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Biomedical subjects

V Baudrie

Publications and source records attributed to V Baudrie.

29 records · Page 2Linked to original sources

Influence of catecholaminergic and serotonergic receptor antagonists on the hyperglycaemic response to the neuroglucopaenic agent, 2-deoxy-D-glucose.

The intravenous administration of 2-deoxy-D-glucose (2-DG) to conscious catheterised rats dose-dependently increased the levels of glucose in plasma throughout the analysis (60 min); the levels of insulin in plasma remained unchanged, except for an early significant decrease in rats treated with the largest dose (1 g/kg). Pretreatment (10 min beforehand) with the beta 2-adrenoceptor antagonist, ICI 118,551 (3 mg/kg) or the alpha 2-adrenoceptor antagonist, idazoxan (1 mg/kg) decreased the rise in levels of glucose in plasma elicited by 2-DG (250 mg/kg). Conversely, the alpha 1-adrenoceptor antagonist, prazosin (1 mg/kg) or the dopaminergic receptor blocker, haloperidol (0.5 mg/kg) amplified the hyperglycaemic response to 2-DG. Previous administration of either the 5-HT1A/5-HT2 receptor antagonist, spiperone (3 mg/kg), the 5-HT1/5-HT2 receptor antagonist, methysergide (1 mg/kg), the 5-HT1C/5-HT2 receptor antagonist, ritanserin (1 mg/kg) or the 5-HT3 receptor antagonist, ICS 205.930 (0.1 mg/kg) did not affect 2-DG-induced hyperglycaemia. On the other hand, the mixed 5-HT1A/5-HT1B/beta-adrenoceptor antagonist, (-)-propranolol (5 mg/kg) and the 5-HT1/5-HT2 receptor antagonist, methiotepin (1 mg/kg), respectively, diminished and amplified the hyperglycaemia elicited by 2-DG. Lastly, in rats pretreated with prazosin (1 mg/kg, 30 min beforehand), an additional pretreatment (10 min beforehand) with prazosin or methiotepin (both at 1 mg/kg) did not further amplify the hyperglycaemic response to 2-DG. These results indicate that 2-DG-induced hyperglycaemia is mediated by alpha 2- and beta 2-adrenoceptors and amplified by alpha 1-adrenoceptor blockade. Conversely, neither 5-HT1, 5-HT2 nor 5-HT3 receptors played a role in the hyperglycaemic response to 2-DG.

Animals↗

Effects of the 5-HT1C/5-5-HT2 receptor agonists DOI and alpha-methyl-5-HT on plasma glucose and insulin levels in the rat.

Administration of the 5-HT1C/5-HT2 receptor agonist 1-(2,5-dimethoxy-4- iodophenyl)-2-aminopropane (DOI, 0.125-2.0 mg/kg i.v.) triggered dose-dependent increases in plasma glucose; plasma insulin levels remained unchanged. Pretreatment with the 5-HT1C/5-HT2 receptor antagonists LY 53857, ritanserin, or the mixed 5-HT2/alpha 1-adrenoceptor antagonist ketanserin either diminished or prevented the hyperglycemic effect of DOI (0.5 mg/kg). Administration of the mixed 5-HT1C receptor agonists/5-HT2 receptor antagonists 1-(3-chlorophenyl)-piperazine (mCPP) or 1-(3-trifluoromethyl)phenyl)piperazine level (TFMPP) did not affect plasma glucose levels. However, pretreatment with mCPP or TFMPP decreased DOI-induced hyperglycemia in a dose-dependent manner. The alpha 2-adrenoceptor antagonist idazoxan and the ganglionic blocker hexamethonium both decreased DOI-induced hyperglycemia, Whilst the alpha 1-adrenoceptor antagonist prazosin amplified the rise in plasma glucose elicited by DOI. The peripherally acting 5-HT1C/5-HT2 receptor agonist alpha-methyl-5-HT (0.5-1.0 mg/kg i.v.) triggered a rise in plasma glucose levels that was associated with an increase in plasma insulin levels. Pretreatment with LY 53857 diminished alpha-methyl-5-HT-induced hyperglycemia. These data indicate that 5-HT2 receptors, but not 5-HT1C receptors, and catecholaminergic systems, mediate DOI-induced hyperglycemia. Moreover, it is suggested that the inhibition of insulin release by DOI is centrally mediated, and that activation of peripheral 5-HT2 receptors may affect glycemia.

