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E Tarjan

Publications and source records attributed to E Tarjan.

At least 37 records · Page 2Linked to original sources

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↗

Localization of angiotensin II receptor binding in rabbit brain by in vitro autoradiography.

Binding of 125I-[Sar1,Ile8] angiotensin II (AII) to sections of brains from both wild and laboratory rabbits was determined by in vitro autoradiography. In the forebrain, specific high density binding was observed in the olfactory bulb, organum vasculosum of the lamina terminalis (OVLT), subfornical organ, median eminence, lateral septum, median preoptic nucleus and hypothalamic paraventricular, supraoptic and arcuate nuclei. In the midbrain, binding of the radioligand was observed in the interpeduncular and parabrachial nuclei, in the locus coeruleus, and ventrolateral pons. In the hind brain, there was dense binding of 125I-[Sar1,Ile8] AII to the nucleus of the solitary tract (NTS) and to both rostral and caudal parts of the reticular formation of the ventrolateral medulla oblongata. Weaker specific binding of the radioligand to the molecular layer of the cerebellum, to the nucleus of the spinal trigeminal tract, dorsal motor nucleus of the vagus, area postema, and to a band of tissue connecting the NTS to the ventrolateral medulla was also observed. Binding of the ligand to circumventricular organs such as the OVLT, subfornical organ, and median eminence suggests that these are sites in the brain of the rabbit at which blood-borne AII may exert influences on the central regulation of fluid balance and pituitary hormone secretion, although AII of neuronal origin could also act at these sites. Binding of the radioligand in several other brain regions suggests that angiotensin II of cerebral origin may be involved in a number of different aspects of brain function in the rabbit. The finding of dense binding in the NTS and ventrolateral medulla, which are involved in autonomic activity and are also sites of catecholamine-containing neurons, raises the possibility of angiotensin interaction with these neurons and involvement in autonomic function.

Angiotensin II↗

Atrial natriuretic peptide inhibits water and sodium intake in rabbits.

The effect of atrial natriuretic peptide (ANP) on water and sodium intake was investigated in wild rabbits, a species which does not drink water following i.c.v. or i.v. administration of angiotensin II but develops sodium appetite following i.c.v. infusion of angiotensin II. ANP was given during or after depletion of extracellular fluid volume: hemorrhage, fluid deprivation and administration of furosemide. Systemically administered ANP reduced the water, but not the sodium intake of wild rabbits. I.c.v. administration of ANP inhibited both water and sodium intake. The suppression of thirst following both i.v. and i.c.v. administration of ANP indicates that inhibition of the effect of angiotensin II is not the exclusive mechanism and the circumventricular organs are probably not the exclusive sites of action for ANP. The inhibition of sodium appetite in wild rabbits was consistent with earlier proposals that ANP acts through the inhibition of the effects of angiotensin II. Reduction of food intake coincident with administration of ANP was also noted, but dose-dependent decrease was not observed.

Angiotensin II↗

Influence of pregnancy and lactation on Na appetite of BALB/c mice.

The effect of pregnancy and lactation on sodium appetite, water, and food intake of young adult BALB/c mice was studied. Voluntary sodium intake increased fourfold during the last 3 days of gestation. Water and food intake and body weight also increased significantly. During the last 14 days of lactation, sodium intake was increased significantly three- to fivefold, relative to base-line period and a control group. Large significant increase of water and food intake occurred also during lactation. After weaning, intake returned to base line. Calculation of sodium sequestered in young in utero and provided to pups during lactation showed increased voluntary intake in great excess of metabolic need, suggestive of hormonal determination of sodium appetite during reproduction as in wild rabbits.

Animals↗

Na deficiency and other physiological influences on voluntary Na intake of BALB/c mice.

