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Biomedical subjects

R S Weisinger

Publications and source records attributed to R S Weisinger.

At least 19 recordsLinked to original sources

Central administration of atrial natriuretic peptide suppresses sodium and water intake of sheep.

The effect of intracerebroventricular (i.c.v.) infusion (20 micrograms/h) over 3 h) of human alpha-atrial natriuretic peptide (ANP) on Na and water intake of sheep was studied. I.c.v. infusion of ANP decreased (p less than 0.01) Na and water intakes of water-deprived sheep but did not affect significantly Na or water intakes of Na and water-replete sheep. In addition, i.c.v. infusion of ANP decreased (P less than 0.05) Na and water intakes of sheep infused i.c.v. with angiotensin II. The results suggest that ANP may act on brain mechanisms concerned with both Na appetite and thirst. These mechanisms may involve action on the angiotensin II component of sodium appetite but effects on other factors determinant of appetite cannot be excluded at present.

Angiotensin II

Efferent neural pathways of the lamina terminalis subserving osmoregulation.

Studies in rats and sheep show that neurons in the CVOs of the lamina terminalis provide extensive neural input to the vasopressin-containing cells of the supraoptic nucleus. This input is both by direct pathways and via a synapse in the MnPO which also has projections to the vasopressin-containing cells of the SON. Neurons throughout the lamina terminalis (including possible osmoreceptors in the OVLT and subfornical organ) are activated by systematic hypertonicity. It is likely that in response to hypertonicity they signal the SON and PVN to release vasopressin and elsewhere to elicit other osmoregulatory responses such as thirst and the excretion of sodium.

Animals

Thirst and brain angiotensin in cattle.

Cows that were normally hydrated or deprived of water were given intravenous or intracerebroventricular (icv) infusions of angiotensin I converting-enzyme inhibitors (CEI) or angiotensin II antagonists. Normally hydrated Na-deficient cows increased water intake in a dose-related manner in response to icv infusion of angiotensin I (n = 5). The response to 3 micrograms/h angiotensin I was abolished by concurrent icv infusion of the CEI captopril at 3 mg/h but not by intravenous infusion of captopril at 120 mg/h, which reduced Na appetite (n = 5). The icv infusion of captopril at 12 mg/h did not reduce the water intake of cows that were water restricted for 26.5 h (n = 4) or water restricted and Na deficient (n = 4). The icv infusion of the more lipophilic CEI ramipril at 3 mg/h (n = 7) did not reduce the water intake of normally hydrated or dehydrated cows but reduced the "need-free" intake of Na solution by dehydrated cows. The icv infusion of the nonpeptide antagonist Du Pont 753 at 3 mg/h (n = 7) reduced water intake in dehydrated cows. The results indicate that brain angiotensin may be involved in thirst in cattle. The data suggest that this brain angiotensin II may be formed by a pathway that does not include converting enzyme and that is sited inside the blood brain barrier, possibly in the median preoptic nucleus.

Angiotensin I

Periventricular lesions block natriuresis to hypertonic but not isotonic NaCl loads.

The renal excretion of Na and water after an intravenous load of hypertonic or isotonic saline was studied in conscious sheep in which periventricular tissue in the region of the lamina terminalis had been ablated. Hypertonic saline (3.4-4.2 mmol/l) was infused at 0.06 mmol.kg-1.min-1 for 40 min into the jugular vein. Plasma Na concentration increased 5 mmol/l, and in normal sheep a natriuresis and increase in glomerular filtration rate ensued during the next hour. Such a natriuretic effect did not occur in sheep with periventricular lesions. By contrast, intravenous infusion of isotonic saline (30 ml/kg body wt, i.e., 0.23 mmol.kg-1.min-1 for 20 min) caused similar increase in renal Na excretion in normal sheep and sheep with periventricular lesions. When the same intravenous load of NaCl (0.23 mmol.kg-1.min-1 for 20 min) was administered as hypertonic 20% NaCl, ablation of periventricular tissue greatly impaired the excretion of this Na load. We suggest that the periventricular tissue in the region of the lamina terminalis has a role in regulation of renal Na excretion in conditions where the plasma Na concentration increases. This tissue is also involved in osmoregulatory thirst and vasopressin secretion. We further propose that increased renal Na excretion in response to hypernatremia is another cerebrally mediated osmoregulatory response.

