Search PubMed⌕ Search

Biomedical subjects

K Beckh

Publications and source records attributed to K Beckh.

51 records · Page 3Linked to original sources

Modulation by somatostatin of nerve-mediated activation of glycogenolysis in the perfused rat liver.

Perivascular nerve stimulation of rat livers perfused in situ with erythrocyte-free Krebs-Henseleit buffer at constant pressure in a non-recirculating system resulted in an increase of glucose and lactate production and in a decrease of portal flow. Infusion of somatostatin in different concentrations (2 x 10(-7), 10(-8), 10(-9) mol.l-1) reduced the nerve-mediated activation of glucose release maximally to 66%. There was only a slight effect on the lactate output, the nerve-mediated reduction of portal flow was unaltered. In controls, somatostatin alone had no effect on the metabolic and hemodynamic parameters. In order to differentiate between a presynaptic and postsynaptic mechanism, the noradrenaline overflow was calculated. The unaltered release of the neurotransmitter in the presence or absence of somatostatin excluded a presynaptic mechanism. To mimic the nerve effects on the carbohydrate metabolism and on the hemodynamics, noradrenaline (2 x 10(-7) mol.l-1) was infused instead of the nerve stimulation over a period of 5 min. Somatostatin did not change the endocrine effects of the catecholamine under these conditions. The nerve-dependent effect of somatostatin suggests that other neurotransmitters (e.g. VIP) or mediators (e.g. prostanoids) may be influenced by somatostatin.

Animals↗

Elimination of the low-molecular weight proteinase inhibitor camostate (FOY 305) and its degradation products by the rat liver.

The elimination of the low molecular weight proteinase inhibitor camostate (FOY 305) was studied in rats after oral administration and in the the situ perfused rat liver. After feeding of camostate (400 mg/kg b.w.) only the metabolites (FOY 251, GBA) were detected in blood samples withdrawn from the portal and hepatic vein. This indicated a rapid degradation of FOY 305 after absorption from the gut lumen. The hepatic extraction of the anti-proteolytic active metabolite FOY 251 during a single liver passage was 23%. It remained almost constant over the period of 120 min. In the perfused rat liver, FOY 305 was given in concentrations comparable to the in vivo studies. It was eliminated by 20%. In these experiments, the compound was metabolized to FOY 251 and in minor amounts to guanidino-benzoate (GBA), the latter being an anti-proteolytic ineffective degradation product. In conclusion, a low hepatic extraction of FOY 305 led to pharmacologically effective concentrations of the active metabolite FOY 251 in the circulation after oral ingestion of the proteinase inhibitor.

Administration, Oral↗

Regulation of liver metabolism by the hepatic nerves.

In the isolated rat liver perfused as usual via the portal vein, joint electrical stimulation of the nerve fibers around the artery and the portal vein in the liver hilus increased glucose output, shifted lactate uptake to output, decreased urea and glutamine formation as well as ammonia uptake, reduced ketone body production, lowered oxygen uptake and reduced perfusion flow simultaneously changing the intrahepatic flow distribution; it was accompanied by an overflow of noradrenaline into the hepatic vein. All effects were mediated predominantly via alpha-receptors; they were dependent on extracellular calcium. In livers perfused both via the artery and the portal vein, separate stimulation of the plexus at the common hepatic artery or at the portal vein caused similar effects on glucose and lactate balance and on perfusion flow. Arterial stimulation caused the higher metabolic responses and alterations not only in arterial but also 'transhepaticly' in portal flow, and conversely, portal flow elicited the smaller metabolic responses and alterations in both portal and 'transhepaticly' arterial flow. If sympathetic nerve actions were blocked using alpha- and beta-antagonists, the resulting parasympathetic stimulation increased glucose uptake in the presence of insulin and antagonized the glucagon stimulated glucose release, both alone and more strongly in the presence of insulin. The sympathetic nerves may act directly at the parenchymal cells or indirectly via an overflow of neurotransmitter from the vasculature into the sinusoids or via hemodynamic changes. Experiments with the smooth muscle relaxant sodium nitroprusside and with retrograde flow indicate that neither hemodynamic changes nor noradrenaline overflow from the vasculature can play a major role in the mechanism of action of sympathetic liver nerves on glucose and lactate metabolism. Comparative studies with perfused livers of rats, guinea pigs and tupaias are in line with the view that in the rat the sympathetic nerves act via contacts with only a few periportal hepatocytes, from where the signal is propagated through gap junctions, while in guinea pig and tupaia the nerves act via contacts with almost all parenchymal cells. Sympathetic nerve stimulation of the perfused rat liver caused an increase in the activity of glycogen phosphorylase and a decrease of glycogen synthase, but left the activity of pyruvate kinase unaltered; fructose 2,6-bisphosphate and cAMP were only slightly enhanced.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Mechanism of action of sympathetic hepatic nerves on carbohydrate metabolism in perfused rat liver.