BALB/c mice exhibited a small hedonic intake of 0.3 M NaCl, which was not influenced by change from high to low salt diet or by withholding access to NaCl solution for 1 day. Sodium deficiency produced by furosemide injection consistently caused a highly significant increase in sodium intake. Sodium deficiency was corrected rapidly over 10 min. The appetite was specific for sodium in a cafeteria experiment and was exhibited by naive animals on the first experience of sodium deficiency and subsequent access to salt. The appetite was significantly related to the extent of body deficit, but overdrinking proportionate to initial deficit was characteristic. No increase in sodium intake occurred with repeated experience of sodium deficit. Water deprivation caused a subsequent increase of sodium intake. Total deprivation of food for 48 h caused a large sustained increase of sodium intake, but reduction of food intake by 40% did not influence sodium appetite.

Animals↗

Decrease of brain extracellular fluid [Na] and its interaction with other factors influencing sodium appetite in sheep.

It has been shown previously in sheep that physiological increase of cerebrospinal fluid (CSF) [Na] by infusion of 0.5 M NaCl artificial CSF causes a large reduction of sodium appetite of the sodium-deplete animal. Equivalent increase of CSF osmotic pressure caused by infusion 0.7 M mannitol artificial CSF which lowers CSF [Na] causes a doubling of sodium appetite. The results of the experiments here show that simple dilution of CSF [Na] with isotonic mannitol CSF, as distinct from use of hypertonic 0.7 M mannitol CSF, is an equally effective strong stimulus of sodium appetite. Lowering CSF [Na] concentration stimulates salt appetite in the severely sodium-deplete as well as in the mild to moderately sodium-deplete animal, and the effect of decrease of CSF [Na] on sodium appetite is sustained over 48 h. In addition, i.c.v. infusion of angiotensin II for the preceding 22 h at a rate which is an effective stimulus of both water and sodium solution intake in the sodium-replete animal, in fact, significantly decreased the sodium appetite stimulating effect of reduction of CSF [Na] in the Na-deplete animal.

Angiotensin II↗

Natriuresis induced by localized perfusion within the third cerebral ventricle of sheep.

Push-pull perfusion was performed at four different sites in the third cerebral ventricle of conscious sheep. The recovery of the infused solution was 75-90%, suggesting a localized change in the ionic composition and osmolality restricted to a relatively small area in the cerebrospinal fluid (CSF). Sodium and potassium excretion and urine flow were studied before, during, and after perfusion of 200, 150, and 100 mM Na-CSF. Localized perfusion in the anterior dorsal third ventricle (AD3V) of 200 mM Na-CSF caused an increase in sodium and potassium excretion, in urine flow, and a decrease in free water clearance. Perfusion of 200 mM Na-CSF at the other three perfusion sites, i.e., anterior ventral third ventricle, posterior dorsal third ventricle, and posterior ventral third ventricle, did not influence sodium excretion and urine flow. Perfusions with 150 and 100 mM Na-CSF did not cause any change in sodium, potassium excretion, or urine flow at any of the four perfusion sites. These results suggest that sensors sensitive to changes of sodium concentration are located close to the ventricular surface in the anterior dorsal part of the third cerebral ventricle. When stimulated with increased sodium concentration they will initiate increased sodium excretion.

Animals↗

Role of angiotensin in sodium appetite of sodium-deplete sheep.

The role of the renin-angiotensin system (RAS) in the Na appetite of Na-deplete sheep was investigated. Intravenous infusion of the angiotensin-converting enzyme inhibitor, captopril, at 0.01 or 0.1 mg X kg-1 X h-1 did not cause any change in Na intake, although the higher dose caused a marked decrease in mean arterial blood pressure. Intravenous infusion of captopril at 1.0 mg X kg-1 X h-1 over 24 h decreased Na intake by 45-55% in the absence of any change in Na loss. The decrease in Na intake was restored to base-line level or above by concurrent intravenous infusion of angiotensin II (ANG II) at 3.8 or 24 micrograms/h over 24 h but not by intracerebroventricular (ICV) ANG II at 3.8 micrograms/h. In addition, ICV infusion of 0.7 M mannitol (1 ml/h over 3 h), which reduced cerebrospinal fluid (CSF) and brain extracellular fluid [Na], still increased Na intake when combined with intravenous captopril. Water intake was not altered during intravenous captopril or ANG II alone but was increased during ICV ANG II or 0.7 M mannitol (with or without iv captopril). In conclusion, these results suggest that the RAS is involved in the Na appetite of the Na-deplete sheep. Furthermore, it would appear that the brain area involved is one without a blood-brain barrier but with a CSF-brain barrier, such as one of the circumventricular organs. Also, it would appear that the effect of lowered cerebral Na and the effect of activation of the renin-angiotensin system on Na appetite are independent.

