Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Devazepide”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 703 records · Page 39Linked to original sources

Cholecystokinin octapeptide inhibits carbohydrate but not protein intake.

Male rats ingested about half as much of an intraorally infused (1 ml/min) carbohydrate solution compared with a protein solution. Blood levels of cholecystokinin octapeptide (CCK-8) had increased to 13.6 +/- 1.4 and 16.7 +/- 1.7 pmol/l when the rats stopped ingesting carbohydrate or protein and continued to increase to 35.6 +/- 3.2 pmol/l 30 min after the carbohydrate meal and 34.4 +/- 3.5 pmol/l 60 min after the protein meal. Intraperitoneal injection of CCK-8 (0.6-5.0 micrograms) inhibited and injection of the CCKA-receptor antagonist L-364, 718 (20-80 micrograms) facilitated carbohydrate intake, but neither CCK-8 nor L-364,718 affected protein intake. The results suggest that CCK-8 is not involved in regulating the duration of a protein meal but may be involved in regulating carbohydrate intake. The postprandial period of suppression of protein intake correlated with the disappearance of some amino acids, e.g., Arg, Tyr, and Trp, in the blood, and this may be of importance for protein ingestion, since these amino acids are neurotransmitter precursors.

Amino Acids↗

Pathways of Fos expression in locus ceruleus, dorsal vagal complex, and PVN in response to intestinal lipid.

Exogenous cholecystokinin (CCK) injected peripherally mimics effects of lipid entering the intestine on food intake and gastric motility via vagal afferents and induces c-fos expression in the locus ceruleus complex (LCC), nucleus of the solitary tract (NTS), area postrema (AP), and paraventricular nucleus (PVN). However, the role of peripheral endogenous CCK in induction of c-fos expression in the brain at ingestion of nutrients is controversial. In awake rats, intraduodenal lipid infusion markedly increased Fos protein-like immunoreactivity (FLI) in these brain nuclei. Perivagal capsaicin pretreatment reduced the increase of FLI in the LCC, NTS, and PVN by 66-86% and in the AP by 46%. The CCK-A receptor antagonist MK-329 (0.1 mg/kg i.p.) diminished the FLI increase in LC, NTS, AP, and PVN by 39-100%; the CCK-B receptor antagonist L-365,260 reduced the increased FLI in the AP by 54%. After capsaicin pretreatment, both CCK antagonists had additional inhibitory effects only on FLI in the AP. These findings suggest that entry of lipid into the intestine activates c-fos in the LCC, NTS, and PVN predominantly via CCK-A receptors on vagal afferents and in the AP via vagal and nonvagal pathways, as well as CCK-B and CCK-A receptors.

Animals↗

Role of small intestine in caloric compensations to oil premeals in rats.

We postulated that dose-responsive satiety after oil premeals varies with the number of gut sensors stimulated by lipolytic products along intestine. These experiments in fasted rats on satiety after oil premeals were performed to 1) determine whether satiety was induced by lipolytic products but not triglycerides; 2) confirm that oil empties from the stomach at rates that vary with oil loads; 3) ascertain that increasing rates of oil entry into duodenum extend the length of gut contacted by lipolytic products; and 4) judge whether length of gut contacted correlated with dose-responsive satieties to dietary oils. 5) Using specific antagonists, we attempted to define how satiety was signalled by gut sensors. Timing and degrees of satiety did not correlate with timing and extent of gastric distensions but, rather, with the timing and extent of spread of lipolytic products along small bowel. Satiety after the highest premeal load of oil was blocked by Pluronic L-81, an inhibitor of intestinal secretion of apolipoprotein A-IV, but was unaffected by MK-329 (a specific antagonist of cholecystokinin) or by capsaicin blockade of chemosensory nerves.

Analysis of Variance↗

Vagal CCK and 5-HT(3) receptors are unlikely to mediate LPS or IL-1beta-induced fever.

Previous studies suggested that peripheral immune mediators may involve intermediates acting on the vagus nerve, such as CCK or serotonin (5-HT). We have therefore investigated a possible role for vagal CCK-A and 5-HT(3) receptors in the febrile response after intraperitoneal human recombinant interleukin-1beta (IL-1beta) or lipopolysaccharide (LPS). Unanesthetized, adult male rats instrumented with abdominal thermistors were given intraperitoneal CCK-8 sulfate (100 or 150 microgram/kg) or 2-methyl-5-hydroxytryptamine maleate (4 mg/kg). In other experiments, rats were treated with either antagonists to the 5-HT(3) receptor (ondansetron HCl; 100 microgram/kg) or the CCK-A receptor (L-364,718, 100 or 200 microgram/kg) in combination with LPS or IL-1beta. CCK administration caused a short-lived hypothermia, but interference with the action of endogenous CCK at CCK-A receptors was without effect on IL-1beta- or LPS-induced fever. Neither activation of 5-HT(3) receptors nor blockade of 5-HT(3) receptors affected body temperature or LPS fever. Taken together, our data support the idea that vagal afferents responsive to pyrogenic cytokines may be different from those responsive to CCK or 5-HT.