Animals

Effect of CRF, ACTH and adrenal steroids on sodium intake and excretion of rabbits.

The effect of CRF, ACTH and adrenal steroid hormones on the sodium intake and excretion of wild and laboratory rabbits was studied in our laboratory in detail. All these hormones are known to play important roles in the initiation and maintenance of stress-reaction. Intracerebroventricular (icv) infusion of CRF increased both sodium intake and excretion of rabbits on the day of the infusion, and the stimulated sodium turnover persisted for several days after the infusion stopped. Systemic administration of the same dose of CRF did not influence sodium intake or excretion. Icv infusion of CRF was accompanied by a rise in plasma cortisol and plasma corticosterone concentration. Plasma sodium concentration was unchanged despite the increased turnover. The elevated plasma concentration of adrenal steroid hormones indicates that icv infused CRF resulted in ACTH and consequent cortisol and corticosterone release. Earlier studies in our laboratory established that ACTH, and similarly cortisol and corticosterone, when injected systemically, also elicited increased sodium intake, which was accompanied by increased sodium excretion. The rise in sodium turnover occurred on the second or third day of ACTH or steroid administration. The difference in the time of onset of sodium appetite between icv CRF and ACTH or adrenal steroids indicates that CRF influences sodium intake by other mechanisms as well. These other contributing mechanisms are probably activated by the binding of CRF to the specific binding sites demonstrated earlier in the rabbit's brain. Its is possible, that the small natriuresis accompanying icv infusion of CRF has some role in the initiation of the sodium appetite.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Cortex Hormones

Intravenous hypertonic saline induces Fos immunoreactivity in neurons throughout the lamina terminalis.

Expression of Fos, the protein product of c-fos, was studied immunohistochemically in the forebrain of rats infused intravenously with hypertonic solutions. Intravenous 1.5 or 0.75 mol/l NaCl or 1.2 mol/l sucrose in 0.15 mol/l NaCl, but not isotonic 0.15 mol/l NaCl, caused increased Fos expression in the hypothalamic paraventricular and supraoptic nuclei and throughout the lamina terminalis (organum vasculosum laminae terminalis, median preoptic nucleus and subfornical organ). These results show that neurons in the lamina terminalis are activated by physiological increases in plasma tonicity and support an involvement of the lamina terminalis in osmoregulation.

Animals

Central administration of somatostatin suppresses the stimulated sodium intake of sheep.

The effect of intracerebroventricular (i.c.v.) infusion (50 micrograms/h over 3 h) of somatostatin (SOM) on Na and water intake of sheep was determined. In Na-deplete sheep, infusion of SOM-(28) but not SOM-(14) decreased (P less than 0.05) Na intake, while both SOM-(28) and SOM-(14) increased water intake. I.c.v. infusion of SOM-(28) did not significantly affect Na or water intake of Na-replete sheep. I.c.v. infusion of SOM-(28) decreased (P less than 0.01) Na intake but did not alter the high water intakes of water-deprived sheep or sheep infused i.c.v. with angiotensin II. The results are compatible with an inhibitory action of somatostatin on stimulated brain mechanisms subserving Na appetite but not on stimulated brain mechanisms subserving thirst. Somatostatin may antagonize the inhibition of thirst in Na-deplete sheep. The results suggest that somatostatin may have a regulatory role in ingestive behavior concerned with body fluid and Na homeostasis. The difference between SOM-(14) and SOM-(28) in decreasing the Na intake of Na-deplete sheep may be due to a difference in potency or mechanism of action.

Angiotensin II

Corticotropin-releasing factor enhances sodium and water intake/excretion in rabbits.