Amphetamines↗

Ganglionic transmission is a prerequisite for the adrenaline-releasing and hyperglycemic effects of 8-OH-DPAT.

The present study concerned the influence of ganglionic nicotinic blockade (by hexamethonium, 5 mg/kg and 10 mg/kg) of the 8-OH-DPAT-induced elevations in plasma adrenaline, corticosterone and glucose levels in conscious rats. Prior treatment with hexamethonium dose dependently decreased the basal glucose levels and increased the basal corticosterone levels but did not significantly affect the basal adrenaline levels. Hexamethonium decreased in a dose-dependent manner the elevations in plasma adrenaline, corticosterone and glucose levels that were elicited by the 5-HT1A receptor agonist, 8-OH-DPAT (0.25 mg/kg). These results indicate that acetylcholine release is a prerequisite for both the adrenaline-releasing and hyperglycemic effects of 8-OH-DPAT. The data also point to the possibility that adrenaline release participates in the elevation in plasma corticosterone levels that is elicited by 5-HT1A receptor activation.

8-Hydroxy-2-(di-n-propylamino)tetralin↗

In vivo evidence that insulin does not inhibit hepatic tryptophan pyrrolase activity in rats.

Previous reports have indicated that insulin administration triggers an early increase in plasma tryptophan (TRP) levels in fasted rats. Then, the present study was undertaken to investigate the putative role of liver tryptophan pyrrolase (TPO) in this short-term effect of insulin. In 24 hr fasted rats, doses of insulin that triggered an increase in plasma TRP levels (i.e., 2-3 I.U./kg, 1 hr) did not alter either holoenzyme or total enzyme activity. In another series of experiments, the administration of insulin (2 I.U./kg) to 24 hr fasted rats promoted biphasic time effects on plasma TRP levels and liver TPO activity. Thus, insulin initially triggered a rise in plasma TRP (without any change in liver TPO activity) and then increased liver TPO activity whilst plasma TRP returned toward control levels. In addition, hypercorticosteronemia was evidenced throughout the first phasis. Lastly, the influence of insulin administration (2 I.U./kg) on fasting-induced TPO induction was analysed. Whereas fasting increased liver TPO activity in a time-dependent manner, insulin administration (2 I.U./kg, 30 min) did not modify either plasma TRP or liver TPO activity. The data reported herein bring evidence that the effect of insulin administration on circulating TRP is not mediated by an inhibition of hepatic TPO.

Animals↗

Pentobarbital anaesthesia prevents the adrenaline-releasing effect of the 5-HT1A receptor agonist, 8-hydroxy-2-(di-n-propylamino) tetralin.

Administration of the 5-HT1A receptor agonist, 8-hydroxy-2-(di-n-propylamino)tetralin (8-OH-DPAT; 0.25 mg/kg i.v.), to conscious rats increased plasma adrenaline and glucose levels for 30 and 60 min, respectively. Both 8-OH-DPAT-induced changes in plasma adrenaline and glucose levels were totally abolished in pentobarbital-anaesthetized rats. The present data indicate that pentobarbital anaesthesia, a procedure that is commonly used in pharmacological studies, prevents the release of adrenaline evoked by 5-HT1A receptor activation.

8-Hydroxy-2-(di-n-propylamino)tetralin↗

Evidence that the 5-HT1A receptor agonists buspirone and ipsapirone activate adrenaline release in the conscious rat.

