Search PubMed⌕ Search

Biomedical subjects

J Seydoux

Publications and source records attributed to J Seydoux.

At least 91 records · Page 5Linked to original sources

Is there a sympathetic regulation of the efficiency of energy utilization?

Brown adipose tissue, a well known effector of regulatory thermogenesis found in mammals, is unique in its ability to steadily increase its heat production several fold for very long periods of time. It constitutes a shunt of energy flow between food intake and heat dissipation, it is activated through its sympathetic nerve supply. There are evidence in the rat, that brown adipose tissue is activated following overfeeding, thus decreasing food efficiency and determining resistance to obesity. Genetically obese (ob/ob) mice fed and kept at 22 degrees C lack the possibility of activating their brown fat energy shunt; they are known to be poorly resistant to cold stress despite their large insulation. This is taken as a further circumstantial evidence of an overlap in thermal and food efficiency regulatory systems in rodents through sympathetically controlled brown fast as a common effector.

Adipose Tissue, Brown↗

Absorption kinetics of subcutaneously injected insulin. Evidence for degradation at the injection site.

The absorption of subcutaneously injected insulin was examined by injecting semisynthetic [3H] insulin in anaesthetized pigs and subsequently analysing the tissue excised from the injection site. Contrary to previously accepted views, a significant proportion of insulin was degraded at the injection site. The disappearance of intact [3H] insulin from the injection site followed a monoexponential function with a half-time of 59 min.

Absorption↗

alpha-Sympathetic control of glucose output of mouse liver perfused in situ.

Electrical stimulation of perivascular nerve bundles of mouse liver perfused in situ at constant flow resulted in an increase of glucose production that was maximal at 20 Hz. The neurally induced glucose output was inhibited significantly by the beta-blocker propranolol, and to a considerably greater extent by the alpha-blockers, phenoxybenzamine and phentolamine. The effect of 20-Hz electrical stimulation could be matched by an infusion of norepinephrine at a concentration of 5 X 10(-7) M. It is suggested that the carbohydrate metabolism of the liver is controlled by its own nerve supply rather than by circulating catecholamines and that alpha-adrenergic receptors have a greater effect than beta-receptors on hepatic glucose production resulting from electrical and catecholamine stimulation.

Animals↗

Does cytoplasmic alkalinization trigger mitochondrial energy dissipation in the brown adipocyte?

Indirect calorimetry measurements showed that brown fat thermogenesis was very sensitive to modifications of intra-cellular pH induced by extracellular acid-base perturbations. Specific blockage of active Na-K transport by ouabain inhibited the thermogenic response only in acidosis and more efficiently when the glycoside was administered before the catecholamine stimulus than when it was added after the full calorigenic response had developed. It is suggested that the catecholamine stimulus might initiate a positive feed-back alkalinization of the cytoplasm, concomitant with activation of Na-K transport.

Adipose Tissue, Brown↗

Extrapancreatic glucagon and glucagonlike immunoreactivity in depancreatized dogs. A quantitative assessment of secretion rates and anatomical delineation of sources.

The anatomical sites and the rates of extrapancreatic secretion of glucagon and of glucagon-like immunoreactivity (GLI) were assessed in dogs 2 h after pancreatectomy by catheterization of the gastrosplenic and mesenteric veins. Glucagon release from the gastrosplenic area approximated one-fourth that of a normal pancreas and rose from 0.25 to 1.0 ng/kg per min during arginine stimulation. Intestinal glucagon secretion was small and did not respond to arginine, suggesting that the stomach is the only important extrapancreatic source of glucagon. Glucagon concentrations attained by gastrosplenic secretion were in close proportion to those obtained during the administration of exogenous glucagon, indicating similar clearance rates of extrapancreatic and pancreatic glucagon, approximating 10 ml/kg per min.GLI secretion (0.3 ng eq/kg per min) was limited to the intestinal area and was transiently stimulated by arginine and exogenous glucagon. Base-line GLI clearance approximated 1 ml/kg per min. No insulin secretion could be detected. Gastrointestinal glucose uptake rose from 0.56 to 2.2 mg/kg per min after glucagon administration suggesting that as much as 10% of total glucose production can be taken up by the gastrointestinal tract. In two dogs both the stomach and pancreas were removed. Intestinal glucagon release remained small and did not increase during arginine administration. By contrast, GLI release was stimulated by both arginine and exogenous glucagon.

Animals↗

Control of A and B cells in vivo by sympathetic nervous input and selective hyper or hypoglycemia in dog pancreas.

