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H Anhut

Publications and source records attributed to H Anhut.

At least 19 recordsLinked to original sources

A double-blind trial of gabapentin monotherapy for newly diagnosed partial seizures. International Gabapentin Monotherapy Study Group 945-77.

BACKGROUND: Gabapentin is widely approved as add-on therapy for epilepsy treatment for partial seizures with and without secondary generalization. To investigate the efficacy of gabapentin administered as monotherapy in patients with newly diagnosed partial epilepsy, a randomized double-blind trial was performed. METHODS: Eligible patients were randomized to receive one of three masked doses of gabapentin (300, 900, or 1,800 mg/day) or open-label carbamazepine (600 mg/day) and kept daily seizure diaries throughout the study. After titration, patients entered a 24-week evaluation phase. Patients were required to exit the study if they experienced an exit event, defined as a total of three simple or complex partial seizures, one generalized tonic-clonic (GTC) seizure, or status epilepticus. Patients could be withdrawn for lack of efficacy, adverse events, or noncompliance. Kaplan-Meier statistics were used to estimate the probability that patients would continue in the study without having an exit event. RESULTS: Time to exit event was longer for patients on 900 mg/day (n = 72) or 1,800 mg/day (n = 74) of gabapentin than for patients receiving 300 mg/day (n = 72; p = 0.0395 and 0.0175, respectively). The most clinically relevant measure of retention on treatment (exit event plus adverse event withdrawal rate) was similar for carbamazepine (n = 74) and 1,800 mg/day gabapentin (54% versus 57%) but was lower (better) for 900 mg/day gabapentin (44%). No unexpected new adverse events emerged with gabapentin monotherapy. CONCLUSIONS: Gabapentin at 900 or 1,800 mg/day is effective and safe as monotherapy for patients with newly diagnosed partial epilepsy.

Acetates↗

Gabapentin in naive childhood absence epilepsy: results from two double-blind, placebo-controlled, multicenter studies.

Efficacy and safety of gabapentin monotherapy were evaluated in 33 children with newly diagnosed absence epilepsy in two identical, double-blind, placebo-controlled trials in which a 2-week double-blind treatment phase was followed by a 6-week open-label phase. Primary efficacy criterion was seizure frequency change from baseline to end of double-blind treatment derived from quantified electroencephalograms. Primary efficacy analyses compared treatment differences in the 2-week double-blind phase. Gabapentin did not significantly decrease or increase seizure frequency compared with placebo. Low dosages with possibly subtherapeutic plasma levels may have contributed to the lack of demonstrable efficacy. Somnolence and dizziness were the only adverse events reported by at least two patients during gabapentin treatment. No clinically important changes in laboratory assessments or other safety parameters were observed. Gabapentin monotherapy at dosages ranging from 9.7 through 19.1 mg/kg/day is well tolerated in pediatric patients aged 4 through 12 years with absence epilepsy.

Acetates↗

Ralitoline.

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Animals↗

beta-Endorphin controls vasopressin release during foot shock-induced stress in the rat.

This study tested the possibility that beta-endorphin is involved in the regulation of vasopressin release during stress induced by inescapable electric foot shock. To this end, a specific anti-beta-endorphin antiserum or a control serum lacking the specific anti-beta-endorphin antibodies was administered to male rats. Plasma vasopressin concentrations, measured by radioimmunoassay, were not affected by brief foot shock stress in control rats, but were raised significantly by the stress in animals which had received an intracerebroventricular (i.c.v.) injection of the anti-beta-endorphin antiserum. In contrast, when the same volume of the anti-beta-endorphin antiserum was injected into a tail vein, foot shock stress produced only a slight effect on vasopressin release. I.c.v. injection of the antiserum changed neither basal nociceptive threshold nor stress-induced analgesia as revealed by the tail-flick latency. Vasopressin release induced by an osmotic stimulus was not influenced by the anti-beta-endorphin antiserum given i.c.v. The opiate antagonist naloxone or the glucocorticoid dexamethasone raised plasma vasopressin concentration in stressed rats which had received the control serum (i.c.v.); however, after i.c.v. injection of the anti-beta-endorphin antiserum neither naloxone nor dexamethasone elevated the plasma vasopressin concentration beyond the level reached by the anti-beta-endorphin antiserum (i.c.v.) alone. These results suggest that beta-endorphin inhibits the release of vasopressin during foot shock-induced stress in the rat.

Animals↗

Cholecystokinin-like immunoreactivity of rat medial basal hypothalamus: investigations on a possible hypophysiotropic function.