Sodium and water intake and excretion of wild rabbits was studied during intracerebroventricular (icv) infusion of corticotropin-releasing factor (CRF). Icv infusion of 200 and 600 pmol/h for 22 h induced changes in the ingestive and general behavior of animals. Increased consumption of 0.5 M NaCl solution was observed during the day of infusion, accompanied by increased sodium excretion, and food intake was decreased. The rabbits maintained the high sodium turnover, together with a high water turnover, for 2-3 days after the icv infusion stopped. Icv infusion of CRF induced strange behaviour in wild rabbits, they appeared to react with fright to normal daily events around them. The strange behaviour started about two hours after the beginning of icv infusion and disappeared immediately after the infusion stopped. On the basis of present and earlier observations, that systemic administration of adrenocorticotropin (ACTH) and adrenal steroid hormones induce increased sodium turnover, it is proposed that changes in the sodium and water metabolism might constitute part of the general stress reaction of the body.

Animals

Subfornical organ lesion decreases sodium appetite in the sodium-depleted rat.

The effect of subfornical organ (SFO) lesion on various models of ingestive behaviour was investigated in rats. Intake of water after 24 h water deprivation or systemic administration of hypertonic NaCl were not altered by SFO lesions. Intake of food or water after 24 h of food deprivation were not altered by SFO lesions. Intake of NaCl after furosemide-induced Na depletion was decreased by ablation of the SFO. This decrease in Na intake was ameliorated by pretreatment with a low dose of captopril. These results suggest that the SFO is involved in Na intake after Na depletion, but not in water or food intake following periods of water or food deprivation, respectively. The observation that a low dose of captopril can eliminate the decrease in Na appetite which occurred subsequent to SFO lesion suggests that other brain areas may also participate in Na-depletion-induced Na appetite.

Animals

Sodium and water intake of sheep, rabbits and cattle during ICV infusion of eledoisin.

The present study reports the effects of ICV administered eledoisin, the most potent anti/dipsogenic member of the tachykinin family, in three species. Sheep with chronic parotid fistula lost daily 200-400 mmol sodium in 3-4 l of saliva. During ICV infusion of eledoisin, 2 to 50 ng/min, a decrease in sodium intake was observed. If water was withheld for 22 hours, sheep normally drank 5.4 l water on presentation. During ICV infusion of eledoisin, 50 ng/min, water intake increased significantly. Wild rabbits lost 5 mmol sodium in 50 ml of urine after injection of furosemide. During ICV infusion of eledoisin, 30 ng/min, a decrease in sodium intake and an increase in water drinking was observed. Cows prepared with parotid fistula had access to sodium solution every other day to replace salivary sodium loss. During ICV infusion of eledoisin, 50 and 150 ng/min, a decrease in sodium intake occurred, and water intake was unaffected. These results confirm that central administration of eledoisin specifically influences ingestive behaviour in mammals and draws attention to some species differences in the observed effects.

Animals

Angiotensin and salt appetite of BALB/c mice.

The influence of systemic or intracerebroventricular (icv) administration of angiotensin II on the intakes of NaCl solution, water, and food was investigated in BALB/c mice. Systemic administration of angiotensin II had little, if any, influence on these ingestive behaviors. On the other hand, icv infusion of angiotensin II at 70 ng/day increased (P less than 0.05) intakes of NaCl solution and water by the third day of infusion. The amount of NaCl ingested daily during the infusion was two to three times body sodium content. The mean daily water intake increased to 40-60% of body weight. The vast increase in NaCl intake was not secondary to a natriuresis caused by the icv infusion of angiotensin II. The results suggest that angiotensin II has a direct effect on neural systems involved in sodium appetite in this species.

Angiotensin II

Effect of angiotensin-converting enzyme inhibitor on salt appetite and thirst of BALB/c mice.