Animals↗

L-364,718, a cholecystokinin-A receptor antagonist, suppresses feeding-induced sleep in rats.

Feeding induces increased sleep in several species, including rats. The aim of the study was to determine if CCK plays a role in sleep responses to feeding. We induced excess eating in rats by 4 days of starvation and studied the sleep responses to refeeding in control and CCK-A receptor antagonist-treated animals. Sleep was recorded on 2 baseline days when food was provided ad libitum. After the starvation period, sleep was recorded on 2 refeeding days when the control rats (n = 8) were injected with vehicle and the experimental animals (n = 8) received intraperitoneal injections of L-364,718 (500 microg/kg, on both refeeding days). In the control group, refeeding caused increases in rapid eye movement sleep (REMS) and non-REMS (NREMS) and decreases in NREMS intensity as indicated by the slow-wave activity (SWA) of the electroencephalogram. CCK-A receptor antagonist treatment completely prevented the SWA responses and delayed the NREMS responses to refeeding; REMS responses were not simply abolished, but the amount of REMS was below baseline after the antagonist treatment. These results suggest that endogenous CCK, acting on CCK-A receptors, may play a key role in eliciting postprandial sleep.

Animals↗

Postprandial neuronal activation in the nucleus of the solitary tract is partly mediated by CCK-A receptors.

CCK-A receptors and neurons of the nucleus of the solitary tract (NTS) are involved in the regulation of food intake, and in rats, there is evidence for involvement of an intestinal vagal afferent pathway. Studies investigating the role of CCK-A receptors in activation of NTS neurons using highly selective CCK-A receptor agonists and antagonists have yielded conflicting data. In the present study, we investigated CCK-induced and postprandial activation of NTS neurons, together with food intake studies, in CCK-A receptor-deficient Otsuka Long-Evans Tokushima fatty (OLETF) rats. Activated NTS neurons were detected using immunohistological staining for c-Fos protein. Exogenous CCK increased the number of c-Fos protein-positive cells in the NTS of Sprague-Dawley and CCK-A receptor-intact Long-Evans Tokushima Otsuka (LETO) rats but had no effect in CCK-A receptor-deficient OLETF rats. Food intake-induced c-Fos protein expression in NTS neurons was significantly reduced in CCK-A receptor-deficient OLETF rats compared with Sprague-Dawley or LETO rats. Postprandial c-Fos protein expression in the NTS was also significantly decreased after pretreatment with the CCK-A receptor antagonist MK329 after both short- and long-term fasting periods. Exogenous CCK decreased cumulative food intake in Sprague-Dawley and LETO rats but not in OLETF rats. These data demonstrate that CCK-A receptors are involved in the CCK- and food-induced c-Fos protein expression in the NTS. Taken together with the results of the food intake studies, this suggests that activation of CCK-A receptors is involved in the postprandial activation of NTS neurons and in the regulation of food intake.

Animals↗

Involvement of CCK in the paraventricular nucleus of the hypothalamus in the CNS regulation of colonic motility.

The effects of cholecystokinin octapeptide (CCK(8)), the CCK-A receptor antagonist, MK-329, and the CCK-B receptor antagonist, L-365, 260, microinfused into the paraventricular nucleus of hypothalamus (PVN) on colonic motor function was investigated in awake rats, chronically implanted with a microinjection cannula into the PVN and a catheter into the proximal colon. In fasted rats, bilateral microinfusion of CCK(8) at doses of 1.5 and 3.0 microg/rat into the PVN stimulated colonic transit, as shown by a significant increase in the geometric center by 47 and 54%, respectively. This effect of CCK(8) was site-specific to the PVN, since microinjection of the peptide into sites outside of but adjacent to PVN had no effect. In non-fasted rats, L-365,260 bilaterally microinjected into the PVN at a dose of 1.5 microg/rat inhibited propulsive colonic motor function; colonic transit time significantly increased by 73% in comparison to the control condition. Microinfusion of the CCK-A antagonist into in the PVN did not affect colonic transit. These results show that the PVN is a responsive site for the central CCK(8)-induced modulation of colonic motility. The data suggest, that endogenous CCK in the paraventricular nucleus of the hypothalamus unfolds a stimulatory effect on colonic transit through action on CCK-B receptors.

