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Inhibition of gallbladder emptying decreases cholesterol saturation in bile in the Richardson ground squirrel.

Impaired gallbladder emptying is frequent in cholesterol gallstone disease as well as in predisposing conditions like pregnancy and obesity. Gallbladder hypomotility is considered a pathogenic factor for gallstone formation, providing the residence time for cholesterol crystal nucleation, but any effect on the enterohepatic circulation of bile acids and subsequently on biliary lipid composition is unknown. Therefore, we studied the effect of prolonged suppression of gallbladder emptying with a cholecystokinin (CCK-A) receptor antagonist on bile formation in Richardson ground squirrels fed a trace versus a 1% cholesterol diet. Biliary lipid secretion was measured directly and bile acid pool size assessed by isotope dilution ([14C]-cholic acid). Gallbladder contraction was determined in vitro in response to CCK. The CCK-antagonist (MK-329) greatly inhibited gallbladder contraction in vitro and increased gallbladder fasting volume and bile acid pool size in vivo. It significantly lowered the cholesterol saturation index by 35% and 46% in hepatic bile and by 18% and 28% in gallbladder bile in the trace and cholesterol diet groups, respectively. Bile acid secretion and bile flow doubled with the CCK-receptor antagonist. Chronic CCK receptor antagonist-induced inhibition of gallbladder emptying increases bile acid secretion and thereby decreases cholesterol saturation in bile. Extensive biliary hypomotility thus leads to a more rapid cycling of bile acids by depriving the gallbladder of its function in the enterohepatic circulation.

Animals↗

Characterization of cholecystokinin receptors on the human gallbladder.

BACKGROUND: Several studies examined in vivo and in vitro biologic activity of the human gallbladder in response to cholecystokinin (CCK). However, few studies have demonstrated directly the interaction of CCK with receptors on the human gallbladder, which is responsible for this biologic activity. METHODS: To characterize CCK receptors on human gallbladder tissue, gallbladders were removed from human donor grafts that were being used for liver transplantation. The gallbladders were rapidly frozen and sectioned for measurement of binding of 125I-Bolton-Hunter-labeled-CCK-8 and were cut into strips for in vitro bioassay. RESULTS: Binding of 125I-BH-CCK-8 to human gallbladder was saturable, specific, and dependent on time, pH, and temperature. The binding was inhibited only by cholecystokinin-related peptides including CCK-8 (IC50 10 +/- 1.0 nmol/L) (mean +/- SD), des(SO3) CCK-8 (IC50 0.9 +/- 0.2 mumol/L), and gastrin-17-I (IC50 9.0 +/- 2.0 mumol/L) or specific CCK receptor antagonist L-364,718. Computer analysis of binding of 125I-BH-CCK-8 to gallbladder tissue showed a single class of binding sites with high affinity for CCK-8. Autoradiography localized binding of 125I-BH-CCK-8 only to the smooth muscle layer of the gallbladder. In the bioassay des(SO3) CCK-8 (EC50 1.2 +/- 0.7 mumol/L) and gastrin-17-I (EC50 4.5 +/- 2.4 mumol/L) were 150- and 563-fold less potent than CCK-8 (EC50 8.0 +/- 2.2 nmol/L). The relative potencies of CCK agonists for inhibiting binding of 125I-BH-CCK-8 agreed closely with their relative potencies for causing gallbladder contraction. The dose-response curve for CCK-8 alone to induce gallbladder contraction was not significantly different from those caused by CCK-8 plus 1 mumol/L tetrodotoxin or 1 mumol/L atropine. CONCLUSIONS: These results characterized the CCK receptors on smooth muscle of human gallbladder as sulfate dependent and causing gallbladder contraction.

Autoradiography↗

Multiple affinity states of different cholecystokinin receptors.

We transfected COS cells with cDNA for rat cholecystokinin-A (CCK-A) and different CCK-B receptors and measured binding of 125I-CCK-8, [3H]L-364,718 and [3H]L-365,260 to characterize the different affinity states for each type of CCK receptor. Rat CCK-A and CCK-B receptors, canine CCK-B receptors and canine mutant CCK-B (M-CCK-B) receptors in which the leucine in position 355 was replaced by valine each existed in three different affinity states for CCK-8, high affinity, low affinity, and very low affinity. In rat CCK-A and probably CCK-B receptors, most were in the very low affinity state, whereas with canine CCK-B and M-CCK-B receptors, most were in the low affinity state. Studies with CCK receptor agonists, CCK-8, gastrin, and CCK-JMV-180, in conjunction with CCK receptor antagonists, L-364,718 and L-365,260, showed a different pattern of affinities for these ligands at the different CCK receptors. Thus, each transfected CCK receptor can exist in three different affinity states for CCK-8 and has a characteristic pattern of interaction with different ligands. This ability to exist in multiple affinity states is an intrinsic property of the CCK receptor molecule itself.