The role of angiotensin II (ANG II) in Na-depletion-induced Na appetite of mice was investigated. Intraperitoneal injection of the angiotensin-converting enzyme inhibitor captopril at 1.7 mg/mouse (high dose) decreased the Na intake of the Na-depleted (furosemide-treated) mice by 80-85%. The decrease in Na intake was restored to the initial level by concurrent subcutaneous infusion of ANG II. High dose of captopril also decreased the Na intake of fluid-deprived, Na-depleted mice. High dose of captopril did not alter water intake in any of the four conditions examined, i.e., in fluid-replete, Na-depleted, water-deprived, or fluid-deprived, Na-depleted mice. Low dose of captopril (1.7 microgram/mouse) tended to or significantly enhanced Na intake of Na-depleted mice. Low dose of captopril, however, did not enhance water intake in any of the conditions examined. Both high- and low-dose captopril treatment decreased food intake in water-deprived mice, whether or not the mice were Na depleted as well. The addition of captopril (0.1 or 1.0 mg/ml) to the drinking water did not influence Na or food intake. Water intake was enhanced during treatment with the low but not with the high dose of captopril. The results are consistent with the proposition that ANG II is involved in the Na appetite of Na-depleted mice. ANG II does not appear to have a role in water intake of Na-depleted or water-deprived mice, but neural mechanisms in which angiotensin has a role may influence food intake of water-deprived mice.

Angiotensin-Converting Enzyme Inhibitors

Decreased cerebral sodium concentration and sodium appetite in BALB/c mice.

BALB/c mice were allowed free access to water, food, and 0.3 M NaCl. Intracerebroventricular infusion of 0.7 M mannitol in artificial cerebrospinal fluid (CSF) was used to reduce CSF sodium concentration. The infusion was made at 24 microliters/day, which was similar on a body weight basis to the rate that evoked a large increase in sodium appetite in sheep. Reduction of CSF sodium concentration did not increase the voluntary sodium intake of sodium-replete mice or furosemide-treated, sodium-depleted mice. Thus, in contrast to findings in sheep and cattle and similar to the findings in the laboratory rat and wild rabbits, changes in cerebral sodium concentration are apparently not involved in the sodium appetite of mice.

Animals

Cerebral sodium sensors in the sodium-deplete sheep.

The sodium intake of sodium deplete sheep was studied during local, push-pull perfusion of different solutions within the third cerebral ventricle. Sheep were made sodium deplete by continuous loss of parotid saliva, and were allowed access to 0.6 M NaHCO3 solution for 2 h daily. Local perfusion within the third cerebral ventricle was performed before and during the access to sodium solution. Four perfusion sites were used: anterior dorsal and ventral, and posterior dorsal and ventral. Perfusion of 200 mM Na-csf caused a decrease in sodium intake at each perfusion site. Perfusion of ouabain, 10(-6) M, caused a reduction in sodium intake only during perfusions within the anterior portion of the third ventricle. The results may indicate that specific neuronal elements sensitive to changes in intracellular sodium concentration are located around the anterior portion of the third cerebral ventricle. These neurones, however, are not exclusive sites from where sodium intake of sodium deplete sheep can be influenced.

Animals

Effect of varying the composition of CSF on urinary excretion in the conscious rat.

The effect of 4 h intracerebroventricular (i.c.v.) infusion of various solutions on the renal excretion of Na and K and urinary flow rate was examined in conscious unrestrained rats not water-loaded. I.c.v. infusion of iso- or hypo-osmotic solutions with low [Na] induced a diuresis but did not alter renal excretion of Na or K. I.c.v. infusion of hyperosmotic solutions with normal or elevated [Na] induced a natriuresis and kaliuresis. Hyperosmotic mannitol solutions caused a diuresis but hyperosmotic NaCl or sucrose solutions caused a diuresis only when the rats drank water and/or sodium solution during the infusion period. I.c.v. infusion of hyperosmotic NaCl but not hyperosmotic mannitol increased blood pressure. The results are consistent with the involvement of cerebral osmosensors in the control of urinary excretion of Na and K, and of cerebral Na sensors in the control of urinary flow rate. Increased blood pressure, as occurred during i.c.v. infusion of hyperosmotic NaCl, may also contribute to the increased excretion of Na and K.