Studies on the cholecystokinin-like immunoreactivity (CCK-IR), of the medial basal hypothalamus (MBH) were performed in rats. In immunohistochemical studies, a dense CCK-IR-positive staining was found in the external layer of the median eminence adjacent to portal capillaries. Either high potassium (56 mM) or veratridine (1-50 micrograms/ml) stimulated the release of CCK-IR from MBH incubated in vitro. This increase in CCK-IR release depended on the presence of calcium. In vivo, the content of CCK-IR in the MBH was reduced after bilateral adrenalectomy and this effect of adrenalectomy was reversed by dexamethasone treatment. The content of CCK-IR in the neurointermediate lobe of the pituitary gland was not changed under these conditions. These results raise the possibility that after activation of the hypothalamo-pituitary-adrenal axis cholecystokinin may be secreted from nerve terminals in the external layer of the median eminence into the hypophyseal portal blood.

Adrenalectomy↗

Vasopressin release from rat medial basal hypothalamus induced in vitro by angiotensin.

Rat medial basal hypothalami were superfused in vitro. The effect of angiotensin II on vasopressin outflow was investigated. Angiotensin II (10 nM or 1 microM, added to the superfusion medium) increased the veratridine-evoked vasopressin release. The higher concentration also slightly elevated the basal outflow. The effect of angiotensin II was blocked by saralasin. We conclude that angiotensin II can act on the median eminence and/or on the stump of the pituitary stalk to promote the release of vasopressin, which then may influence anterior pituitary hormone secretion.

Angiotensin II↗

Vasopressin and beta-endorphin release after osmotic and non-osmotic stimuli: effect of naloxone and dexamethasone.

The purpose of this study was to determine whether or not vasopressin release in response to various stimuli in the conscious rat is controlled by endogenous opioid peptides, in particular beta-endorphin. Naloxone (1 mg.kg-1 i.m.) promoted vasopressin release in response to both an angiotensin II infusion (500 ng . kg-1 . min-1) or an isosmolar, nonhypotensive hypovolaemia achieved by polyethylene glycol injection (PEG, 20% solution i.p.); however, naloxone was without effect when vasopressin release was induced by hypertonic saline injection (2.5% solution i.p.) or a severe fall in arterial blood pressure following trimethidinium (10 mg . kg-1 i.m.) induced ganglionic blockade. Vasopressin release was accompanied by an increase in plasma beta-endorphin-like immunoreactivity (beta-EI) following an angiotensin II infusion of PEG administration, but not after hypertonic saline or trimethidinium injection. Dexamethasone pretreatment (0.5 mg . kg-1 twice i.p.) prevented the increase in plasma beta-EI following an angiotensin II infusion or PEG administration. The simultaneous angiotensin II- or PEG-induced increase in vasopressin release was unaffected or potentiated, respectively, by the glucocorticoid. In contrast, vasopressin release in response to hypertonic saline or trimethidinium injection was significantly inhibited by dexamethasone. We conclude that an inhibitory control by endogenous opiates is involved in some, but not all of the different pathways leading to vasopressin release. The results obtained do not prove but can be reconciled with the proposal that hypophyseal beta-endorphin is the compound responsible.

Animals↗

beta-Endorphin release by angiotensin II: studies on the mechanism of action.

Blood-borne angiotensin II induces release of beta-endorphin-like immunoreactivity (beta-EI) from rat anterior pituitary gland. To study the mechanism of action we investigated in rats the effect of transection of subfornical organ efferent projections on angiotensin-induced beta-EI release in vivo and also the direct action of angiotensin II on beta-EI release from isolated adenohypophyses in vitro. (i) No effect of transection of subfornical organ efferents on the increase in plasma beta-EI following intravenous infusions of angiotensin II was found. (ii) When anterior pituitary quarters were continuously superfused in vitro, angiotensin II (1-10 nM) caused release of beta-EI into the superfusion medium in a dose-dependent manner. The stimulatory effect of angiotensin II (3 nM) was blocked by the receptor antagonist saralasin (300 nM). We conclude that beta-endorphin release by blood-borne angiotensin II, in contrast to other central effects of angiotensin, is not mediated by the subfornical organ; instead a direct action of angiotensin II on the adenohypophysis could be a mechanism of action responsible.

Angiotensin II↗

Formation and elimination of prostacyclin metabolites in the cat in vivo as determined by radioimmunoassay of unextracted plasma.

