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Repeated lipopolysaccharide administration produces tolerance to anorexia and fever but not to inhibition of thirst in rat.

In 24 h water and food deprived rats, a single lipopolysaccharide treatment (0.25, 0.50 and 1 mg/kg, i.p.) induced inhibition of thirst and hunger as well as fever. Moreover, the same treatment increased serum cytokines, plasma nitrite/nitrate and corticosterone and urinary prostaglandin levels. In another group of 24 h water and food deprived rats, a repeated lipopolysaccharide treatment (0.25, 0. 50 and 1 mg/kg, i.p.), given at 0, 2, 6, 12 and 24 h, induced tolerance to inhibition of food intake and fever, but not to antidipsogenic effect. Moreover, the same repeated treatment stopped the increase in serum cytokines, plasma corticosterone and urinary prostaglandin concentrations and failed to reduce plasma nitrite/nitrate levels. This data, together with the evidence that a pretreatment with N(G)-nitro-L-arginine methyl ester hydrochloride (L-NAME) (5 and 10 microg per rat) reverses the antidipsogenic effects in lipopolysaccharide tolerant rats, suggests that the persistent reduction of water intake after a repeated lipopolysaccharide treatment is due to the antidipsogenic action of nitric oxide in the brain.

Animals↗

Role of brain angiotensin in thirst and sodium appetite of rats.

The role of brain angiotensin II (ANG II) in water, Na and food intake of rats was studied. Intracerebroventricular (i.c.v.) infusion (100 micrograms/h) of the non-peptide ANG II receptor antagonist losartan (type 1), but not PD123319 (type 2), completely blocked water intake caused by i.c.v. infusion of ANG II at 50 ng/h. Following food deprivation, food intake was reduced by PD123319 and associated water intake was decreased by losartan or PD123319. Neither water intake after water deprivation nor Na intake after Na depletion was altered by losartan or PD123319. In conclusion, evidence was consistent with a role for brain ANG II in both food and water intake after food deprivation but not in thirst subsequent to water deprivation or Na intake after Na depletion alone.

Angiotensin II↗

Protein-peptide complexes of angiotensins in the mechanisms of thirst motivation.

A comparative analysis of the physiological actions of native angiotensin I and angiotensin II and protein-peptide complexes of angiotensin I and angiotensin II on drinking behavior in rats was performed. The protein-peptide complexes of angiotensin I and angiotensin II had wider spectra of physiological activity than the native peptides. Protein-conjugated angiotensin I, unlike the motivationally neutral native angiotensin I, produced marked activation of innate drinking behavior in mice. The protein-peptide complex of angiotensin II showed selective effects on acquired drinking behavior. These data are assessed with respect to the specific involvement of protein-peptide complexes of angiotensin I and angiotensin II in the mechanisms of thirst motivation during the performance of innate and acquired habits.

Angiotensin I↗

Interaction of hunger and thirst in the motivational arousal underlying hoarding behavior in the rat.

Rats were studied in which hoarding of food could be elicited by a 16-hr food deprivation schedule. It was found that (a) prolonged water restriction, with food ad lib, failed to induced hoarding in spite of a spontaneous reduction in food intake and a fall in body weight to below levels normally critical for the onset of hoarding. Thus, different physiological deficits are not necessarily equivalent or additive in the elicitation of food hoarding, and water lack may suppress it. (b) Hoarding behavior was released in water-deprived animals by a brief drink of water. A 30-min delay to allow absorption of the ingested water significantly enhanced the release of hoarding. Air drinking by water-deprived rats did not release hoarding. Thus, the absence of hoarding during water lack may be caused by an active inhibitory process that can itself be inhibited or canceled by postingestional effects of drinking but not by oropharyngeal stimulation mimicking water signals. (c) Although water lack prevented hoarding in response to concomitant self-imposed fasting, hoarding ensued at maximal rates when a further mild degree of food deprivation was superimposed. Thus, the inhibition of hoarding by dehydration operates subtractively, not multiplicatively, and, with free access to food, the inhibition of hoarding by thirst tends to be balanced, exactly, by the facilitatory effect of concomitant fasting; thus superadded food deprivation can take full effect. It is concluded that in states of motivational arousal, specific inhibitory mechanisms may inhibit, subtractively, certain activities biologically irrelevant to prevailing physiological needs.

Animals↗

Thirst and sodium appetite after colloid treatment in rats.

