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Biomedical subjects

H Orskov

Publications and source records attributed to H Orskov.

At least 253 records · Page 14Linked to original sources

Lipid metabolites and nitrogen balance after abdominal surgery in man.

The relation of lipid metabolism to nitrogen balance was studied in patients having undergone abdominal surgery and was compared with control subjects who had fasted for a similar period. The patients had lower circulating concentrations of glycerol, non-esterified fatty acids and ketone bodies. There were inverse correlations between blood alanine and ketone body concentrations in both patients (r = -0.64, P less than 0.01) and controls (r = -0.58, P less than 0.01). Nitrogen excretion by patients (12.7 mmol/kg body weight/day +/- 1.4 s.e. mean) was greater than by controls (9.2 mmol kg(-1)d(-1) +/- 0.8, P less than 0.05), but a more marked difference was noted for urinary methyl histidine excretion of 5.1 +/- 0.5 mmumol kg(-1) d(-1) by patients and only 2.5 +/- 0.3 mumol kg(-1) d(-1) by controls (P less than 0.01), a disparity indicative of more active protein turnover after surgery.

Abdomen↗

Characterisation of somatostatin release from the pancreas: the role of calcium and acetylcholine.

The effect of calcium on somatostatin secretion was investigated in the isolated, perfused canine pancreas preparation and compared with those of acetylcholine, glucose, isoproterenol and arginine. Calcium (5 mmol/l) stimulated somatostatin release in a typical biphasic response pattern being about 5 times as potent as acetylcholine (1 mumol/l), arginine (5 mmol/l), and isoproterenol (2 ng/ml) while the release of insulin and glucagon in response to calcium and the other secretagogues were of the same magnitude. Somatostatin release increased progressively when perfusate calcium was increased step-wise from 0 through 1.25 and 2.5 to 5.0 mmol/l. Calcium stimulated the secretion of somatostatin in the absence of glucose. The stimulatory effect of calcium was, however, modulated by the glucose concentration being about twice as large at 200 mg/100 ml as at 25 mg/100 ml glucose in the perfusion medium.

Acetylcholine↗

Streptozotocin diabetes: a glucoreceptor dysfunction affecting D cells as well as B and A cells.

Somatostatin release from the isolated pancreas of 3 normal and 6 streptozotocin diabetic dogs has been measured in response to various stimuli to determine whether abnormalities in somatostatin release are present in the diabetic pancreas. Simultaneous measurement of glucagon secretion was also made. In the pancreas from normal dogs increases in perfusate glucose from 25 to 200 mg/100 ml induced a 2--3 fold increase in somatostatin release and a two thirds decrease in glucagon secretion. In contrast, in the diabetic pancreas glucose caused no change in the secretion of the two hormones. In the diabetic pancreas addition of insulin to the perfusate (25,000 microU/ml) for periods from 10 to 75 minutes aimed at restoring normal extracellular insulin levels in the islets failed to restore either somatostatin or glucagon secretion to normal. In contradistinction to the lack of effect of glucose, the somatostatin and glucagon responses to arginine (5 mmol/l), isoproterenol (2 ng/ml) and calcium (5 mmol/l) were normal in the diabetic pancreas. The data suggests the presence of a selective glucoreceptor abnormality of the D as well as of B and A cells in the streptozotocin diabetic dog.

Animals↗

Characterization of somatostatin release from the pancreas: the role of potassium.

The effect of potassium on somatostatin secretion from the isolated perfused canine pancreas was studied. Potassium stimulated dose-dependent somatostatin release in a monophasic response pattern. The effect of potassium was abolished in the absence of calcium. Perfusion of 1 micronmol/l atropine and 1 micronmol/l propranolol was without effect on the potassium induced somatostatin release. The results suggest that the stimulatory effect of potassium on somatostatin release is secondary to increases in calcium influx into the D cell. The sympathetic and parasympathetic nerve endings in the pancreas are apparently not involved in the potassium mediated secretory processes.

Adrenergic beta-Antagonists↗

Hormonal regulation of ketone-body metabolism in man.