Animals↗

Biological effects of newly synthesized cholecystokinin analogs.

Cholecystokinin (CCK) is a gut hormone that regulates pancreatic endocrine functions via CCK(A) receptors. CCK(4) (Trp-Met-Asp-Phe-NH(2)) has an insulinotropic effect, but is 1,000-fold less potent than CCK(8) in rodents. The in vitro potencies with respect to binding, the biological effects and the selectivity of newly synthesized CCK(4) analogs constructed by computer modelling experiments were investigated in vitro in rat pancreas and brain, INS-1 cells, and guinea pig ileum. Exchanging various amino acids, e.g. Met by either Pro or Nle, and modifying Phe by adding various substituents in different positions led to compounds which were more effective as insulin secretagogues than CCK(4) itself and even show insulinotropic effects comparable with those of CCK(8) (e. g. compounds M1 and M2 being substituted at Phe). Some compounds which possess electron withdrawing groups on the C-terminal Phe and possess a Pro instead of a Met were especially effective. The CCK(A) receptor antagonist L-364,718, but not by the CCK(B) receptor antagonist L-365,260, inhibited the insulinotropic effects. The synthetic CCK(4) compounds were not selective for the endocrine pancreas: e.g. M1 and M2 had binding activity with respect to rat brain homogenates but no activity with respect to contraction of the guinea pig ileum. The data indicate that some of the newly synthesized CCK tetrapeptides exhibit a high affinity for the CCK receptor of beta-cells and have an insulinotropic effect much higher than CCK(4).

Animals↗

Role of cholecystokinin in the development and progression of acute pancreatitis and the potential of therapeutic application of cholecystokinin receptor antagonists.

This presentation reviews the role of cholecystokinin (CCK) as a contributory factor for the development and progression of acute pancreatitis (AP) and the perspective of CCK receptor antagonists for treatment of AP. High, supraphysiological concentrations of CCK induce AP in various species including man. There is also evidence that physiological increases in plasma CCK deteriorates AP in several animal models. The latter findings support the hypothesis that CCK plays a contributory or permissive role for the development of AP. The majorities of experimental studies show that the prophylactic and therapeutic use of CCK antagonists ameliorates AP. The latter effects were clearly shown for models of biliary AP in which plasma CCK is increased due to a feedback mechanism. However, CCK antagonists also had beneficial effects in models in which plasma CCK is not increased. In animal strains which do not have a CCK-A-receptor due to a genetic abnormality AP induced by a certain noxious factor does not develop to the same severity when compared to animals with a normal CCK-A-receptor. Thus, CCK acts as a permissive or contributory factor for the development and progression of AP. There is also evidence that CCK antagonists have a potential therapeutic benefit. Clinical studies will evaluate their therapeutic potential for patients with AP.

Acute Disease↗

Mechanism of cholecystokinin-A- receptor antagonist on human pancreatic exocrine secretion. Localization of CCK-A receptor in the human duodenum.

Expressions of the cholecystokinin (CCK)-A and -B receptor genes in human duodenum, pancreas and gallbladder were examined by Northern blot analysis and reverse transcriptase polymerase chain reaction (RT-PCR) followed by Southern blot hybridization. The autoradiographic study of CCK-A and -B receptors in the human duodenum and pancreas was examined in vitro. To determine the subtypes to CCK receptors in the pancreas or duodenum, we studied the abilities of CCK-A and -B receptor agonists (CCK-8 and gastrin) and antagonists (loxiglumide, L-364,718 and L-365,260) to inhibit binding of 125I-CCK-8. CCK-A receptor mRNA was not expressed in the human pancreas, but was expressed in the gallbladder and duodenum, although it was expressed in the pancreas by RT-PCR. CCK-B receptor mRNA was expressed in the pancreas, but not in gallbladder and duodenum. Using autoradiography, high concentrations of CCK-A receptors were detected in the duodenal mucosa, although in the pancreas only CCK-B receptors were detected by this method. These results suggest that localization of CCK-A receptor in human duodenum provides a biochemical and morphological basis for some physiological functions of CCK.

Autoradiography↗

Role of bombesin and cholecystokinin receptors in gastric injury induced by hemorrhagic shock in the rat.