Subcutaneous injection of polyethylene glycol (PEG) solution produced a progressive sequestration of extracellular fluid at the injection site. Appropriately, PEG-treated rats showed both thirst and sodium appetite. However, water intake began within 1 to 2 hr after the injections, whereas consumption of NaCl solution did not start until 3-4 hr later. Then rats ingested both fluids alternately until plasma volumes were restored, whereupon saline intake became even more prominent while water was consumed due to induced osmoregulatory needs. These three phases were seen regardless of the dose of PEG that was administered or the concentration of saline that was available. In contrast, after maintenance on a sodium-deficient diet for 2-4 days, or after bilateral adrenalectomy, rats increased their intake of saline immediately after PEG treatment. These and other findings suggest that the delayed onset of sodium appetite after PEG treatment that occurs when rats are maintained on standard sodium-rich chow results from the buffer provided by surplus extracellular fluid in those animals. They further suggest that sodium appetite is not directly associated with decreases in plasma volume or sodium concentration but instead may be stimulated by decreased availability of sodium in the brain.

Animals↗

Thirst modulates a perception.

Does thirst make you more likely to think you see water? Tales of thirsty desert travelers and oasis mirages are consistent with our intuitions that appetitive state can influence what we see in the world. Yet there has been surprisingly little scrutiny of this appetitive modulation of perception. We tested whether dehydrated subjects would be biased towards perceptions of transparency, a common property of water. We found that thirsty subjects have a greater tendency to perceive transparency in ambiguous stimuli, revealing an ecologically appropriate modulation of the visual system by a basic appetitive motive.

Binomial Distribution↗

Hypertension and thirst outlasting renal vasoconstriction as effects of a brief evaluation of systemic angiotensin II in sheep.

The influence of 10 min intracarotid (i.c.) and intravenous (i.v.) infusions of angiotensin II (Ang II; 20 pmol kg-1 min-1) on carotid blood pressure (cBP) and renal blood flow (RBF) was studied in unanaesthetized ewes without and with pre-treatment with the alpha 1- and beta-adrenoceptor blocker labetalol. RBF was also monitored during 30 min intracerebroventricular (ICV) infusions of Ang II at 2 pmol kg-1 min-1. The i.c. infusions of Ang II induced about 50 mmHg rise in cBP. A steep decline occurred during 5 min post-infusion, followed by a much slower reduction with the cBP remaining above control level at 40 min post-infusion. The pressure elevation induced by i.v. Ang II was less pronounced but exhibited a similar pattern. Labetalol significantly reduced the pressor response to i.c. as well as i.v. Ang II. The i.c. and i.v. infusions of Ang II conspicuously reduced the RBF regardless of whether the ewes were labetalol-treated or not. At 5 min after the infusions RBF had returned to control level. The ICV infusions did not influence the RBF. Ang II i.c. elicited thirst in 50% of the ewes with the urge to drink remaining at 40 min post-infusion. The dipsogenic response was not reduced by labetalol pretreatment. The results imply that no cerebral component contributes to the reduction in RBF induced by systemic Ang II. However, a centrally mediated action seems to be the cause of the long-lasting post-infusion cBP elevation and dipsogenic response.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗

The effect of the putative AT2 agonist, p-aminophenylalanine6 angiotensin II, on thirst and sodium appetite in rats.

Intracerebroventricular injection of the putative AT2 agonist, p-aminophenylalanine6 angiotensin II (p-NH2Phe6-Ang II), caused dose-dependent increases in intakes of water and NaCl similar to those produced by angiotensin II but requiring more than one thousand times the dose. Very large doses of another AT2 agonist, angiotensin(1-7) heptapeptide (Ang(1-7)), had no effect on intakes of water and NaCl up to 24 h after injection, nor did Ang(1-7) affect angiotensin II-induced drinking when the two peptides were given together. The AT1 antagonist, losartan, but not the AT2 antagonist, CGP 42112B, inhibited p-NH2Phe6-Ang II- and angiotensin II-induced drinking, suggesting that p-NH2Phe6-Ang II, like angiotensin II, acts on AT1 but not AT2 receptors. However, large doses of the AT2 antagonist, PD 123319, inhibited drinking in response to both dipsogens. Since p-NH2Phe6-Ang II- and angiotensin II-induced drinking were unaffected by CGP 42112B, this could mean that there are different AT2 receptor subtypes of which only the PD 123319-sensitive one is involved in drinking. But because of the very large doses of PD 123319 used it is also likely that there was loss of receptor specificity resulting in cross-reaction of PD 123319 with AT1 receptors. The results do not favour involvement of AT2 receptors in angiotensin-induced thirst and sodium appetite in the short term.

Angiotensin I↗

The role of a renal thirst factor in drinking induced by extracellular stimuli.