Using newly develop radioimmunoassay for 6-keto-prostaglandin F1 alpha and 6,15-diketo-13,14-dihydro-prostaglandin F1 alpha, the plasma concentrations of these two prostacyclin derivatives were measured in anaesthetized cats. After the administration of angiotensin II, which releases prostacyclin into the circulation, concentrations of both derivatives rose simultaneously, the major immunoreactivity being 6,15-diketo-13,14-dihydro-prostaglandin F1 alpha. Angiotensin II-induced prostacyclin release was not caused by vasoconstriction alone, since comparable vasopressor responses to noradrenaline and vasopressin were not accompanied by increases in prostacyclin plasma levels. Injection of exogenous prostacyclin resulted in a shortlasting peak of 6-keto-prostaglandin F 1 alpha, which rapidly declined (t 1/2: 1.29-1.52 min). 6,15-diketo-13,14-dihydro-prostaglandin F1 alpha appeared with an t 1/2 of 0.48-1.38 min and was eliminated with a t 1/2 of 8.0-9.0 min. Due to its longer half-life in the circulation 6,15-diketo-13,14-dihydro-prostaglandin F 1 alpha again was the predominant derivative after 3 min. These data suggest that in vivo prostacyclin is mainly inactivated by the 15-hydroxy-PG-dehydrogenase-, delta 13-reductase-pathway, rather than by hydrolysis. Therefore, 6,15-diketo-13,14-dihydro-prostaglandin F1 alpha seems to be a better indicator of prostacyclin plasma levels than 6-keto-prostaglandin F1 alpha, although under certain conditions the additional determinations of this product of hydrolysis can be valuable.

6-Ketoprostaglandin F1 alpha↗

The effect of isoprenaline on plasma concentrations of immunoreactive beta-endorphin and beta-lipotropin in the conscious rat.

The effect of the beta-adrenoceptor agonist isoprenaline on the plasma concentrations of beta-endorphin (beta-E) and beta-lipotropin (beta-LPH) was investigated in conscious rats. Isoprenaline (i.m.) elevated plasma beta-endorphin-like immunoreactivity (beta-EI) as measured by radioimmunoassay of unextracted plasma, with peak values 24 min after drug administration. This effect was dose-dependent. The lowest effective dose of isoprenaline was 15 micrograms kg-1; 240 micrograms kg-1 exerted a maximum effect, raising plasma beta-EI about ten-fold above control values. Plasma vasopressin concentrations also increased in response to isoprenaline following a time-course identical to that of plasma beta-EI. (+/-)-Propranolol (1 mg kg-1) but not phentolamine (10 mg kg-1) rendered isoprenaline (240 micrograms kg-1) injections almost ineffective. Because of the cross-reactivity of beta-LPH in the radioimmunoassay used, plasma was extracted by means of a cation exchange resin and subjected to gel chromatography on a Sephadex G-50 column, avoiding artefactual degradation of the peptides. In isoprenaline-treated rats about 50% of the beta-EI behaved similar to human beta-LPH, whereas 45% co-migrated with human beta-E; immunoreactivity corresponding to beta-LPH or beta-E comprised about 70% or 30%, respectively, in the plasma extract of vehicle-treated rats. Dexamethasone pretreatment reduced the isoprenaline-induced increase in plasma beta-EI by 87%, but left the simultaneous elevation of plasma vasopressin concentrations unchanged. These data demonstrate that isoprenaline stimulates beta-LPH and beta-E release in vivo. The possibility of an interrelationship between vasopressin and beta-E release is discussed.

Animals↗

Vasopressin stimulates release of beta-lipotropin and beta-endorphin in conscious rats as measured by radioimmunoassay of unextracted plasma.

Using a newly developed radioimmunoassay to determine the beta-endorphin-like immunoreactivity (beta-EI) in unextracted plasma, the effect of vasopressin injections on plasma beta-EI was investigated in conscious rats. Arginine vasopressin caused a dose-dependent increase of plasma beta-EI from 34.5 to 7.8 fmol ml--1 (n = 6) in vehicle-treated animals to 205.0 +/- 36.1 fmol ml--1 (n = 7) after injection of the highest vasopressin dose employed (486 ng/100 g b.w.). In view of the appreciable cross-reactivity of beta-lipotropin (beta-LPH) in the radioimmunoassay used, plasma was extracted and subjected to gel chromatography on a Sephadex G-50 column. On average, about 70% of the beta-EI co-eluted with human beta-LPH and about 30% with human beta-endorphin in plasma extracts obtained from both control and vasopressin-treated rats. No peripheral conversion of human beta-LPH occurred under the experimental conditions, since after i.v. bolus injection of human beta-LPH 97% of the beta-EI comigrated with human beta-LPH during gel filtration. A similar blood pressure increase to that induced by the vasopressin injections, when elicited by noradrenaline or angiotensin II i.v., was not followed by an elevation of plasma beta-EI. These data indicate that vasopressin stimulates beta-lipotropin and beta-endorphin release into the systemic circulation in vivo.

