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Penfluridol: a neuroleptic drug designed for long duration of action.

1. Penfluridol is a unique, long-acting, oral neuroleptic belonging to the diphenylbutylpiperidines. The synthesis of penfluridol represented the result of a well-planned scientific search for a highly lipophilic compound structurally related to haloperidol and pimozide. 2. Because of its unusual lipophilicity, penfluridol distributes extensively in fatty tissues following oral administration. This depot effect produces a very slow release of drug from the tissues, and results in a very long duration of activity. 3. Penfluridol is extensively metabolized by oxidative N-dealkylation to afford, as isolated metabolites, the beta-glucuronide conjugate of the diphenylbutyric acid derivative A1 and the unconjugated basic piperidine moiety B1. It is assumed, at this time, that the pharmacological activity is attributable to the parent compound. 4. When administered clinically at oral doses of 20 to 100 mg/week, penfluridol has been found to be an effective antipsychotic agent. This frequency of dosing is consistent with the pharmacokinetic behavior of the drug in man, and does not appear to result in any inappropriate accumulation of the drug in patients. Wide variations in steady-state levels and plasma elimination half-life have been observed in patient populations.

Animals

Specificity of the glutamine-binding site involved in the reguation of glutamine-synthetase activity in hepatoma tissue-culture cells.

Glutamine accelerates the degradation of glutamine synthetase in hepatoma tissue culture cells. Compounds structurally related to glutamine were tested for their ability to mimic or antagonize this effect of glutamine. 6-Diazo-5-oxo-L-norleucine, like glutamine depressed the activity of glutamine synthetase in hepatoma tissue culture cells. L-Methionine sulfone, albizzine, L-methionine sulfoxide, L-gamma-glutamyl hydrazide and gamma-N-methyl-L-glutamine (listed in order of decreasing potency) were antagonists which prevented the effect of glutamine on glutamine synthetase activity. These antagonists had little effect on glutamine transport or protein synthesis of hepatoma tissue culture cells and their effects were reversible. The effects of compounds on gluatmine synthetase activity in cell-free extracts of the cells were examined. Diazo-oxonorleucine and albizzine inhibited neither the transferase nor the synthetase activity of glutamine synthetase. This observation is interpreted to mean that the glutamine-binding site involved in the regulation of glutamine synthetase activity of hepatoma tissue culture cells is not the active site of the enzyme.

Biological Transport, Active

Effects of pH changes and charge characteristics in the uptake of norepinephrine by synaptosomes of rat brain.

The pH dependence of the initial uptake of norepinephrine by rat whole brain synaptosomes was studied using short incubation times at 37 degrees C in order to examine the possible involvement of the phenolic OH group. The pH vs. uptake profile exhibits a maximum near pH 8.2 in H2O medium. When the medium was changed to 2H2O, the profile showed a shift of maximum corresponding to the pKa change of the phenolic OH group. The pH vs. uptake profile of tyramine was quite different from that of norepinephrine. These pH effects on uptake were explained as manifestations of the involvement of the phenolic OH group in the process. The amine and phenolic hydroxyl groups in norepinephrine were studied separately by employing two series of compounds structurally related to catecholamines, amphetamine-like and catechol-like, for their inhibitory effects on the uptake. The inhibitions were affected by changes in pH with changes in opposite directions found for the two series indicating the need for a positive charge in the side chain and suggesting an effect of the negative charge on the ring. These charge characteristics agreed with the pH profile observed in uptake. Consequently, the two groups with opposite charge characteristics in norepinephrine both appear to function in the uptake process.

Amphetamines

Stimulation of benzodiazepine receptor binding by gamma-aminobutyric acid.

The effect of the neurotransmitter gamma-aminobutyric acid (GABA) on high-affinity binding of benzodiazepines to brain membranes has been investigated. GABA stimulated [3H]diazepam binding by more than 100% when extensively washed membranes from brain tissue were used. This GABA-stimulated benzodiazepine binding occurred in all brain regions examined. The stimulation was specific for GABA agonist. It was inhibited by the GABA receptor blocker bicuculline methiodide. A large number of compounds structurally closely related to GABA but without direct effect on the GABA receptor failed to enhance [3H]diazepam binding. The stimulation of benzodiazepine binding was caused by an increase in affinity; the number of binding sites remained unchanged. Half-maximal activation of [3H]diazepam binding occurred in the presence of 300 nM muscimol or 900 nM GABA. beta-Guanidinopropionic acid and imidazoleacetic acid were much weaker activators. It is suggested that the described stimulation of benzodiazepine high-affinity binding is mediated by a receptor for GABA. This site of GABA action exhibits different properties when compared to GABA receptors, as characterized by high-affinity binding of GABA agonists.

