receptors.

3,4-Dihydroxyphenylacetic Acid↗

Pharmacological examination of contractile responses of the guinea-pig isolated ileum produced by mu-opioid receptor antagonists in the presence of, and following exposure to, morphine.

We have assessed the potential of several mu-opioid receptor antagonists to elicit a response in the guinea-pig isolated ileum in the presence of, and following overnight exposure to, morphine. Naloxone, D-Phe-Cys-Tyr-D-Trp-Orn-Thr-Pen-Thr-NH(2) (CTOP), (-)-5, 9alpha-diethyl-2-(3-furyl-methyl)-2'-hydroxy-6,7-benzomorphan (MR2266), but not D-Phe-Cys-Tyr-D-Trp-Arg-Thr-Pen-Thr-NH(2) (CTAP), produced a transient inhibition of electrically-evoked contractions of the guinea-pig ileum. The effect of 1 microM CTOP, but not that to MR2266, was inhibited by 1 microM somatostatin. Naloxone (0.3 microM), CTOP (3 microM), CTAP (3 microM) and MR2266 (0.3 microM) antagonized the inhibitory effect of morphine on electrically-evoked contractions of the guinea-pig to a similar degree and, following 60 min exposure to morphine, produced non-sustained contractions. The response to 3 microM CTOP was significantly smaller than that to 3 microM CTAP. None of the antagonists produced a response in the absence of morphine. Following overnight exposure of the ileum to 0.3 microM morphine (4 degrees C), and repeated washing to remove the agonist, all four antagonists elicited non-sustained contractions. However, the responses to 3 microM CTOP and 0.3 microM MR2266 were significantly smaller than those elicited by 0.3 microM naloxone and 3 microM CTAP. Somatostatin (1 microM) significantly reduced naloxone-induced contractions, but not those to CTAP. While all four mu-opioid antagonists elicited contractions in the presence of, and following prolonged exposure to, morphine, differences between them were noted which may be a consequence of non-opioid actions.

Animals↗

Effects of a kappa-opioid agonist on adrenocorticotropic and diuretic function in man.

Although kappa-opiate receptors represent an important fraction of the total opiate receptor capacity in human brain their endocrine function is unknown. We determined the effects of a kappa-opiate receptor agonist on the secretion of vasopressin, ACTH and cortisol and on diuresis. The racemic benzomorphan kappa agonist MR 2033 or its opiate active (-)-isomer, MR 2034, inhibited the release of cortisol and ACTH in 12 trials in a naloxone reversible manner; plasma levels of vasopressin were not altered. The (+)-isomer, MR 2035, did not affect the secretion of cortisol or ACTH. Surprisingly, in five other subjects large increases were observed in vasopressin, ACTH and cortisol following the kappa-agonist, which were probably elicited indirectly by aversive effects of the opioid. The subjects in whom vasopressin release was not altered by MR 2033 and MR 2034 displayed large decreases in urine osmolality which were not antagonized by naloxone. The opiate inactive (+)-isomer, MR 2035, caused no diuretic response. Subjects in whom vasopressin release was stimulated did not show decreases in urine osmolality indicating that vasopressin is capable of antagonizing the diuretic action of the kappa-agonist. Our data show that a kappa-agonist inhibits secretion of cortisol and ACTH by acting at stereospecific opiate receptors and elicits diuresis by acting at stereospecific, but naloxone-insensitive non-classical opioid receptors. These data support the concept that different types of kappa-receptors can be distinguished in man.

Adrenocorticotropic Hormone↗

Potent blockade of sodium channels and protection of brain tissue from ischemia by BIII 890 CL.

We have synthesized a new benzomorphan derivative, 2R-[2alpha,3(S*), 6alpha]-1,2,3,4,5,6-hexahydro-6,11, 11-trimethyl-3-[2-(phenylmethoxy)propyl]-2, 6-methano-3-benzazocin-10-ol hydrochloride (BIII 890 CL), which displaced [(3)H]batrachotoxinin A-20alpha-benzoate from neurotoxin receptor site 2 of the Na(+) channel in rat brain synaptosomes (IC(50) = 49 nM), but exhibited only low affinity for 65 other receptors and ion channels. BIII 890 CL inhibited Na(+) channels in cells transfected with type IIA Na(+) channel alpha subunits and shifted steady-state inactivation curves to more negative potentials. The IC(50) value for the inactivated Na(+) channel was much lower (77 nM) than for Na(+) channels in the resting state (18 microM). Point mutations F1764A and Y1771A in transmembrane segment S6 in domain IV of the alpha subunit reduced the voltage- and frequency-dependent block, findings which suggest that BIII 890 CL binds to the local anesthetic receptor site in the pore. BIII 890 CL inhibited veratridine-induced glutamate release in brain slices, as well as glutamate release and neurotoxicity in cultured cortical neurons. BIII 890 CL (3-30 mg/kg s.c.) reduced lesion size in mice and rats when administered 5 min after permanent focal cerebral ischemia at doses that did not impair motor coordination. In contrast to many other agents, BIII 890 CL was neuroprotective in both cortical and subcortical regions of the rat brain. Our results demonstrate that BIII 890 CL is a potent, selective, and highly use-dependent Na(+) channel blocker that protects brain tissue from the deleterious effects of focal cerebral ischemia in rodents.

Animals↗

Synthesis and in vitro and in vivo evaluation of [11C]methyl-BIII277CL for imaging the PCP-binding site of the NMDA receptor by pet.

A new benzomorphane derivative, [11C]methyl-BIII277CL, was evaluated as a potential radiotracer for visualizing the PCP-binding site of the N-methyl-D-aspartate (NMDA) receptor by positron emission tomography (PET). Methyl-BIII277CL was prepared by reacting the desmethyl compound (BIII277CL) with dimethylsulfate. The pharmacological profile of methyl-BIII277CL was determined by in vitro receptor-screening assays. At a concentration of 100 nM, methyl-BIII277CL showed a significant interaction with the PCP-binding site of the NMDA receptor (79% inhibition of specific binding) and the sigma-binding site (46% inhibition). In displacement assays using mice cortical membranes, methyl-BIII277CL displayed a high affinity at the PCP-binding site of the NMDA receptor (Ki = 49 +/- 14 nmol/L) and a 130-fold lower interaction with the sigma1-binding site (Ki = 6.35 +/- 0.26 micromol/L). For saturation experiments and in vivo studies, methyl-BIII277CL was radiolabeled with 11C at the O-position of the desmethyl precursor (BIII277CL) using [11C]methyliodide with a specific activity of 35-70 GBq/micromol at the end of synthesis (EOS). In saturation assays using rat whole brain membranes [11C]methyl-BIII277CL showed a Kd of 6 +/- 1 nmol/L and a Bmax of 670 +/- 154 fmol/mg protein. Biodistribution and PET studies in rats and pigs, however, indicated a lack of specific binding and unfavorable pharmacokinetics. Kinetic modeling using the 1-tissue compartment model demonstrated for [11C]methyl-BIII277CL a low distribution volume (Dv = 0.98 mL/mL(tissue)) and very high values for the kinetic parameters K1 and k2 (K1 = 0.36 mL/mL(tissue)/min and k2 = 0.37min(-1)) in pig cortex. [11C]methyl-BIII277CL, due to the lack of specificity in vivo, may not be a candidate for imaging the PCP-binding site of the NMDA receptor.

Animals↗