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Inhibition of converting enzyme in the cerebrospinal fluid of rats after oral treatment with converting enzyme inhibitors.

Inhibition of brain converting enzyme (CE) has been implicated in the antihypertensive action of some CE inhibitors. However, it is still a matter of debate whether these drugs gain access to the central nervous system upon systemic administration. In this study in rats we investigated the ability of p.o. applied CE inhibitors to penetrate from blood into cerebrospinal fluid (CSF) by analyzing the inhibition of CE activity in the CSF after acute bolus and after 1 week overnight treatment with enalapril, ramipril and Hoe 288. Penetration into the CSF closely paralleled the lipid solubility of the drugs. The most lipophilic drug, Hoe 288 (10 mg/kg), inhibited CE activity in the CSF after acute (66%) and after chronic (30%) p.o. treatment. Ramipril (10 mg/kg), being less lipophilic than Hoe 288, was only effective after acute bolus administration (59% inhibition), whereas the most hydrophilic drug, enalapril (30 mg/kg), did not reduce CE activity in the CSF after either regimen. The CE inhibition in the CSF after acute p.o. treatment with ramipril and Hoe 288 was dose-dependent with threshold doses of 3 to 10 mg/kg (ramipril) and less than 1 mg/kg (Hoe 288). The presence of ramipril and Hoe 288 in the CSF was also demonstrated by the inhibitory effect of heat-inactivated CSF from CE inhibitor-treated rats on purified CE from rabbit lung. A comparison of the in vitro activities of the three prodrugs and their parent diacids against CE in plasma and in CSF and against purified CE revealed hydrolysis of the prodrugs to their parent diacids in plasma and CSF.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

[Studies on antitumor drugs: the synthesis of N',N"-dispirotripiperaziniums].

In order to search for new antitumor drugs, sixteen N',N"-dispirotripiperazine derivatives were synthesized from N',N"-dispirotripiperazinium dichloride dihydrochloride by substitution, acylation and Mannich reaction. Six compounds were selected for preliminary pharmacological test. The result showed that five compounds possess inhibitory action against carcinoma S37 in rats. The inhibitory activity of compounds VI and X was 55.0% and 41.9% respectively.

Animals↗

AR-R17779, and alpha7 nicotinic agonist, improves learning and memory in rats.

Nicotinic acetylcholine systems have been found to be important for learning and memory function. The prototypic nicotinic agonist nicotine has been shown in a variety of studies to improve aspects of cognitive function. The specific involvement of nicotinic receptor subtypes is now being investigated. The involvement of alpha7 nicotinic receptors was assessed in this project using a novel alpha7 nicotinic agonist, AR-R 17779. Repeated doses (subcutaneous injection 20 min before testing) of the racemic mixture AR-R 13489 and its active isomer AR-R 17779 were assessed in adult female Sprague-Dawley rats using the eight-arm radial maze. AR-R 13489 (2 mg/kg) caused a significant improvement of long-term win-shift acquisition after 3 weeks of training (n = 10 per group). The same dose of AR-R 17779 also caused a significant improvement in repeated acquisition within each daily session in the radial-arm maze. In another study, the active isomer AR-R 17779 significantly improved radial-arm maze working memory function in rats with lesions to the septohippocampal projection. Fimbria-fornix lesions significantly impaired working memory performance and AR-R 17779 significantly reversed that impairment. These studies showed that alpha7 nicotinic agonist treatment improved learning in two radial-arm maze tasks and reversed working memory impairment caused by fimbria-fornix sections, providing evidence for alpha7 involvement in learning and memory, and the potential therapeutic use of AR-R 17779.

Animals↗

Antitumor effect of keto-diepoxides isolated from the fungus Nattrassia mangiferae.