Angiotensin II↗

Angiotensin and Na appetite of sheep.

The effect of both intravenous (iv; 24 micrograms/h) and intracerebroventricular (ivt; 3.8 micrograms/h) infusion over 1-2 days of angiotensin II (ANG II) on Na intake of both Na-replete and -deplete sheep (i.e., 22 h loss of parotid saliva) was observed. In Na-replete sheep with continuous access to water and 2-h daily access to 0.5 M NaCl solution, both iv and ivt ANG II caused an increase in Na intake. The increase in Na intake caused by iv or ivt ANG II was preceded by a Na deficit due to increased urinary Na excretion. The increase in Na intake was eliminated by the continuous return of urine. In Na-deplete sheep with continuous access to water and 2-h daily access to 0.6 M NaHCO3 solution, iv ANG II caused no change in Na loss but a small increase in Na intake during the 1st day of infusion. The ivt ANG II caused no change in Na loss or in Na intake. The iv ANG II caused a small and inconsistent increase in water intake in Na-replete sheep but did not cause any change in water intake of Na-deplete sheep. The ivt ANG II caused a large increase in water intake in both Na-replete and -deplete sheep. In both Na-replete and -deplete sheep, iv ANG II did not alter cerebrospinal fluid or plasma [Na] or osmolality but decreased plasma [K]. The ivt ANG II decreased both cerebrospinal fluid and plasma [Na] and osmolality. The results of the present experiments are consistent with the proposition that the ANG II-induced Na appetite in sheep is largely due to an ANG II-induced Na loss preceding the development of appetite.

Angiotensin II↗

Cerebrospinal fluid sodium concentration and salt appetite.

Infusion into a lateral brain ventricle (IVT) of different hypertonic (0.7 M) saccharide solutions decreased [Na+] of cerebrospinal fluid (CSF). Increased Na appetite of moderately Na-deplete sheep was observed during infusion of mannitol, L-glucose or L-fucose, while no change was observed during infusion of D-glucose, D-fucose, D-mannose, 2-deoxy-D-glucose, 3-O-methyl-glucose or fructose. In other experiments, increased Na appetite was observed during infusion of 2.3 mM phlorizin (a relatively specific blocker of Na-coupled glucose transport into cells) or 2.3 mM phlorizin plus 0.7 M D-glucose. In addition, phlorizin eliminated the characteristic decrease in Na appetite but did not affect the increase in water intake caused by IVT infusion of hypertonic NaCl which increased [Na+] of CSF. The results suggest that: (a) there are sensors within the neuropil which respond to change of [Na+] and influence Na appetite, and that these changes of [Na+] are induced deep within the neuropil by those saccharides which do not cross the blood-brain barrier or enter cells; change of CSF[Na+] alone is not sufficient to alter appetite but a change in brain extracellular fluid (ECF)[Na+] is probably necessary; (b) the theory is advanced that the stimulus for altered Na intake could be altered brain ECF[Na+] producing a change in cerebral intracellular fluid (ICF)[Na+] of the sensors; and (c) phlorizin, in reducing or blocking Na-coupled glucose transport, could increase Na appetite by producing a fall in ICF[Na+] of the specific neurones subserving sodium appetite or prevent a decrease in Na appetite caused by IVT infusion of hypertonic NaCl by preventing an increase in ICF[Na+] of this same neuronal system.

Animals↗

The voluntary correction of sodium deficiency by the rabbit.