The aim of this study was to investigate the effects of the 5-HT1A receptor agonists buspirone and ipsapirone (1-10 mg/kg) on plasma adrenaline (A) levels and on glycemia in the conscious rat. The results indicate that buspirone was able, within 5 min, to increase plasma A and glucose levels in a dose-dependent manner. Ipsapirone administration triggered similar patterns, except that the highest dose used (10 mg/kg) promoted a time-dependent increase in plasma A and glucose levels that was maximal at the end of analysis.

Animals↗

Effects of the 5-HT1 receptor agonists DP-5-CT, CGS 12066B, and RU 24969 on plasma adrenaline and glucose levels in the rat.

Recent results have indicated that the 5-HT1A receptor subtype mediates the adrenaline-releasing and hyperglycemic effects of 8-hydroxy-2-(di-n-propylamino)tetralin in the rat. The aim of this study was to analyse, by means of the peripherally acting 5-HT1A receptor agonist, N,N-dipropyl-5-carboxamidotryptamine (DP-5-CT), whether these 5-HT1A receptors are peripherally or centrally localised. In view of the appreciable affinity of DP-5-CT for the 5-HT1D receptor subtype, the effects of the mixed 5-HT1B/5-HT1D receptor agonist 7-trifluoromethyl-4-(4-methyl-1-piperazinyl)-pyrrolo(1,2-a)quinoxaline (CGS 12066B), and the mixed 5-HT1A/5-HT1B/5-HT1D receptor agonist 5-methoxy-3(1,2,3,6-tetrahydropyridine-4-yl)1H-indole (RU 24969) were also investigated. Administration of DP-5-CT (0.3 and 1 mg/kg i.v.) increased plasma glucose levels dose-dependently, whereas only the 1 mg/kg dose of DP-5-CT elicited a rise in plasma adrenaline levels. In contrast, CGS 12066B (1.5 and 4.5 mg/kg i.v.) did not affect either plasma adrenaline or plasma glucose levels. Administration of RU 24969 (0.5-4.5 mg/kg i.v.) increased dose-dependently both plasma adrenaline and glucose levels. The data suggest that central 5-HT1A receptors, but neither 5-HT1B nor 5-HT1D receptors, regulate plasma adrenaline and glucose levels.

Animals↗

Evidence that 5-HT1A receptors are involved in the adrenaline-releasing effects of 8-OH-DPAT in the conscious rat.

8-Hydroxy-2-(di-n-propylamino)tetralin (8-OH-DPAT) is a 5-HT1A receptor-selective agonist that has recently been reported to trigger adrenal catecholamine release and hyperglycemia. The aim of this study was to analyze in the conscious rat whether the 5-HT1A receptor subtype is involved in these effects. 8-OH-DPAT (0.1-1 mg/kg, i.v.) evoked dose-dependent increases in plasma adrenaline and glucose concentrations. Increases in plasma adrenaline levels peaked 5 min after administration of 8-OH-DPAT; in contrast, plasma glucose levels rose throughout the 20 min period of analysis. Prior administration of (-)pindolol, a beta-adrenoceptor antagonist that blocks 5-HT1A receptors, markedly diminished the rise in plasma adrenaline levels and abolished the hyperglycemia triggered by 8-OH-DPAT. On the other hand, neither the selective beta 1-adrenoceptor antagonist, betaxolol, the selective beta 2-adrenoceptor antagonist, ICI 118.551, nor the 5-HT2 receptor antagonist, ketanserin, affected 8-OH-DPAT-induced increases in plasma adrenaline levels. In addition, except for ICI 118.551 pretreatment, which delayed the hyperglycemic effect of 8-OH-DPAT, none of these antagonists affected the rise in glycaemia evoked by 8-OH-DPAT. The data suggest that the adrenaline-releasing and a major part of the hyperglycemic effects of 8-OH-DPAT are mediated by activation of 5-HT1A receptors.

8-Hydroxy-2-(di-n-propylamino)tetralin↗

Determination of cerebrospinal fluid production rate using a push-pull perfusion procedure in the conscious rat.