Animals

Intracerebroventricular saccharide infusions inhibit thirst induced by systemic hypertonicity.

The effect of intracerebroventricular (i.c.v.) infusion of various iso- and hypertonic saccharide solutions on water intake stimulated by intracarotid (i.c.) infusion of hypertonic NaCl was studied in sheep. Without an i.c.v. infusion, water intake during a 10-min period following an i.c. infusion of 4 M NaCl (1.4 ml/min over 20 min) was 1.5-2.0 litres. I.c.v. infusion of all saccharide solutions (made up in artificial cerebrospinal fluid (CSF) with no Na) tested, 0.27 or 0.7 M D-glucose, L-glucose, 2-deoxyglucose and sucrose, decreased (35-65%) water intake. In general, there was little or no difference in antidipsogenic effectiveness between the isotonic and the hypertonic solutions or between the different saccharides used. I.c.v. infusion of artificial CSF ([Na] = 150 mM) did not alter water intake. CSF [Na] was decreased by all of the saccharide infusions. CSF osmolality was increased by the hypertonic solutions, was decreased by the artificial CSF and was unchanged by the isotonic solutions infused. The observation that the antidipsogenic effectiveness of saccharides which readily cross the blood-brain barrier (BBB; D-glucose, 2-deoxyglucose) was similar to that of saccharides which do not readily cross the BBB (sucrose, L-glucose) contrasts with effects reported on sodium appetite and suggests that the Na sensors involved in the inhibition of hypertonic NaCl-stimulated water intake are located close to or on the surface of the brain ventricular system, i.e. are responsive to changes in CSF [Na].(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Voluntary ethanol intake of individually- or pair-housed rats: effect of ACTH or dexamethasone treatment.

The effect of ACTH or dexamethasone treatment on ingestion of 10% ethanol, 0.5 M NaCl and water was studied in individually- and pair-housed rats. Crowding or decreasing the amount of space per rat by increasing the number of rats per cage from 1 to 2, together with the associated increase in social interactions caused a large increase in ethanol intake. In pair-housed rats and in rats housed alone, ACTH treatment caused a large increase in Na intake but no change in ethanol intake. In pair-housed rats and in rats housed alone, dexamethasone treatment caused no change in either ethanol or Na intake. Thus, it would appear that the induction or maintenance of a high ethanol intake of rats during crowding, a presumed social stressor, can not be attributed entirely to either an increase in blood ACTH levels with the subsequent increase in glucocorticoid hormones or to a decrease in blood ACTH and natural glucocorticoid hormone levels. However, the possibility that ACTH and/or adrenocorticoid hormones, combined with other physiological or environmental factors, causes stressor-induced ethanol intake cannot be excluded.

Adrenocorticotropic Hormone

Sodium appetite and thirst in cattle subjected to dehydration.

Cows having free access to water (hydrated) or deprived of water for 26.5 h (dehydrated) were infused for 3 h with angiotensin II or captopril solutions intravenously (iv) or intracerebroventricularly (icv) beginning 1 h before access to 0.3 M NaHCO3/NaCl solution for 2 h. The results agree with the results of the experiments with the same agents and doses in Na-deficient cows. Only iv infusion of angiotensin II stimulated Na appetite and only icv infusion of angiotensin II stimulated thirst. Therefore, barriers to the penetration of angiotensin II in the brain determined the particular site of action and elicited response. Dehydration did not stimulate Na appetite and, as shown previously, Na deficiency did not stimulate thirst, but both behaviors seem to be influenced by angiotensin-related mechanisms in the brain. The inability of iv angiotensin II to stimulate Na appetite in hydrated cows might be explained by the lack of a response caused by, and common to, Na deficiency and dehydration, e.g., upregulation of angiotensin II receptors, or reduced extracellular fluid volume.

Animals