In the perfused rat liver stimulation of the hepatic nerves around the portal vein and the hepatic artery was previously shown to increase glucose output, to shift lactate uptake to output, to decrease and re-distribute intrahepatic perfusion flow and to cause an overflow of noradrenaline into the hepatic vein. The metabolic effects could be caused directly via nerve hepatocyte contacts or indirectly by the hemodynamic changes and/or by noradrenaline overflow from the afferent vasculature into the sinusoids. Evidence against the indirect modes of nerve action is presented. Reduction of perfusion flow by lowering the perfusion pressure from 2 to 1 ml X min-1 X g-1--as after nerve stimulation--or to 0.35 ml X min-1 X g-1--far beyond the nerve stimulation-dependent effect--did not change glucose output and lowered lactate uptake only slightly. Only re-increase of flow to 2 ml X min-1 X g-1 enhanced glucose and lactate release transiently due to washout of glucose and lactate accumulated in parenchymal areas not perfused during low perfusion flow. In chemically sympathectomized livers nerve stimulation decreased perfusion flow almost normally but without changing the intrahepatic microcirculation; yet it enhanced glucose and lactate output only insignificantly and caused noradrenaline overflow of less than 10% of normal. Conversely, in the presence of nitroprussiate (III) nerve stimulation reduced overall flow only slightly without intrahepatic redistribution but still increased glucose and lactate output strongly and caused normal noradrenaline overflow.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Control of ketogenesis in the perfused rat liver by the sympathetic innervation.

The regulation of ketogenesis by the hepatic nerves was investigated in the rat liver perfused in situ. Electrical stimulation of the hepatic nerves around the portal vein and the hepatic artery caused a reduction of basal ketogenesis owing to a decrease in acetoacetate release to 30% with essentially no change in 3-hydroxybutyrate release. At the same time, as observed before [Hartmann et al. (1982) Eur. J. Biochem. 123, 521-526], nerve stimulation increased glucose output, shifted lactate uptake to output and decreased perfusion flow. Ketogenesis from oleate, which enters the mitochondria via the carnitine system, was also lowered after nerve stimulation owing to a decrease of acetoacetate release to 30% with no alteration in 3-hydroxybutyrate release. Ketogenesis from octanoate, which enters the mitochondria independently of the carnitine system, was decreased after nerve stimulation as a result of a drastic decrease of acetoacetate output to 15% and a less pronounced decrease of 3-hydroxybutyrate release to 65%. Noradrenaline mimicked the metabolic nerve effects on ketogenesis only at the highly unphysiological concentration of 0.1 microM under basal conditions and in the presence of oleate as well as partly in the presence of octanoate. It was essentially not effective at a concentration of 0.01 microM, which might be reached in the sinusoids owing to overflow from the hepatic vasculature. Sodium nitroprusside prevented the hemodynamic changes after nerve stimulation; it did not affect the nerve-dependent reduction of ketogenesis under basal conditions and in the presence of oleate, yet it diminished the nerve effect on octanoate-dependent ketogenesis. Phentolamine clearly reduced the metabolic and hemodynamic nerve effects, while propranolol was without effect. The present data suggest that hepatic ketogenesis was inhibited by stimulation of alpha-sympathetic liver nerves directly rather than indirectly via hemodynamic changes or noradrenaline overflow from the vessels and that the site of regulation should be mainly intramitochondrial.

Animals↗

Control of glycogenolysis and hemodynamics in perfused rat liver by the sympathetic innervation. Dependence on stimulation frequency and duration.

Perivascular stimulation of the hepatic nerves in the in situ perfused rat liver with a constant frequency of 20 Hz over a constant period of 5 min had previously been shown to cause an increase of glucose output, a shift from lactate uptake to release, a reduction in perfusion flow (Hartmann et al. (1982) Eur. J. Biochem. 123, 521-526) and an overflow of noradrenaline into the hepatic vein (Beckh et al. (1982) FEBS Lett. 149, 261-265). In the present study the dependence of the metabolic and hemodynamic effects on the frequency between 1 and 30 Hz and duration of stimulation between 0.5 and 5 min was investigated. Over a constant stimulation period of 5 min the alteration in glucose exchange was maximal with a frequency of 10 Hz and half-maximal with 4 Hz. The corresponding values for the exchange of lactate were 5 Hz and 2 Hz, respectively, and for the perfusion flow 2.5 Hz and 1.5 Hz, respectively. An increase of noradrenaline overflow was not observed with the lower frequencies of 1 and 2.5 Hz; it was maximal at 10 Hz and half-maximal at 6.5 Hz. At a constant frequency of 20 Hz the increase in glucose release was maximal with a total stimulation period of 1 min and half-maximal with a period of 0.4 min. An essentially maximal alteration of lactate exchange and perfusion flow as well as of noradrenaline overflow was also effected by a stimulation period of 1 min.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Control of oxygen uptake, microcirculation and glucose release by circulating noradrenaline in perfused rat liver.