Animals↗

Metabolism of cholecystokinin-33 in vivo: effect of L-364,718, a CCK receptor antagonist.

Metabolism of cholecystokinin (CCK) and the effect of L-364,718, a specific CCK-A receptor antagonist, on the metabolism of CCK were examined in dogs. In conscious dogs, 45 min intravenous infusion of synthetic human CCK-33 (100 pmol/Kg/hr) caused an integrated CCK response over 90 min of 675 +/- 51 pmol-90 min/L, and the plasma CCK levels declined promptly with a t1/2 of 2.2 +/- 0.3 min after cessation. Organ extraction of CCK-33 by the kidney, mesenteric organs, and liver was examined in anesthetized dogs. From the gradients of the plasma levels between afferent and efferent vessels for each organ after bolus injection of CCK-33 (50 pmol/Kg), renal extraction ratio was 0.30 +/- 0.04, and mesenteric extraction ratio was 0.19 +/- 0.04. Hepatic extraction was not detected. T1/2 and extraction ratios were not affected by the preinjection of L-364,718 (20 nmol/Kg). The results indicate in dogs that exogenously administered CCK-33 is degraded by the mesenteric organs as well as the kidney but not by the liver, and that receptor-mediated mechanisms are not involved in these degradation pathways of CCK.

Anesthesia↗

Role of endogenous cholecystokinin in the facilitation of mu-mediated antinociception by delta-opioid agonists.

Published results suggest that delta-opioid agonists can modulate the mu-mediated analgesia. In this work, the antinociceptive effects produced by the mu agonist [D-Ala2,NMe-Phe4,Gly-ol5]enkephalin or the mixed inhibitor of enkephalin-degrading enzymes RB 101 (N- [(R,S)-2-benzyl-3[(S)(2-amino-4-methyl- thio)butyldithio]-1-oxopropyl]-L-phenylalanine benzyl ester) were studied after administration of the systemically active and selective delta agonist Tyr-D-Ser(O-tert-butyl)-Gly-Phe-Leu- Thr(O-tert-butyl). In the hot-plate test in mice, Tyr-D-Ser(O-tert-butyl)-Gly- Phe-Leu-Thr(O-tert-butyl) (i.v.) potentiated the antinociceptive responses elicited by [D-Ala2,NMe-Phe4,Gly-ol5]enkephalin (i.v.) or RB 101 (i.v.). These facilitatory effects were reversed not only by prior administration of the delta-selective antagonist naltrindole (0.5 mg/kg s.c.), but also unexpectedly by the selective cholecystokinin CCK-A antagonist MK-329 (20 micrograms/kg i.p.). In addition, the CCK analog [Boc- Tyr(SO3H)-Nle-Gly-Trp-Nle-Asp-Phe-NH2] (a mixed CCK-A/CCK-B agonist) increased the jump latency and this effect was blocked by MK-329 (20 micrograms/kg i.p.) and by naloxone, but not by the selective CCK-B antagonist L-365,260 (5 mg/kg i.p.). In contrast, the selective CCK-B agonist BC 264 (62 micrograms/kg i.v.) produced a hyperalgesic effect that was antagonized by L-365,260 (5 mg/kg i.p.). Taken together, these findings suggest that the potentiating effects of delta agonists on mu-mediated analgesia are due to an increase in the release of endogenous CCK interacting with CCK-A and CCK-B receptors and resulting in positive and negative regulation of the endogenous opioid system.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Inhibition of motilin-induced phase III contractions by pentagastrin in Heidenhain pouch dogs.

We compared the inhibitory effects of histamine and pentagastrin (PG) on motilin-induced upper gastrointestinal phase III activity in conscious dogs that had surgically prepared Heidenhain pouchs (HP). Contractile activity was measured by means of chronically implanted force transducers, and changes in pH of the perfusate through the HP were monitored simultaneously. Intravenous infusion of PG (4 micrograms/kg-hr) inhibited motilin-induced phase III activity both in the main stomach and in the HP, whereas histamine (40 micrograms/kg-hr) inhibited activity only in the main stomach. Famotidine (0.3 mg/kg, i.v., the dose that completely inhibited gastric acid secretion by PG or histamine) blocked the inhibition of phase III activity induced by histamine but did not affect PG-induced inhibition. L-364,718 (1 mg/kg, i.v.), which had no effect on the PG-induced decrease in the pH of the perfusate lowered by PG, reversed the inhibition of phase III activity by PG in the HP but not in the main stomach. However, L-364,718, when combined with famotidine, potently reversed the PG-induced inhibition of phase III activity both in the main stomach and in the HP. These results show that the inhibitory effect of PG on motilin-induced phase III activity is brought about by two distinctive mechanisms, gastric acid and the cholecystokinin receptors-dependent mechanism, whereas the histamine-induced inhibition is mediated only by gastric acid. In the vagally denervated HP, however, gastric acid is not involved in an inhibitory effect of PG.