Animals

Effects of membrane-energy mutations and cations on streptomycin and gentamicin accumulation by bacteria: a model for entry of streptomycin and gentamicin in susceptible and resistant bacteria.

Several mutants of Escherichia coli affecting aerobic energy generation and energization of the bacterial membrane have been examined for their effect on streptomycin and gentamicin accumulation and susceptibility. A heme-deficient mutant (K207) and two mutants (CJ-8 [colicin K insensitive] and NR-70) associated with defective aerobic active transport were associated with decreased transport of streptomycin and gentamicin and increased resistance to those antibiotics. These mutants also exhibited increased resistance to several other aminoglycoside antibiotics, but not the aminocyclitol spectinomycin. The same observations were made with a ubiquinone-deficient mutant, but a strA derivative of this mutant was shown additionally to be saturable for streptomycin accumulation at a concentration four or more times lower than that required for saturation of the parent. A mutant uncoupled for adenosine 5'-triphosphate synthesis from electron transport and membrane Mg-adenosine 5'-triphosphatase deficient was hypersensitive to those aminoglycosides tested and spectinomycin, and showed enhanced transport of streptomycin and gentamicin. A variety of compounds structurally related to streptomycin were examined at high concentrations for inhibition of streptomycin uptake in a strA mutant of E. coli K-12 SA 1306, but no evidence for competition was detected, suggesting the absence of a common transport carrier. Four different divalent cations were shown to inhibit streptomycin and gentamicin accumulation in E. coli K-12 SA 1306. Divalent cations were shown to inhibit uptake of these two drugs in two bacterial species with distinct cell wall structures, Pseudomonas aeruginosa and Staphylococcus aureus, and to inhibit streptomycin uptake in spheroplasts of streptomycin-susceptible and -resistant E. coli. However, calcium had almost no inhibitory effect on streptomycin uptake by the ubiquinone-deficient mutant E. coli AN66. These and previous findings have been used to formulate a model for aminoglycoside entry into bacteria using a low-affinity membranous complex involved in membrane energization that includes respiratory quinones, which probably act to bind and transport aminoglycosides across the cell membrane. This phase of transport is associated with the lowest accumulation rate (termed energy-dependent phase I) that is rate limiting for susceptibility. It is further proposed that subsequent association of the membrane-bound aminoglycoside with higher-affinity binding sites on membrane-associated ribosomes carrying out a normal ribosomal cycle and protein synthesis results in a more rapid transport rate (termed energy-dependent phase II). The increased rate could result from a state of membrane energization analogous to that causing enhanced aminoglycoside transport rates seen in the uncoupled mutant, AN120. How this model explains the mechanism by which enzymatically modified aminoglycosides render cells resistant to unmodified aminoglycosides is also discussed.

Adenosine Triphosphatases

Microbial degradation of [C14C]polystyrene and 1,3-diphenylbutane.

Microbial degradation of [beta-14C]polystyrene and 1,3-diphenylbutane, a compound structurally representing the smallest repeating unit of styrene (dimer), was investigated in soil and liquid enrichment cultures. Degradation rates in soil, as determined by 14CO2 evolution from applied [14C]polystyrene, varied from 1.5 to 3.0% for a 4-month period. Although relatively low, these percentages were 15 to 30 times greater than values previously reported. Enrichment cultures, containing 1,3-diphenylbutane as the only carbon souce, were used to determine the mechanisms of microbial oxidation of the polymer chain ends. Metabolism of 1,3-diphenylbutane appeared to involve the attack by a monooxygenease to form 2-phenyl-4-hydroxyphenylbutane followed by a further oxidation and subsequent fission of the benzene ring to yield 4-phenylvaleric acid and an unidentified 5-carbon fragment via the classic meta-fission pathway. Phenylacetic acid was probably formed from 4-phenylvaleric acid by subsequent beta-oxidation of the side chain, methyl-oxidation and decarboxylation. An initial examination of the population of microorganisms in the diphenylbutane enrichment cultures indicated that these oxidative reactions are carried out by common soil microorganism of the genera Bacillus, Pseudomonas, Micrococcus, and Nocardia.

Bacteria

Evaluation of the discriminative effects of morphine in the rat.