1. Rats in normal fluid balance drank water 1-2 hr after complete ligation of the inferior vena cava either above or below the renal veins. At the same time there was a fall in urine flow and excretion of electrolyte, especially after caval ligation above the renal veins, so that the animals ended the initial 6 hr period in positive fluid balance.2. Caval ligation was relatively ineffective as a stimulus to drinking after bilateral nephrectomy, but was effective in rats made anuric by ureteric ligation.3. Rats subjected to caval ligation and offered a choice between water and 1.8% saline (w/v) drank water, despite the increasing hypotonicity of the body fluids thereby resulting.4. During the secondary polydipsia, which generally occurred on about the third day after caval ligation as renal function was recovering, there was an increased preference for 1.8% saline.5. Constriction of the aorta above the renal arteries, or constriction of both renal arteries, also caused drinking, oliguria and the development of positive fluid balance.6. Constriction of the aorta below the renal arteries, or after nephrectomy, was ineffective as a stimulus to drinking.7. Saline extracts of renal cortex caused rats in normal water balance to drink. Activity was destroyed by boiling the extract for 10 min. Renal medullary and hepatic extracts were without effect on drinking.8. It proved impossible to separate dipsogenic and pressor activities of renal extracts during the different stages of fractionation which lead to the production of renin; disappearance of one activity was invariably accompanied by disappearance of the other.9. Dipsogenic and pressor actions were greater in nephrectomized rats than in normal rats.10. Both extractable dipsogenic factor and extractable pressor activity were reduced by treating the rat with DOCA and saline for several weeks beforehand.11. The renal dipsogen therefore has similar properties to renin. It may prove to be identical with renin, particularly in view of the fact that angiotensin also stimulates drinking.12. Adrenalectomy did not affect drinking induced by renin or by caval ligation.13. It is concluded that the renin angiotensin system may play a role in the genesis of the thirst which follows certain extracellular stimuli.

Adrenalectomy↗

The effect on drinking in the rat of intravenous infusion of angiotensin, given alone or in combination with other stimuli of thirst.

1. Intravenous infusion of angiotensin causes rats which are in water balance to drink water.2. The mean amount of angiotensin needed to initiate drinking was 29.1 +/- 4.6 mug/kg (S.E. of mean) in twenty normal rats, and 15.7 +/- 2.1 mug/kg in thirty-four nephrectomized rats.3. The nephrectomized rat is therefore more sensitive to this action of angiotensin than the rat with intact kidneys.4. The rates of infusion (0.05-3.0 mug/kg(-1) min(-1)) which cause drinking are comparable to those used to produce other effects in rats.5. Angiotensin restores the drinking response of the nephrectomized rat subjected to caval ligation to a value similar to that obtained in the uninfused normal rat subjected to caval ligation.6. The effects of angiotensin and hypertonic saline on drinking are additive when both substances are administered to nephrectomized rats.7. These experiments provide further support for the view that the renin-angiotensin system is concerned in extracellular thirst.

Angiotensin II↗

"Antidotal thirst": a response to intoxication.

Albino rats increased their intake of water soon after they were given a load of 0.12 molar lithium chloride in the stomach. Alterations in blood volume and tonicity could not account for the magnitude of the thirst observed, which served to facilitate the renal excretion of the toxic lithium ions.

Animals↗

Emotionally induced increases in effective osmotic pressure and subsequent thirst.

Following a brief period of handling or enclosed rotation, rats increased the frequency of drinking relative to eating. Handling also delayed or eliminated eating behavior in hypoosmotic rats. Osmometric analysis revealed a rapid increase in serum osmolality during stress which may account for the emergence of thirst and disruption of eating.

Animals↗

Thirst satiation and the temperature of ingested water.

Ingestion in rats given limited daily access to water of 12 degrees , 24 degrees , and 37 degrees C is a positive function of water temperature, even though ingestion of warm water decreases blood osmotic concentration faster than cold water. The paradox suggests that temperature-dependent gastric factors and water-transport factors determine stomach distention cues of thirst satiation.

Animals↗

The renin-angiotensin system and thirst: a reevaluation.

Systemic injections of renin that stimulate substantial amounts of drinking in nephrectomized rats can produce plasma renin activities that fall well above the physiological range. Furthermore, increases in plasma renin activities that occur in rats with intact kidneys during experimental hypotension appear to be too low to provide the basis for the observed elevations in water intake. These findings question the contribution of the renin-angiotensin system to thirst under normal physiological conditions.