Animals↗

Inhibitory effect of gastrin and cholecystokinin fragments on the secretion of triacylglycerol in rat hepatocytes.

In this investigation we studied the influence of two gastrin fragments, pentagastrin and nonsulfated heptadecagastrin, and two cholecystokinin fragments, sulfated and desulfated cholecystokinin 26-33, on intracellular and secreted triacylglycerol in isolated hepatocyte cultures. Both gastrin fragments inhibited triacylglycerol release in a biphasic manner, exhibiting maximal effect at 0.1 nmol/L (nonsulfated heptadecagastrin) and 0.3 nmol/L (pentagastrin). At these concentrations triacylglycerol secretion was 42% (nonsulfated heptadecagastrin, p < 0.001) and 62% (pentagastrin, p < 0.001) lower than in cells untreated with gastrin. Sulfated cholecystokinin 26-33 caused a 35% decrease in triacylglycerol secretion at 0.1 nmol/L (p < 0.01), and desulfated cholecystokinin 26-33 caused a 53% decrease at 0.2 nmol/L (p < 0.001). In all experiments, the hormone-induced decrease in triacylglycerol secretion was accompanied by an increase in intracellular triacylglycerol content. The cholecystokinin-A receptor antagonist L-364, 718 did not affect the decrease in triacylglycerol secretion induced by 0.3 nmol/L pentagastrin, whereas the cholecystokinin-B receptor antagonist L-365, 260 inhibited the pentagastrin effect at concentrations above 50 nmol/L. These results suggest that gastrin, cholecystokinin or some other gastrinlike hormone (or all three) may play a previously unrecognized regulatory role with respect to hepatic very low density lipoprotein secretion.

Animals↗

Octreotide and cholecystokinin antagonist reduce edema in obstruction-induced acute pancreatitis.

Obstruction-induced acute pancreatitis in rats is associated with increased plasma cholecystokinin (CCK) levels. Duodenal replacement of bile reduces severity of pancreatitis and limits CCK increase. We investigated the role of CCK in the pathogenesis of obstruction-induced acute pancreatitis by pretreating rats with the somatostatin analog octreotide and the CCK antagonist L-364,718. Octreotide inhibits duodenal CCK release, and L-364,718 competitively blocks CCK receptors. We studied 31 rats after (1) sham operation (n = 7), (2) bile and pancreatic duct obstruction (BPDO) (n = 12), (3) BPDO plus octreotide (20 micrograms/kg IP and then 5 micrograms/kg/hr IV) (n = 6), and (4) BPDO plus L-364,718 (1 mg/kg IP and then 0.25 mg/kg/hr IV) (n = 6). Rats were killed after 18 hours. Pancreas weight, acute pancreatitis histology score, and plasma amylase and CCK levels were determined. Octreotide and L-364,718 limited the increase in pancreas weight. Octreotide also limited the rise in plasma CCK levels. These findings suggest that CCK may play a role in the pathogenesis of obstruction-induced acute pancreatitis.

Acute Disease↗

CCK/gastrin antagonists--clinical perspectives.

There are (at least) two types of receptor for cholecystokinin (CCK)/gastrin peptides. Highly potent specific antagonists are available for both types. The CCKA-receptor mediates classical CCK-like effects on the gut. Antagonists given to man inhibit pancreatic enzyme secretion and generally shorten gastrointestinal transit times. Potential clinical indications include anorexia, gastro-paresis, pseudo-paresis, pseudo-obstruction, severe constipation and chronic pancreatitis. However gallbladder contraction is markedly inhibited and this led to gallstone formation in baboons. This will obviously have to be avoided if CCKA antagonists are to be used in man. CCKB-receptors mediate the effects of gastrin on the gut and the effects of CCK in the brain. They inhibit gastrin-stimulated acid secretion. If used in acid-peptic disease they might inhibit the trophic effects of gastrin on enterochromaffin cells. CCKB-antagonists can also inhibit the growth of some gastrin-dependent tumours, including certain human colonic cancer cell lines which produce gastrin. CCKB-antagonists have a potent anxiolytic-like effect in animals, and this effect might become their main clinical application.