Animals↗

Regional distribution of arachidonic acid metabolites in rat brain following convulsive stimuli.

Seizures were induced in female Wistar rats by electroconvulsive shock (ECS) or administration of pentetrazole (PTZ). Brain content of various prostanoids measured by radioimmunoassay showed time-dependent changes after the induction of convulsions; highest levels were found for PGD2 followed by PGF2 alpha, PGE2, TXB2 and 6-keto-PGF1 alpha. Analysis of the various arachidonic acid metabolites in seven parts of the rat brain dissected according to the method of Glowinski and Iversen revealed the largest increases in hippocampus and cerebral cortex and smaller ones also in hypothalamus and corpus striatum both after ECS and PTZ. The ratios of the different cyclo-oxygenase products remained virtually the same in whole brain as well as in those regions where the formation of prostaglandins was markedly elevated. 15-keto-13,14-dihydro-PGF2 alpha also increased simultaneously in parallel to its parent compound, PGF2 alpha and was detected in significant amounts only in hippocampus and cerebral cortex. However, concentrations of 15-keto-13,14-dihydro-PGF2 alpha in these brain regions as well as in whole brain represented only 3-10% of the amounts found for PGF2 alpha. Thus, the metabolizing enzymes 15-hydroxy-PG-dehydrogenase and delta 13-PG-reductase seem to be of minor importance for the inactivation of prostanoids in brain tissue.

Animals↗

Evidence that vasopressin is involved in the isoprenaline-induced beta-endorphin release.

We investigated in conscious rats, whether vasopressin, whose release was stimulated by isoprenaline (i.m.), caused the simultaneous increase in plasma beta-endorphin-like immunoreactivity (beta-EI). The increase in plasma beta-EI following isoprenaline administration was diminished by about 50% in rats pretreated with a vasopressin antagonist and also in rats with a hereditary absolute lack of vasopressin. We conclude that the isoprenaline-induced release of beta-EI is mediated in part by vasopressin.

Animals↗

The synthesis of prostaglandins and thromboxane in the mouse brain in vivo. Influence of drug induced convulsions, hypoxia and the anticonvulsants trimethadione and diazepam.

1. The i.v. administration of convulsant doses of penetrazole or picrotoxin induced an increase in PGF2 alpha, PGE2 and TXB2-like immunoreactive material in mouse brain tissue. The onset of increase coincided with the appearance of clonic seizures. 2. The anticonvulsant drugs trimethadione and diazepam reduced both convulsions and increase of the above arachidonic acid metabolites induced by pentetrazole or picrotoxin. 3. In synaptosomal preparations of the brain, neither pentetrazole (10(-3) mol 1(-1) picrotoxin (10(-4) mol 1(-1) nor trimethadione (5 x 10(-4) mol 1(-1)) had any influence on cyclooxygenase activity as indicated by the unimpaired PGF2 alpha-synthesis. 4. Under hypoxic conditions at equal durations as the seizures, the formation of PGF2 alpha and PGE2 was less than 10% of the amount occurring after penetrazole-induced convulsions. 5. It is concluded that the seizure-induced rise of PGF2 alpha, PGE2 and TXB2 is the result of increased central nervous activity.

Animals↗

Prostaglandin D2 is the prevailing prostaglandin in the acute inflammatory exudate of urate arthritis in the chicken.

An acute inflammation was elicited in intertarsal joints of chicken by injection of urate crystals. Inflammatory exudates recovered at different times were assayed for prostaglandin D2(PGD2)E2 and F2 alpha and thromboxane B2 content by specific radioimmunoassays. We found that PGD2 was the prevailing prostaglandin reaching concentrations up to 10 times in excess of PGE2. This finding was confirmed by gas chromatography-mass spectrometry. It is concluded that PGD2 should be considered as a possible mediator of acute inflammation.

Animals↗

Radioimmunological determination of prostaglandin D2 synthesis in human thrombocytes.

A specific radioimmunoassay for prostaglandin D2 was developed. Using the radioimmunoassay, prostaglandin D2 synthesis by human thrombocytes was measured. While the cyclooxygenase inhibitor indomethacin inhibits formation of prostaglandin D2, increased formation of prostaglandin D2 was observed in the presence of the thromboxane synthetase inhibitor imidazole.

Blood Platelets↗