Bombesin has been shown to have trophic effects on the gastrointestinal tissue. Bombesin has direct mitogenic effects besides stimulating release of gastric hormones. The aim of this study was to investigate the effect of bombesin in hemorrhagic shock-induced stress ulcers in rats, and the role of cholecystokinin (CCK) receptors in this activity. Hemorrhagic shock was created by withdrawing 3 ml blood/200 g b.w. of rats. At the end of the 1-hour hypovolemic shock period, histological analysis, gastric ulcer index, gastric myeloperoxidase activity and gastric protein oxidation levels were determined. When given before the hemorrhage, subcutaneous bombesin (10 microg/kg) reduced macroscopically gastric ulcer index (p < 0.05). Blockade of CCK-A receptors with intraperitoneal MK-329 (1 mg/kg) did not reverse bombesin-induced gastroprotection. Blockade of CCK-B receptors with intraperitoneal L-365,260 (25 mg/kg) reversed bombesin-induced gastroprotection. Blockade of the two receptors resulted in no gastroprotection at all. It is concluded that bombesin treatment attenuated hemorrhagic shock-induced stress ulcers in rats via CCK receptors.

Animals↗

Effects of the specific cholecystokinin antagonist L 364,718 in experimental acute pancreatitis in the rat.

Cholecystokinin (CCK) has been suggested to be involved in the pathogenesis of acute pancreatitis. To test this hypothesis, we administered the highly selective and specific CCK receptor antagonist L 364,718 to rats in which acute experimental pancreatitis had been induced by the use of transduodenal pancreatic duct injection of taurocholate. It was, however, found that despite the use of L 364,718 at a high dose level (1 mg/kg body weight given three times), and also given prior to induction of pancreatitis, the mortality rate, the serum or ascites amylase activity, the pancreatic concentrations of lysosomal enzymes or the morphology of the pancreas were not affected. This suggests that the CCK receptors are not involved in the pathogenesis of acute pancreatitis in this experimental model, and, consequently, that CCK receptor antagonists have no place in the therapy of this condition.

Acute Disease↗

Influence of the selective cholecystokinin antagonist L-364,718 on pain threshold and morphine analgesia.

The intracerebroventricular injection of the cholecystokinin-A receptor antagonist L-364,718, at the doses of 0.5, 5, 10 or 20 micrograms/mouse, while having no effect on pain threshold (hot plate, 51 degrees C), antagonized the analgesic activity of morphine (10 mg/kg i.p.). This effect was obtained with a dose of 10 micrograms/mouse and was associated with a reduction of brainstem opiate-binding sites.

Analgesia↗

Characterization of CCKA receptor mediated pepsinogen secretion in porcine chief cells.

Cholecystokinin octapeptide (CCK-8s) is an endogenous stimulus of gastric pepsinogen secretion. Previous studies with isolated guinea pig chief cells indicated that this process is mediated through the CCKA receptor subtype, with an additional contribution from CCKB receptors. For comparison, we examined the mechanism of CCK-8s stimulated pepsinogen secretion in a larger nonrodent species, using highly enriched porcine chief cells as a functional in vitro model. Porcine chief cells responded weakly to stimulation by CCK-8s alone, but the efficacy was markedly enhanced in the presence of 10 mumol l-1 forskolin. Under these conditions, pepsinogen secretion was potently stimulated by CCK-8s and the CCKA receptor selective heptapeptide, A-71,378 (EC50 = 4.7 and 33 nmol l-1), but not by CCKB receptor selective agonists. The prototype CCKA receptor selective antagonist L-364,718 blocked pepsinogen secretion with approximately 2,000-fold higher affinity than the CCKB receptor selective analogue, L-365,260. This functional profile was consistent with the affinity rank order of all tested compounds at CCKA-receptor-like [125I]-BH-CCK-8s binding sites in the porcine gastric mucosa. Comparison with cloned CCKA receptors from other species revealed that the receptors mediating pepsinogen secretion in the pig have similar pharmacology, possibly with slight differences in agonist potencies. In contrast to the guinea pig, porcine CCKB receptors appear to have no direct role in pepsinogen secretion.

Animals↗

Influence of CCK antagonist L-364,718, pancreastatin (33-49) and a somatostatin analogue on camostate-induced rat pancreatic hypertrophy.