Animals↗

Antagonism of receptors for gastrin, cholecystokinin and GRP/bombesin in postprandial stimulation of exocrine pancreas in dogs.

Postprandial pancreatic secretion results from the interaction of neural and hormonal factors such as cholecystokinin (CCK), gastrin and gastrin releasing peptide (GRP), but their contribution to the net secretion is not established. Recent description of highly specific and potent hormonal receptor antagonists allows the determination of the physiological role of CCK, gastrin and GRP. In six dogs with chronic pancreatic fistulas, the blockade of CCK receptors by L-364, 718, gastrin receptors by L-365, 260 or GRP/bombesin receptors by nonapeptide RC-3095 failed to affect basal or sham-feeding induced pancreatic secretion indicating that none of these hormonal peptides plays a major role in this secretion. In contrast, the pancreatic response to ordinary feeding (which includes cephalic, gastric and intestinal phases), that was accompanied by a significant increment in plasma CCK and gastrin levels, was strongly inhibited (by over 50%) by L-364, 718 and slightly (by 20-30%) by L-365, 260 but not by RC-3095. Each antagonist was given at a dose that eliminated the secretory response to CCK, gastrin or GRP, respectively. We conclude that specific receptor antagonists are useful tools in assessing the physiological role of gut hormones in the control of pancreatic secretion and that none of the peptides tested appears to be involved in the cephalic phase. However, CCK plays a major role in the postprandial stimulation of pancreatic secretion.

Animal Feed↗

Intrapancreatic cholecystokinin mediates vagally stimulated exocrine secretion from the rat pancreas.

Although cholecystokinin is localized within neuronal fibres of the pancreas, a physiological role for intrapancreatic cholecystokinin has not been identified. The strategy of this study was to elicit pure vagal stimulation electrically, and to use specific receptor antagonists to identify the mediators of exocrine pancreatic secretion. We conclude that vagal stimulation of the rat pancreas involves ganglionic neurotransmission and release of acetylcholine and cholecystokinin from intrapancreatic, postganglionic fibres. To our knowledge, this is the first study to demonstrate a physiological role for intrapancreatic cholecystokinin.

Animals↗

[Newly-developing therapies of pancreatic cancer--immunotherapy, gene therapy, differentiation therapy, endocrine therapy and others].

Pancreatic cancer is extremely resistant to various cancer therapies, however, variety of new therapies for pancreatic cancer have been investigated: (1) immunotherapy including cytokines like TNF, adoptive immunotherapy with lymphokine-activated killer cells or cytotoxic T-lymphocytes, and tumor vaccines using mutated Ki-ras oncoprotein or irradiated tumor cells which were transfected by cytokine genes; (2) gene therapy including transfer of cytokine genes or antisense Ki-ras oncogene, and a combination of gene transfer of herpes simplex virus thymidine kinase and subsequent administration of ganciclovir; (3) differentiation therapy including a quinolinone derivative, vesnarinone; (4) endocrine therapy including cholecystokinin-receptor antagonist, CR1505 or L364,718; (5) heavy water, and etc. All of these therapies will be applied for the treatment of pancreatic cancer in the near future.

Animals↗

Long-term blockade of cholecystokinin (CCK): effects of L 364,718 (a CCK receptor antagonist) on pancreatic enzyme storage and secretion.

To determine the effect of long-term blockade of cholecystokinin (CCK) on both pancreatic storage and secretion processes, L 364,718 (a CCK receptor antagonist) was administered to rats at 0.1 mg/kg/day for 3, 7, and 15 days. Zymogen granules were analyzed by flow cytometry to determine their light scattering properties-forward scatter and side scatter-as well as their amylase content measured by a specific antiserum. The mean number of zymogen granules per cell was counted on pancreatic sections using electron microscopy. DNA content, pancreatic weight, and enzyme secretion were also studied under both basal conditions and CCK infusion at a dose of 1.25 micrograms/kg/h, which is able to displace the CCK receptor antagonist. Two subpopulations of zymogen granules (Z1 and Z2) were identified on the basis of their light scattering parameters, in both control and L 364,718-treated rats. L 364,718 administered for 3, 7, and 15 days induced a significant reduction in the amylase content of individual zymogen granules, for both Z1 and Z2 zymogen granule subsets. In contrast, the number of zymogen granules per cell increased from day +3 of treatment onward, the highest values being detected at day +7. Hyperplasia was observed only at day +15. Basal enzyme secretion decreased significantly in rats treated with L 364,718 for 3 and 7 days but recovered to control values after 15 days of treatment. No significant differences in CCK-stimulated amylase secretion were observed between control and L 364,718-treated rats. At day +15 of L 364,718 treatment a significant increase in enzyme secretion was observed with respect to shorter treatment periods; this was associated with a significant increase in both the number of cells and the number of zymogen granules per cell. Our results indicate that chronic administration of L 364,718 induces a biphasic effect on pancreatic function. Interestingly, although enzyme secretion reached recovery after long-term treatment (15 days), the storage process is altered since the mean enzyme content in each individual zymogen granule remains significantly reduced.