The effect of noradrenaline on oxygen uptake, on periportal and perivenous oxygen tension at surface acini, on microcirculation and on glucose output were studied in isolated rat livers perfused at constant flow with Krebs-Henseleit-hydrogen carbonate buffer containing 5mM glucose and 2mM lactate. Noradrenaline at 1 microM concentration caused a decrease in oxygen uptake, while at 0.1 microM it led to an increase. Both high and low doses of noradrenaline decreased the tissue surface oxygen tension in periportal and - after a transient rise - in perivenous areas. Noradrenaline at an overall constant flow caused an increase of portal pressure and an alteration of the intrahepatic distribution of the perfusate: at the surface of the liver and in cross sections infused trypan blue led to only a slightly heterogeneous staining after a low dose of noradrenaline but to a clearly heterogeneous staining after a high dose. Both high and low doses of noradrenaline stimulated glucose release. All effects could be inhibited by the alpha-blocking agent phentolamine. In conclusion, control of hepatic oxygen consumption by circulating noradrenaline is a complex result of opposing hemodynamic and metabolic components: the microcirculatory changes inhibit oxygen uptake; they dominate after high catecholamine doses. The metabolic effects include a stimulation of oxygen utilization; they prevail at low catecholamine levels. The noradrenergic control of glucose release is also very complex, involving direct, metabolic and indirect, hemodynamic components.

Animals↗

Regulation of oxygen consumption and microcirculation by alpha-sympathetic nerves in isolated perfused rat liver.

In isolated rat liver perfused at constant flow with erythrocyte-free Krebs-Henseleit bicarbonate buffer containing 5 mM glucose and 2 mM lactate, perivascular stimulation of the hepatic nerves caused a rapid decrease of oxygen uptake, a decrease of the periportal and, after a transient rise, of the perivenous tissue po2 of surface acini, an increase of portal pressure, and an enhancement of glucose output. Furthermore, nerve stimulation changed the intrahepatic distribution of the perfusate drastically. Infusion of trypan blue 20 s after nerve stimulation resulted in a heterogeneous staining of the liver both at the surface and in cross-sections, while it led to a homogeneous distribution in non-stimulated controls. It is concluded that the major component in the mechanism of the nerve-dependent decrease of oxygen uptake is the microcirculatory change rather than a metabolic effect.

Animals↗

Regulation of oxygen consumption in perfused rat liver: decrease by alpha-sympathetic nerve stimulation and increase by the alpha-agonist phenylephrine.

In livers perfused with Krebs-Henseleit bicarbonate buffer containing bovine red cells, 5 mM glucose and 2 mM lactate, electrical stimulation round the hepatic artery and the portal vein caused via alpha-receptors a decrease in oxygen consumption and portal flow, an increase in glucose output and a switch from lactate uptake to output. In livers perfused with erythrocyte- and substrate-free buffer both in a volume- or pressure-constant system stimulation of the liver nerves resulted in similar changes. Infusion of the alpha-agonist phenylephrine mimicked the metabolic and hemodynamic nerve effects, but led to an increase in oxygen uptake. The converse effects of alpha-sympathetic nerve stimulation and alpha-agonist infusion on oxygen consumption indicate either a different mode of action or a complex mechanism with opposing metabolic and hemodynamic components.

Animals↗

Activation of glycogenolysis and norepinephrine overflow in the perfused rat liver during repetitive perivascular nerve stimulation.

During in situ perfusion of rat liver stimulation of nerve bundles around hepatic artery and portal vein resulted in an increase of glucose output, a switch from lactate uptake to output and in a decrease of portal flow. These effects remained essentially the same during 3 stimulation periods at 20 min intervals; norepinephrine overflow, however, was strongly decreased during the second and third period. The metabolic and hemodynamic effects were not correlated to norepinephrine overflow during repetitive stimulations and during stimulations in the presence of norepinephrine, phentolamine, propranolol or desipramine.

Animals↗

Direct control of glycogen metabolism in the perfused rat liver by the sympathetic innervation.