The discriminative effects produced by morphine in the rat were evaluated using a two-choice, discrete trial avoidance task. Stimulus control of behavior was attained with a dose of morphine one-third to one-tenth of that used in previous studies. Morphine produced dose-related discriminative effects over a 100-fold dose range. The stimulus control produced by the discriminative effects of morphine met the following criteria for classification as a specific narcotic effect: 1) oxymorphone, levorphanol, methadone and meperidine, narcotic analgesics from diverse chemical families, also produced dose-related morphine-like discriminative effects; 2) dextrorphan and thebaine, compounds structurally related to the narcotics but lacking narcotic activity, failed to produce morphine-like discriminative effects; 3) effects were blocked by the narcotic antagonist naloxone; and 4) tolerance to the discriminative effects developed upon the repeated administration of morphine and cross-tolerance extended to methadone. The discriminative effects produced by morphine were further characterized by evaluating the capacity of prototypes of other classes of psychoactive drugs to produce morphine-like discriminative effects. Profadol and pentazocine, euphorogenic analgesics with mixed agonist and narcotic antagonist properties, produced dose-related morphine-like discriminative effects whereas cyclazocine, a dysphorogenic analgesic with mixed agonist and narcotic-antagonist properties, did not. In addition, the nonopioid psychoactive drugs d-amphetamine, pentobarbital and chlorpromazine also failed to produce morphine-like discriminative effects. Thus, morphine-like discriminative effects were produced uniquely by the narcotic analgesics and euophorogenic analgesics with mixed agonist and narcotic antagonist properties. These results suggest that the component of action of morphine that enables it to function as a discriminative stimulus in the rat is analogous to the component of action of morphine responsible for producing subjective effects in man.

Analgesics, Opioid

Differential perturbation of erythrocyte membrane-associated transport and enzyme activities by structurally related lipophilic compounds.

The alteration of two erythrocyte plasma membrane functions, acetylcholine hydrolysis and glucose exchange, by a series of structurally related small lipophilic compounds which exhibit antihemolytic behavior was studied. 2-Methyldimethylaminoazobenzene is a more potent inhibitor of acetylcholinesterase than the 3'-methyl analogue, while the unsubstituted compound fails to inhibit. Esterase inhibition by the 2-methyl compound is non-competitive and dependent on the anion composition of the assay buffer. The temperature dependence of acetylcholinesterase activity in the presence of the 2-methyl compound suggests that interaction with inhibitor is influenced by the state of lipids tightly bound to the enzyme. Glucose exchange is inhibited to the same extent by both methyl derivatives but not by the unsubstituted dye, and the temperature dependence in the presence of inhibitor is not grossly altered. The lack of correlation between inhibition of membrane function adn stabilization of erythrocytes against osmotic hemolysis is discussed.

Acetylcholine

Mutagenicity of halogenated and oxygenated three-carbon compounds.

Four structurally related three-carbon compounds, known for their antifertility activity in the male, and the brominated derivatives of two of these compounds were tested for mutagenic activity by the Salmonella typhimurium test of Ames et al. In the presence of strain TA-100, a base-pair substituion detector strain, 1,2-dibromo-3-chloropropane (DBCP), was the most active compound tested but required enzymatic conversion by 59 microsomal preparation to an active mutagen. Three of these compounds containing an epoxide group-epichlorohydrin, epibromohydrin, and glycidol-were highly active direct mutagens, not requiring 59 for activation, alpha-Chlorohydrin was the least active compound tested; alpha-bromohydrin was 40 times more active than its chlorinated analog. Epibromohydrin was only slightly more active than epichlorohydrin, but both were highly active. With both of the halogenated epoxides, 59 preparation caused a substantial decrease in mutagenic activity at every concentration tested. All six compounds showed dose-related responsiveness for the base-pair substitution detector strains used. However, they were relatively inactive against the frameshift detector strain of S. typhimurium, TA-98. Glycerol, propylene glycol, and n-propanol, which are also three-carbon compounds containing one or more hydroxy groups, were inactive when trested at high concentrations with strain TA-100.

Alcohols

[Synthetic inhibitors of serine proteinases. 13. Quantitative structure-activity relationship for inhibition of trypsin and thrombin by 4-amidinophenyl compounds with a ketone structure].

To establish quantitative structure-activity relationships for the inhibition of trypsin, plasmin and thrombin by 4-amidinophenyl compounds with a keto group, attempts have been made to detect correlations between data on inhibition and substituent constants. The inhibitor activity of the derivatives is described by lipophilic or steric substituent constants using linear free energy relationships. To describe the action of beta-ketones, an additional sigma I term is necessary. The lipophilic or steric term stands for binding of the inhibitor side chain to a second hydrophobic binding site of the enzyme. The electronic term describing inductive influences on the keto group suggests the contribution of the beta-keto group to the enzyme inhibitor binding via a tetrahedral conformation of the carbonyl carbon.