An extra-corporeal blood circuit was established between the cranial pancreatico-duodenal vein and the portal vein in the dog. Timed measurements of flow, hematocrit, insulin and glucagon concentrations in this circuit were made in order to calculate the secretion rates of insulin and glucagon. The plasma glucose concentration in the pancreatico-duodenal vein was monitored at steady state from 50 to 330 mg/100 ml for periods of 70 min by infusing a saline solution or glucose into the cranio-pancreatico-duodenal artery. No change in peripheral glucose concentrations was detected. 1. When glucose concentration in the PD vein was lowered from 100 mg/100 ml to about 50 mg/100 ml, the basal insulin secretion rate was not modified. When the glucose concentration was increased from 100 mg/100 ml to about 300 mg/100 ml, the insulin secretion rate increased linearly over the range of concentrations tested. 2. Glucagon secretion rate was unmodified throughout the range of glycemia tested. Whereas net pancreatic glucagon secretion rate was not reduced by selective pancreatic hyperglycemia, it was reduced by systemic hyperglycemia at about the same concentration. 3. In atropinized pancreas, low frequency (2 Hz) electrical stimulation of the distal end of the ligated mixed pancreatic nerve caused a mean decrease of 44% in the secretion rate of insulin, and a mean increase of 42% in the secretion rate of glucagon at all PD vein glucose concentrations studied. 4. It can be concluded, therefore, that the sympathetic nervous input at physiological frequencies controls the moment-to-moment secretory activity of the A and B cells of the pancreas independently of the concentrations of glucose.

Animals↗

Neural regulation of insulin secretion in the dog.

The effects of stimulation of the mixed autonomic nerve to the dog pancreas has been studied under conditions in which both pancreaticoduodenal vein blood flow and insulin concentration were determined. Stimulation resulted in increased insulin output, which was blocked by prior administration of atropine. Blood flow was reduced by stimulation in proportion to the rate of stimulation. At 40 stimuli/s a maximum effect was found at 1 min with a gradual return toward base line despite continued application of the stimulus. Atropinization had no effect on blood flow changes. Insulin responses to 0.1 g/kg glucose were reduced on the average 40% by simultaneous stimulation of the pancreatic nerve at 40 cycles/s in atropinized animals. These studies establish this preparation as a reproducible model for the direct examination of autonomic influences on endocrine pancreatic function. From them it is concluded that the nerve supply to the endocrine pancreas of the dog is sufficient to inhibit insulin secretion by activation of the sympathetic nerves and to stimulate insulin secretion by activation of the parasympathetic nerves.

Animals↗

Glucagon release induced by pancreatic nerve stimulation in the dog.

A direct neural role in the regulation of immunoreactive glucagon (IRG) secretion has been investigated during stimulation of mixed autonomic nerves to the pancreas in anesthetized dogs. The responses were evaluated by measurement of blood flow and hormone concentration in the venous effluent from the stimulated region of pancreas. Electrical stimulation of the distal end of the discrete bundles of nerve fibers isolated along the superior pancreaticoduodenal artery was invariably followed by an increase in IRG output. With 10-min periods of nerve stimulation, the integrated response showed that the higher the control glucagon output, the greater was the increment. Atropinization did not influence the response to stimulation. That the preparation behaved in physiologic fashion was confirmed by a fall in IRG output, and a rise in immunoreactive insulin (IRI) output, during hyperglycemia induced by intravenous glucose (0.1 g/kg). The kinetics of this glucose effect on IRG showed characteristics opposite to those of nerve stimulation: the lower the control output, the less the decrement. Furthermore, during the control steady state, blood glucose concentration was tightly correlated with the IRI/IRG molar output ratio, the function relating the two parameters being markedly nonlinear. Injection or primed infusion of glucose diminished the IRG response to simultaneous nerve stimulation. Measurement of IRG was inferred to reflect response of pancreatic glucagon secretion on the basis of the site of sample collection (the superior pancreaticoduodenal vein), the absence of changes in arterial IRG, and similar responses being obtained using an antibody specific for pancreatic glucagon. THESE STUDIES SUPPORT A ROLE FOR THE AUTONOMIC NERVOUS SYSTEM IN THE CONTROL OF GLUCAGON SECRETION: direct nerve stimulation induces glucagon release. Such sympathetic activation may be interpreted as capable of shifting the sensitivity of the A cell to glucose in the direction of higher glycemia for a given glucagon output. The experimental model employed is valid for further studies of regulatory mechanisms of endocrine pancreatic function in vivo.

Animals↗

Membrane potential of brown adipose tissue. A suggested mechanism for the regulation of thermogenesis.

Membrane potentials were recorded in isolated segments of interscapular brown adipose tissue from rats. After equilibration at 29 degrees C in Krebs-Ringer bicarbonate buffer a mean value of -51 +/- 4 mv (SD) was found. This level could be maintained for up to 5 hr. The mean effective membrane resistance was 1.35 +/- 0.45 megohm. The membrane potential was a function of the extracellular potassium concentration. Ouabain (10(-6)-10(-3)M) and incubation in K-free buffer produced progressive depolarization. Epinephrine and norepinephrine in concentrations as low as 10(-8) g/ml produced a prompt depolarization. Cooling of the tissue and lowering of the oxygen tension caused a marked and reversible decrease in the membrane potential. In tissue obtained from cold-adapted rats, the membrane potential was considerably diminished. 6Assuming that the membrane potential is some function of the Na permeability of the plasma membrane it is suggested that an increase in the rate of active Na-K transport and ensuing ADP formation might contribute to the increase in respiration seen during exposure to thermogenic stimuli.

Adaptation, Physiological↗