The main hormones involved in ketone-body metabolism are the anabolic hormone insulin and the primarily catabolic hormones, glucagon, cortisol, catecholamines and growth hormone. These hormones may regulate ketone-body metabolism at three sites: adipose tissue, by regulating fatty acid supply to the liver; the liver itself, by determining the relative activities of the re-esterification and fatty acid oxidation pathways; and the periphery, by influencing the rate of extrahepatic utilization of ketone bodies. The first two are quantitatively the most important. Insulin acts on all three regulatory sites. In adipose tissue lipolysis is inhibited and re-esterification enhanced with consequent decrease of fatty acid release. Both these processes are extremely insulin-sensitive. In the liver insulin increases fatty acid synthesis and esterification. At the same time malonyl-CoA formation is increased, which inhibits the acylcarnitine transferase system and thus decreases the transport of fatty acids into mitochondria and hence fatty acid oxidation and ketogenesis. Insulin also has a small stimulatory effect on extrahepatic ketone-body utilization. The effects of glucagon depend on whether insulin is present. In normal man glucagon stimulates insulin secretion and the predominant effect is that of insulin, i.e. decreased ketogenesis. In insulin deficiency glucagon has a mild stimulatory effect on lipolysis, increasing fatty acid supply to the liver. The main effects of glucagon are, however, on the liver. It activates the carnitine acyltransferase system through inhibition of malonyl-CoA synthesis. Fatty acid oxidation is increased and ketogenesis enhanced. The overall effect on the liver depends on the relative amounts of insulin and glucagon present. Studies with somatostatin show that glucagon can increase ketogenesis acutely when insulin secretion is inhibited in normal man, but the effects are short-lived. Cortisol has similar effects to glucagon. In the presence of insulin there is a small increase in fatty acid mobilization from adipose tissue, secondary to impaired glucose entry, and perhaps a small effect on lipolysis itself. This fatty acid is, however, directed to triacylglycerol in the liver. In insulin deficiency, again demonstrated by somatostatin infusion, the incoming fatty acidstone-body formation. The mechanism remains obscure. Catecholamines, in contrast, have their most potent effects on adipose tissue, stimulating lipolysis and fatty acid release even in the presence of insulin. They thus act mainly by enhancing precursor supply and have only minor effects on liver and no effect on peripheral utilization. Growth hormone, like glucagon, has little effect in the presence of insulin, but can enhance ketogenesis in insulin deficiency, although again the mechanism is unknown. Thus in normally fed man the effects of insulin will be overriding and little ketogenesis occurs because of limited fatty acid availability in the liver...

Adipose Tissue↗

A new principle for simplified and continuous counting of radioactive samples: enclosure between adhesive tapes.

Radioactive samples are enclosed between two layers of adhesive, transparent tape. The double-tape is wound into drums and automatically fed through the 4pi counting apparatus. This system reduced the workload of mounting, storage and disposal to less than half and the adhesive tape used is fifteen times cheaper than the disposable plastic counting tubes usually employed. The risk of radioactive contamination is practically excluded.

Adhesives↗

Failure of somatostatin to correct manifest diabetic ketoacidosis.

Juvenile diabetic patients were studied 60-72 hours after insulin withdrawal when moderate ketoacidosis had developed. Somatostatin infusion for 4 hours in five patients resulted in almost complete suppression of plasma pancreatic glucagon and growth hormone, a fall in plasma-cyclic-adenosine-monophosphate (A.M.P.) concentrations, and a large fall in plasma-glucose concentration. After infusion plasma concentrations of these substances rose again. Blood-ketone-bodies, plasma-free-fatty-acids (F.F.A.), and plasma glycerol concentrations, however, did not decrease appreciably with somatostatin administration. In three patients 2 to 3 h somatostatin infusions were twice superimposed upon a continuous 9-5 h insulin infusion (1 unit/h). An insulin effect was noticeable within 30 minutes, with pronounced falls in the concentrations of plasma glucose, pancreatic glucagon, F.F.A., and blood-ketone-bodies. There was no significant change in these patterns when somatostatin was administered or withdrawn. These results do not indicate that somatostatin infusion would be useful in the treatment of manifest diabetic ketoacidosis.

Adult↗

The excretion of insulin in urine.

The concentration of biologically active insulin was measured by the isolated fat cell method in serum and urine from healthy subjects and compared with the concentration of immunoreactive insulin. In both urine and serum the values obtained by the two methods correlated closely; In addition, there was a close correlation between the concentration of biologically active and immunoreactive insulin in urine from maturity onset diabetics. Therefore, conclusions on the excretion in the urine and the urinary clearance of insulin, which are based on measurements of immunoreactive insulin, are also valid for biologically active insulin.

Adipose Tissue↗

Ultrasensitive radioimmunoassay for direct determination of free triiodothyronine concentration in serum.

Free triiodothyronine (T3) in serum has been measured directly in dialysates of serum, using a wick chromatographic radioimmunoassay. Adequate sensitivity was attained by the use of [1251]T3 with very high specific activity (2,000 to 3,000 muCi/mug). Sera were dialysed against a Krebs-Ringer bicarbonate buffer modified so as to be similar to plasma water. Dialysis took place under carefully controlled circumstances. The influence on the equilibrium of total to free T3 of temperature, serum dilution, and dialysis time was studied. By the present method, free T3 in serum from groups of subjects including 20 men, 10 women taking oral contraceptives, and 20 women with normal menstrual cycles were identical, averaging 5.2 pg/ml. A chromatographic radioimmunoassay of total T3 using high specific activity [1251]T3 and very small test samples is also described.

Anilino Naphthalenesulfonates↗