Amylases↗

Study on inhibition of pancreatic exocrine secretion by somatostatin in rats.

We used a potent and specific monoclonal antibody to somatostatin to test the physiologic inhibitory role of the tetradecapeptide somatostatin on pancreatic secretion. Somatostatin immunoneutralization increased both the total amylase and volume of pancreatic secretion. Cholecystokinin-A receptor antagonism abolished the stimulatory effect of somatostatin immunoneutralization. We conclude that somatostatin tonically inhibits, pancreatic secretion in fasted rats via inhibition of the release or action of cholecystokinin. Furthermore, the source of these peptides is likely islet delta cells and intrapancreatic neurons, respectively.

Amylases↗

Rat exocrine pancreatic secretion by vagal stimulation occurs via multiple mediators.

The vagus is a mixed nerve containing cholinerrgic and non-cholinergic neurons. Vagal fibers interact with peptidergic neurons of the enteric nervous system which stain immunohistochemically for cholecystokinin, vasoactive intestinal polypeptide, and gastrin releasing peptide. The contribution of these peptidergic neurons in the pancreatic response to vagal stimulation is unknown. We tested the effect of specific inhibitor of these stimulants against vagally mediated exocrine secretion in rats. The response to vagal stimulation was blocked significantly by each of the following: the ganglionic blocker hexamethonium (100% inhibition); the muscarinic, cholinergic blocker atropine (85% inhibition); the specific cholecystokinin-A receptor blocker (91% inhibition); and a vasoactive intestinal polypeptide polyclonal antibody (89% inhibition). This observation is consistent with the hypothesis that potentiating interactions among several agonists mediate the vagal response. Our study, however, dose not exclude acetylcholine as the final common mediator.

Amylases↗

Effect of ionizing radiation on the release of cholecystokinin in the hypothalamus of the rat.

This study was designed to identify the mechanisms underlying the reduction in food intake in rats. Measurements were made of the release of cholecystokinin (CCK) stimulated by potassium chloride in the hypothalamus after (a) gamma irradiation (60Co), (b) treatment with the CCK-A and CCK-B antagonists L-364,718 and L-365,260 with and without radiation, (c) bilateral abdominal vagotomy, and (d) vagotomy with and without radiation and with and without L-364,718. The concentrations of CCK in hypothalamus perfusate were measured by a radioimmunoassay. Exposure of rats to 1, 3, 5 and 10 Gy (1 Gy/min) increased release of CCK in the hypothalamus in a manner that was dependent on dose. A dose of 5 Gy was chosen for further studies. Intraperitoneal (i.p.) administration of 10, 20 and 50 microg/kg of L-364,718 did not induce significant changes in release of CCK in sham-irradiated animals. However, the drug decreased the release of CCK induced by radiation in a dose-dependent manner. In contrast to L-364,718, 20-50 microg/kg of L-365,260 decreased the release of CCK in the hypothalamus in sham-irradiated animals but did not decrease release of CCK induced by exposure to radiation. Vagotomy produced an insignificant reduction in release of CCK compared to that in sham-irradiated controls. However, vagotomy decreased release of CCK in irradiated rats compared to the irradiated rats without vagotomy. Vagotomy and i.p. administration of 10, 20 and 50 microg/kg of L-364,718 decreased release of CCK in irradiated rats compared to that in irradiated rats without vagotomy. However, i.p. administration of 10, 20 and 50 microg/kg of L-364,718 did not induce significant decreases in release of CCK in the hypothalamus of vagotomized and irradiated animals compared to those in rats that were vagotomized and irradiated but not treated with L-364,718. These results demonstrate that radiation increases the release of CCK in the hypothalamus, and that this effect is inhibited by vagotomy and the administration of a CCK-A receptor antagonist. A CCK-A receptor antagonist may be used to mitigate a radiation-induced deficit in food intake.

Animals↗