Binding Sites

Effects of two structurally different antispermatogenic compounds on the synthesis of steroids in rat testes.

The influence of two drugs with antispermatogenic properties on steroid biosynthesis has been studied in rat testes in vitro with pregnenolone as the substrate. 20-438, an indenopyridine derivative increased the relative conversion of pregnenolone to progestins and estradiol, whilst decreasing the conversion of substrate to testosterone and androstenedione. PMHI, a pipecolinoindane derivative, reduced testosterone levels in the testes without altering the relative conversion of pregnenolone to various steroids. This suggests that the agent is partially inhibiting the biosynthesis of androgen precursors leading to a testosterone deficiency in testicular tissue which may result in reduced spermatogenesis.

Androstenedione

Fine structure of the compound eye of Porcellio scaber in light and dark adaption.

The compound eyes of the terrestrial isopod Porcellio scaber comprises about 20 ommatidia. The dioptric apparatus of each ommatidia includes a biconvex corneal lens and a spherical crystalline cone that is secreted by two cone cells. The closed rhabdom is formed by the microvillar extensions of seven pigmented retinula cells and one apical eccentric cell. All retinular axons exit the eye in one bundle. During dark-adaption pigment granules in the retinula cells rapidly withdrew from around the rhabdom and the cell periphery, and migrated basally. Rhabdoms thickened because of movement of the microvilli, and mitochondria moved medially and basally. During light adaption these processes were reversed. Multivesicular bodies became less numerous and rough endoplasmic reticulum and ribosomes proliferated during the initial stages of light adaption.

Animals

Mutagenicity of 43 structurally related heterocyclic compounds and its relationship to their carcinogenicity.

43 heteropolycyclic compounds belonging to a homologous series were investigated for mutagenicity. The results are compared with carcinogenicity data obtained with the same batches of compounds under conditions identical for all of them. Mutagenicity was tested in the Ames test with Salmonella typhimurium strains TA1535, TA1537 and TA100 in the presence and absence of liver 10 000 g supernatant from rats treated with Aroclor 1254. Carcinogenicity was tested by injection of the compounds into subcutaneous tissue of XVIInc/Z mice. 18 test compounds showed carcinogenic activity, some strongly, others only weakly. Of these, 17 were detected as mutagens: one weak carcinogen did not revert the Salmonella strains. No quantitative correlation was observed between the extents of the mutagenic and the carcinogenic effects. Of the 25 substances that did not produce tumours, 13 showed mutagenicity (12 in the presence, 2 in the absence, of the liver homogenate). The mutagenic effects of these compounds were quantitatively similar to those of the compounds that produced tumours. The most sensitive strain of Salmonella typhimurium was TA100. It detected all 30 mutagens. TA98 was mutated by 25 compounds, TA1537 by 16 compounds. No mutagenic effects were seen with TA1535. Possible reasons for the high percentage of apparently "false positives" in the Ames test and the lack of a quantitative correlation between the potency of the mutagenic and carcinogenic effects are discussed. It is suggested that the complexity of the metabolism of these heterocyclic compounds may lead to critical differences in metabolism in mouse subcutaneous tissue in vivo and in liver homogenates from rats treated with Aroclor. Therefore the present study will be extended to life-long oral and intrahepatic carcinogenicity tests leading to a higher proportion of metabolism in the liver.

Carcinogens

[Experimental results with systematically synthetized substances for antiviral chemotherapy / 4th communication: The role of physical binding in the synthesis of antiviral chemotherapeutics and its influence on potential mutagenic effects (author's transl)].

13 antiviral substances containing specific hydrogen bridge linkage systems out of the classes of 2-substituted 4-phenylthiazoles, 4-phenylimidazoles and indandiones-(1,3) were tested for their mutagenic potency in the host-mediated assay, in bone marrow of rats, in spermatogonia of mice and in the micronucleus test of rats. Only one substance, N1-methyl-N2-[4-phenylthiazolyl-(2)]-urea, was found to be mutagenic. This fact substantiates the hypothesis that the antiviral effectiveness of the substances is not caused by a chemical change in the coding system but by forming "physical" linkages like hydrogen bridge complexes with coding structures. Altogether 159 compounds of very different structures were investigated for their antiviral chemotherapeutic potency in 893 tests in cell cultures and 461 animal tests. It can be stated that compounds with a low molecular weight containing the "effective structures" (see article) show a larger yield of antiviral compounds than do substances without these structures (about 50% positive results in cell cultures and 25% in animals 15% and 0%, respectively).

Animals