Angiotensin II↗

Cerebral osmoregulation of renal sodium excretion--a response analogous to thirst and vasopressin release.

Studies in sheep have shown that renal excretion of sodium may be under osmoregulatory control. When sheep become dehydrated, or are infused intravenously with hypertonic saline, they increase renal Na excretion in addition to secreting vasopressin and developing a thirst. These natriuretic, antidiuretic, and dipsogenic responses to dehydration and hypertonicity can be greatly reduced by lowering the cerebrospinal fluid NaCl concentration or by prior ablation of tissue in the anterior wall of the third ventricle. Lowering of cerebrospinal fluid NaCl concentration also prevents postprandial natriuresis which normally occurs in association with a postprandial increase in plasma Na concentration and tonicity. We propose that there is a cerebral osmoregulatory control of Na excretion which may interact with volume influences from the cardiovascular system to regulate renal Na output. The effector mechanism from brain to kidney mediating such cerebral control of Na excretion is probably hormonal.

Animals↗

Separate lateral hypothalamic pathways for extracellular and intracellular thirst.

Small lesions of the midlateral zone of the lateral hypothalamus in rats attentuated water intake elicted by the central microinjection angiotensin or by the peripheral injection of isoproterenol or renin without attenuating drinking to peripherally administered hypertonic saline. Lesions placed further lateral in the hypothalamus, which destroyed the medial aspects of the internal capsule and globus pallidus, produced a marked decrease in water intake induced by hypertonic saline. Abaltion of the ventromedial nucleus of the hypothalamus increased drinking elicited by angiotension, isoproterenol, or renin. These results suggest that extracellular and intracellular thirst stimuli are mediated by separate neural pathways at the level of the lateral hypothalamus.

Angiotensin II↗

Thirst and salt appetite responses in young and old Brown Norway rats.

Male Brown Norway rats aged 4 mo (young) and 20 mo (old) received a series of experimental challenges to body fluid homeostasis over approximately 3 mo. Water was available for drinking in some tests, and both water and 0.3 M NaCl were available in others. The series included three episodes of extracellular fluid depletion (i.e., furosemide + 20 h of sodium restriction), two tests involving intracellular fluid depletion (i.e., hypertonic saline: 1 or 2 M NaCl at 2 ml/kg body wt sc), one test involving overnight food and fluid restriction, and testing with captopril adulteration of the drinking water (0.1 mg/ml) for several days. Old rats were significantly heavier than young rats throughout testing. Old rats drank less water and 0.3 M NaCl after sodium deprivation than young rats, in terms of absolute and body weight-adjusted intakes. Old rats drank only half as much water as young rats in response to subcutaneous hypertonic NaCl when intakes were adjusted for body weight. Old rats drank less 0.3 M NaCl than young rats after overnight food and fluid restriction when intakes were adjusted for body weight. In response to captopril adulteration of the drinking water, young rats significantly increased daily ingestion of 0.3 M NaCl when it was available as an alternative to water and significantly increased daily water intakes when only water was available, in terms of absolute and body weight-adjusted intakes. Old rats had no response to captopril treatment. These results add important new information to previous reports that aging rats have diminished thirst and near-absent salt appetite responses to regulatory challenges.

Aging↗

Obestatin acts in brain to inhibit thirst.

Derived from the same prohormone, obestatin has been reported to exert effects on food intake that oppose those of ghrelin. The obestatin receptor GPR39 is present in brain and pituitary gland. Since the gene encoding those two peptides is expressed also in those tissues, we examined further the possible actions of obestatin in vivo and in vitro. Intracerebroventricular administration of obestatin inhibited water drinking in ad libitum-fed and -watered rats, and in food-and water-deprived animals. The effects on water drinking preceded and were more pronounced than any effect on food intake, and did not appear to be the result of altered locomotor/behavioral activity. In addition, obestatin inhibited ANG II-induced water drinking in animals provided free access to water and food. Current-clamp recordings from cultured, subfornical organ neurons revealed significant effects of the peptide on membrane potential, suggesting this as a potential site of action. In pituitary cell cultures, log molar concentrations of obestatin ranging from 1.0 pM to 100 nM failed to alter basal growth hormone (GH) secretion. In addition, 100 nM obestatin failed to interfere with the stimulation of GH secretion by GH-releasing hormone or ghrelin and did not alter the inhibition by somatostatin in vitro. We conclude that obestatin does not act in pituitary gland to regulate GH secretion but may act in brain to alter thirst mechanisms. Importantly, in rats the effects of obestatin on food intake may be secondary to an action of the peptide to inhibit water drinking.

Angiotensin II↗