A novel keto-diepoxide Sch 49209 and its derivative Sch 50672, produced by the fungus Nattrassia mangiferae, inhibited tumor cell invasion through an artificial basement membrane. These compounds, at nontoxic concentrations, inhibited invasion of HT-1080 cells in a dose-dependent manner. The IC50 values for Sch 49209 and Sch 50672 were 0.75 and 8 microM, respectively, when cells were incubated with drugs for 5 h. Sch 49209 inhibited both tumor cell invasion and cell motility to the same extent under conditions that did not cause any apparent cytotoxicity. Sch 4209 and Sch 50672, however, inhibited the growth of ras-transformed cells in a semisolid medium in a 5-day culture with IC50 values of 0.6 and 2.4 microM, respectively. They also inhibited the anchorage-dependent growth of pT24 cells in vitro with IC50 values of 0.5 and 0.9 microM for Sch 40209 and Sch 50672, respectively. Using the murine lung epidermoid carcinoma M27 cells implanted SC in mice as a model, we found both Sch 49209 and Sch 50672 inhibited the growth of this tumor at doses ranging from 2 to 10 mg/kg. These compounds also decreased the formation of spontaneous lung metastasis in this model. Sch 50672 inhibited the growth of human tumor xenografts, SW620 and A431, in athymic mode mice. Our data suggest that keto-diepoxides inhibit tumor growth and metastasis and that this activity may be due, in part, to anti-invasive activity.

Animals↗

[A new series of antiparasitic organic arsenicals: the spiroarsoranes. Experimental trypanocidal activity].

Arsenical compounds are the main therapeutic way, effective in the neurological phase of trypanosomiasis. Unfortunately, their important toxicity prevents their easy administration. Structural cyclization of arsonic acid derivatives has led to a class of non-toxic compounds: spiroarsoranes. A 47 compound primary screening on an in vivo murine model of Trypanosoma brucei brucei resulted in the isolation of a very effective derivative after a single subcutaneous injection of 30 mg.kg-1 body weight (Chemotherapeutic Index = 21). In this study, trypanocidal activity of this compound was evaluated on an in vivo sheep model of trypanosomiasis by T. brucei brucei, according to experimental model of the Institute of Neurological Epidemiology and Tropical Neurology of Limoges (France). A single subcutaneous injection of 30 and 100 mg.kg-1 b.w., and 30 and 60 mg.kg-1 b.w. was given respectively during first and second phase of trypanosomiasis. Ovine pharmacokinetics of this compound will be evaluated in a further study.

Animals↗

The ability of WAY100,635 to potentiate the neurochemical and functional actions of fluoxetine is enhanced by co-administration of SB224,289, but not BRL15572.

The present study employed a combined neurochemical and behavioural approach to address the question of whether blockade of (presynaptic) 5-HT(1B) or 5-HT(1D) receptors enhances the facilitatory influence of 5-HT(1A) autoreceptor antagonism upon the actions of selective serotonin re-uptake inhibitors (SSRI). In the presence of the selective 5-HT(1A) antagonist, WAY100,635, the fluoxetine-induced increase in dialysate levels of 5-HT in the frontal cortex (FCX) of freely-moving rats was significantly potentiated. The selective 5-HT(1B) antagonist, SB224,289, likewise potentiated the increase in 5-HT levels evoked by fluoxetine. Further, administered together, WAY100,635 and SB224,289, at least additively, potentiated the influence of fluoxetine upon 5-HT levels. This effect was selective inasmuch as, either alone or together, WAY100,635 and SB224,289 did not modify the influence of fluoxetine upon FCX levels of dopamine (DA) or noradrenaline (NA) quantified in the same dialysis samples. Co-administration of SB224,289 also enhanced the ability of WAY100,635 to potentiate the induction of head-twitches (HTW) by fluoxetine. This response reflects activation of 5-HT(2A) sites in FCX and was abolished by the selective 5-HT(2A) antagonist, MDL100,907. In contrast to SB224,289, the 5-HT(1D) antagonist, BRL15572, failed to enhance the facilitatory influence of WAY100,635 upon the neurochemical or behavioural actions of fluoxetine. In conclusion, co-joint blockade of 5-HT(1B) - but not 5-HT(1D) - with 5-HT(1A) autoreceptors markedly potentiates the neurochemical and functional actions of the SSRI, fluoxetine.

Animals↗