The mode of action of hepatic nerves on the metabolism of carbohydrates was studied in the rat liver perfused in situ. 1. Electrical stimulation of the nerve bundles around the hepatic artery and the portal vein resulted in an increase of glucose and lactate output, an enhancement of phosphorylase a activity and a decrease of portal flow. 2. Sodium nitroprusside prevented the hemodynamic changes after nerve stimulation without affecting the metabolic alterations. 3. Phentolamine or an extracellular calcium level below 300 mumol x 1(-1) abolished both hemodynamic and metabolic changes after nerve stimulation, while propranolol or atropine were without effect. 4. Norepinephrine infusion mimicked nerve stimulation only at the highly unphysiological concentration of 0.1 microM; it was not effective at a concentration of 0.01 microM, which might be reached in the sinusoidal blood due to an overflow from intrahepatic synapses. The present results suggest that, in rat liver, glycogen breakdown is regulated by alpha-sympathetic nerves directly rather than indirectly via hemodynamic changes or via norepinephrine overflow.

Animals↗

Hepatic and pancreatic metabolism and biliary excretion of the protease inhibitor camostat mesilate.

The hepatic metabolism and biliary and pancreatic excretion of the serine protease inhibitor camostat mesilate and its metabolites FOY-251 and GBA were studied in rats in vivo and in in sutu liver-perfusion experiments. After oral feeding (100 mg/kg) and iv infusion (5 mg/kg.h) of camostat mesilate, the original compound and both metabolites appeared in bile, but could not be detected in pancreatic juice. In plasma, only FOY-251 and GBA were detected. In the perfused rat liver, camostat mesilate (10 microM) was eliminated by 33.8% and its molar rate of degradation to FOY-251 was 25.1%. During the study period about 0.1% of camostat mesilate and FOY-251 appeared in bile. The liver perfusion of FOY-251 or GBA revealed very low hepatic extraction rates of 10.3 and 2.4%, respectively. In conclusion, the low hepatic extraction rate of camostat mesilate and its metabolites leads to high concentrations of the active metabolite FOY-251 in plasma. Camostat mesilate and its metabolites are effectively excreted into bile, but not in rat pancreatic juice.

Administration, Oral↗

Effects of tropisetron, a 5-HT3 receptor antagonist, on proximal gastric motor and sensory function in nonulcer dyspepsia.

BACKGROUND: Visceral hypersensitivity is claimed to be involved in the pathogenesis of nonulcer dyspepsia (NUD). In a double-blind crossover study, we evaluated the effects of tropisetron, a 5-HT3 receptor antagonist, on gastric accommodation, reflex relaxation, and sensitivity in NUD patients. METHODS: Eight patients and 10 healthy controls received placebo or 5 mg tropisetron on separate days. On each day, gastric accommodation and relaxation were investigated using a gastric barostat. The perception during gastric distension and relaxation was scored by a verbal perception score. RESULTS: Under both medications, gastric accommodation and postprandial gastric reflex relaxation were not impaired in the NUD patients. The visceral perception was increased in the NUD patients and not substantially influenced by tropisetron. CONCLUSIONS: Tropisetron does not influence gastric accommodation, reflex relaxation, or gastric sensitivity in NUD patients and healthy controls.

Adult↗

Difficult bile duct stone recurrence after endoscopy and extracorporeal shockwave lithotripsy.

BACKGROUND/AIMS: In a prospective study, we investigated stone recurrence in high risk patients with difficult common bile duct stones treated with extracorporeal shockwave lithotripsy (ESWL) after futile endoscopic attempts at stone extraction with sphincterotomy. METHODOLOGY: Endoscopic stone extraction proved unsuccessful in 35 of 659 patients presenting with common bile duct stones (5.5%, 11 males and 24 females: mean age 71.0+/-10.0 yrs; BMI 25.8+/-3.9; ASA-Classification 2.63+/-0.65), due to large stone size (10 patients), incarcerated stones (15 patients), stones inaccessible to the Dormia basket (7 patients) or an impacted Dormia basket (3 patients). The stones were localized radiologically. ESWL was performed using the HM3 lithotripter (Dornier, Munich/FRG). RESULTS: Immediately following ESWL, 17.1% of the patients treated showed complete stone clearance. In an additional 57.1%, further endoscopic stone extraction was required to achieve complete stone clearance, while 20.0% were discharged with small residual stone fragments. The remaining 2 patients (5.7%) required surgical intervention. Thirty four of 35 patients (97.1%) were followed-up for an average of 27+/-11 months. Five patients (14.3%) experienced stone recurrence at an average of 13.8+/-5.7 months post ESWL. CONCLUSIONS: ESWL is a useful and safe adjunct to endoscopic management of difficult common bile duct stones in older, high-risk patients. The stone recurrence rate was about 14% after one year. All recurrent stones were treatable by endoscopy.

Aged↗