The inulin dilution technique was used to determine the cerebrospinal fluid (CSF) production rate by means of a push-pull cannula implanted into a lateral ventricle. Artificial CSF containing trace amount of 3H-inulin was perfused for 2 h in conscious rats. 3H-inulin in the effluent reached a plateau level depending on the CSF production rate. The control lateroventricular CSF production was 0.98 microliters/min. Production was reduced to 0.34 microliters/min during a perfusion with acetazolamide (1 mM), a carbonic anhydrase inhibitor.

Acetazolamide↗

Duration of streptozotocin diabetes influences the response of hypothalamic serotonin metabolism to immobilization stress.

Neurochemical and metabolic effects of acute (immobilization for 2 h) and chronic (immobilization for 2 h/day for 4 consecutive days) stress were investigated in diabetic female rats either pretreated 1 week or 5 weeks earlier with streptozotocin (STZ). Hypothalamic serotonin (5-hydroxytryptamine, 5-HT) metabolism was estimated by measuring the respective levels of 5-HT precursor, the amino acid tryptophan (TRP), 5-HT and the 5-HT metabolite, namely 5-hydroxyindoleacetic acid (5-HIAA). To assess the respective metabolic effects of stress and diabetes, plasma total TRP, insulin, glucose and corticosterone levels were measured. Short- and long-term STZ treatment triggered marked decreases in plasma total TRP and hypothalamus TRP levels but the diabetogenic agent diminished 5-HT metabolism in the 1-week ST-treated rats only. Acute stress promoted a marked decrease in plasma total TRP in the vehicle-treated rats and in the 1-week-diabetic rats, which was associated with significant increases in hypothalamic TRP and 5-HIAA levels. In the 5-week-diabetic rats, a single restraint affected neither peripheral and central TRP levels nor hypothalamus 5-HT metabolism. Acute stress triggered hypercorticosteronemia in all groups of rats but it promoted hyperglycemia and hypoinsulinemia in the vehicle-injected rats only. Twenty-four hours after the fourth immobilization, plasma total TRP was reduced in the vehicle-injected rats only with no effect on hypothalamic levels of TRP. On the other hand, chronic restraint was found to reduce exclusively hypothalamus 5-HT and 5-HIAA levels in the 5-week-diabetic rats.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of chlorisondamine and restraint on cortical [3H]ketanserin binding, 5-HT2A receptor-mediated head shakes, and behaviours in models of anxiety.

A recent study has indicated that ganglionic transmission mediates acute restraint-elicited increases in brain tryptophan (5-HT precursor) levels, 5-HT synthesis and (possibly) release. Because restraint-induced release of 5-HT has been shown to be associated with a paradoxical increase in cortical 5-HT2A receptor binding, we have examined the influence of 5-HT synthesis/release upon cortical 5-HT2A receptor binding and 5-HT2A receptor-mediated head shakes in 3-hr restrained rats pretreated with the ganglionic blocker chlorisondamine. In keeping with past reports regarding the effects of restraint and ganglionic blockade upon anxiety, we have also measured the behavioural effects of restraint and/or chlorisondamine in two animal models of anxiety, the elevated plus-maze and the social interaction test. Chlorisondamine pretreatment (2.5 mg/kg, 20 min beforehand) prevented restraint-elicited defaecation and body weight decreases. Although stress amplified the head shake response to the injection of the 5-HT2A/5-HT2C receptor agonist 1-(4-iodo-2,5-dimethoxyphenyl)-2-aminopropane (DOI, 1 or 2 mg/kg 2 hr after the end of restraint), cortical [3H]ketanserin binding remained unaltered. Chlorisondamine treatment was inactive, except for the amplification of the head shake response to DOI (2 mg/kg) in restrained rats. When exposed to the social interaction test, neither restraint nor chlorisondamine affected social interaction, locomotion, or rearings. In the elevated plus-maze, the percent number of open arms entered and the total number of arms entered were decreased by acute restraint, whilst chlorisondamine pretreatment was inactive.

Animals↗