Since endogenous cholecystokinin (CCK) is released after oral administration of camostate, it has been suggested that camostate-induced pancreatic growth is mediated via circulating CCK. To test this concept, we investigated the effects of three potentially inhibitory substances on rat pancreatic hypertrophy caused by feeding of camostate over 2 weeks: (1) L-364,718, the novel specific highly potent nonpeptide CCK receptor antagonist, (2) octreotide (SMS 201-995), a potent long-lasting somatostatin analogue and (3) pancreastatin (33-49), the biologically active C-terminal fragment of the novel gastrointestinal peptide pancreastatin. Camostate feeding (200 mg/kg) once daily for 14 days induced a significant increase in pancreatic weight, total protein, trypsinogen and polyamine levels, whereas total amylase content was substantially diminished. Simultaneous oral or subcutaneous treatment with L-364,718 (0.3 mg/kg twice daily) completely suppressed all trophic effects of camostate. Octreotide (25 micrograms/kg twice daily s.c.) and pancreastatin (33-49) (10 micrograms/kg twice daily s.c.) did not change any trophic parameter. In case of octreotide it could be shown that two daily injections only partially suppressed elevated CCK levels. Pancreatic DNA and putrescine levels were slightly reduced in rats receiving the CCK antagonist alone. These results demonstrate that camostate-induced pancreatic hypertrophy in rats is caused by the release of endogenous CCK which may contribute to the maintenance of normal pancreatic DNA and putrescine concentrations.

Animals↗

Role of cholecystokinin, gastrin and gastrin-releasing peptide in the regulation of pancreatic secretion in cats.

This study performed on 6 conscious cats with chronic pancreatic fistulas was designed to determine the role of cholecystokinin (CCK), gastrin and gastrin-releasing peptide (GRP) in stimulation of pancreatic secretion in this species. Pancreatic response to GRP infused intravenously in graded doses appears to be mediated predominantly by CCK because a CCK receptor antagonist, L-364,718, abolished this response. Also, gastrin appears to mediate in part the secretory response to GRP because blockade of gastrin receptors by L-365,260, given at the dose that completely abolished the pancreatic response to exogenous gastrin, caused a significant reduction in the bombesin-induced pancreatic secretion. CCK and partly gastrin appear to mediate the postprandial pancreatic secretion in cats as the administration of L-364,718 and L-365,260 inhibited this secretion by over 90 and 30%, respectively. In contrast, GRP does not seem to contribute to food-induced pancreatic secretory stimulation, because the blockade of GRP receptors using novel bombesin/GRP antagonist (RC-3100) failed to affect this secretion. We conclude that CCK and partly gastrin, but not GRP, play an essential role in the postprandial pancreatic secretion.

Amylases↗

Gastrin-releasing peptide and cholecystokinin in the regulation of exocrine pancreatic secretion in dogs.

Exocrine pancreatic secretion in conscious dogs is significantly stimulated by the intravenous application of small doses of gastrin-releasing peptide (GRP; 30 pmol x kg-1 x h-1). There is no increase of the GRP concentrations in peripheral blood which is also the case under physiological postprandial conditions. There is also no increase in the peripheral cholecystokinin (CCK) concentrations, in contrast to previous reports. Nevertheless other CCK-related mechanisms may play an important role, since the administration of the highly specific CCK receptor antagonist MK-329 causes a marked reduction of the GRP-induced exocrine pancreatic secretion.

Animals↗

Stimulation of both CCK-A and CCK-B receptors activates MAP kinases in AR42J and receptor-transfected CHO cells.

It was recently found that cholecystokinin (CCK) activates mitogen-activated protein kinases (MAPK) in isolated rat pancreatic acini. The present study evaluates whether one or both types of CCK receptors are capable of MAPK activation in pancreatic AR42J acinar cells as well as CHO cells transfected with CCK-A or CCK-B receptors. CCK significantly increased p44 MAPK and p42 MAPK activities in AR42J cells. Minimal, half-maximal, and maximal responses were observed at 30 and 500 pM and 10 nM, respectively, after CCK-8 stimulation and at 100 pM and 1.5 and 30 nM, respectively, after gastrin stimulation. Glycine-extended gastrin had no effect at 100 nM and a small but significant effect at 1 microM. The CCK-B receptor antagonist L365,260 almost totally blocked MAPK activation in AR42J cells after stimulation with gastrin and glycine-extended gastrin and substantially reduced the activation of both kinases by CCK-8, while the CCK-A receptor antagonist L364,718 was much less effective. The CCK-A-selective agonist A71376, however, was an effective stimulant of MAPK activity. In an alternative approach, stably transfected CHO cells bearing either CCK-A or CCK-B receptors were stimulated with CCK-8. Each receptor induced a time-dependent increase in activity of both MAPKs by five- to sixfold in CCK-A- and CCK-B-bearing cells. In conclusion, both CCK-A and CCK-B receptors activate MAPK in AR42J cells and in transfected CHO cells.

Animals↗