The behaviour involved in the correction of sodium deficit has been studied in wild rabbits and also laboratory bred rabbits. They were offered 0.5 M NaCl to drink. In adrenalectomized wild rabbits variable sodium deficits were produced by withdrawal of mineralocorticoid for 24-72 hr. Correction of the deficit was remarkably precise and was achieved in 9-24 hr, being slower with smaller deficits. That is, the rate of drinking was almost commensurate with the degree of body deficit. No overdrinking occurred by 24 hr. Repetition of the experiment with 24 hr deficiency and with the offer of a cafeteria of 0.5 M NaCl, 0.5 M KCl, 0.25 M CaCl2 and 0.25 M MgCl2 showed the increased appetite was specific for NaCl. Both wild and laboratory rabbits, adrenally intact, were made sodium deficient by the diuretic furosemide. Voluntary salt intake did not peak until 6-12 hr later reflecting the characteristic delay in the genesis of salt appetite. If presentation of salt were delayed 24 hr after furosemide, the highest rate of intake was seen immediately in both wild and laboratory rabbits, but the wild rabbits were much faster in fully correcting body deficit. Infusion of isotonic NaCl, adequate to correct the deficit, given during the third-sixth hour of access to NaCl under the 24 hr delay of presentation regime, halved salt appetite over this period, and by 9-12 hr it was abolished. Polyethylene glycol induced subcutaneous fluid sequestration, salt appetite and thirst but caused an obvious severe deterioration in the animals condition.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Glands↗

Water and salt intake of wild rabbits (Oryctolagus cuniculus (L)) following dipsogenic stimuli.

Wild rabbits trapped in their natural habitat and adapted to laboratory conditions were studied. Food, water and electrolyte (0.5 M-NaCl, 0.5 M-KCl, 0.25 M-MgCl2 and 0.25 M-CaCl2) consumption, urinary volume and sodium losses were monitored daily following stimuli which were found dipsogenic in other species. Water drinking was observed immediately after the intravenous injection of 1 M-NaCl (3 ml/kg), and following withdrawal of a mean of 13.9% of calculated blood volume. Daily intake of water decreased during intracerebroventricular (I.C.V.) infusion of 0.3 M-NaCl in artificial cerebrospinal fluid (c.s.f.), during I.C.V. infusion of 0.9 M-mannitol c.s.f., both at a rate of 17 microliters/h, following peritoneal dialysis with 5% (w/v) glucose solution, and during food restriction. Water intake was not affected following intravenous administration of acetazolamide (10 mg/kg). Daily intake of 0.5 M-NaCl solution was increased following peritoneal dialysis with 5% (w/v) glucose solution, which caused hyponatraemia, but not after haemorrhage which caused about the same sodium deficit as peritoneal dialysis, but as an isosmotic loss. Administration of two different angiotensin II analogues, systemically or I.C.V., failed to induce water drinking. However, urinary sodium excretion and intake of 0.5 M-NaCl were increased during the 5 days of I.C.V. infusion of angiotensin II (10 pmol/h). Infusion for 1 day of angiotensin II (500 pmol/h) led to increased urinary sodium excretion which was followed by increased intake. The intake of other electrolyte solutions was not significantly affected by any of the treatments detailed above. The mechanisms participating in initiation of thirst in wild rabbits are very sensitive to decrease in blood volume, in contrast to other species studied in laboratories. Angiotensin II at the doses and routes administered was not dipsogenic in wild rabbits. The increased intake of 0.5 M-NaCl solution observed during and after the long-term intraventricular administration of angiotensin II in the wild rabbit appears predominantly a response to sodium deficit caused by natriuresis. The persistence of appetite after the cessation of infusion is indicative of a residual effect on central mechanisms of salt appetite.

Acetazolamide↗

Stress, ACTH, salt intake and high blood pressure.

Epidemiological evidence supports the thesis that high salt intake is involved in the aetiology of hypertension. If sodium intake is not causal, it appears other factors do not cause high blood pressure in unacculturated societies with low sodium intake. In this context, it is potentially important that stress causing ACTH release, as well as other neurohumoral effects, causes increased salt appetite and can impair renal sodium excretion.

Adrenalectomy↗

Species differences in the effect of decreased CSF sodium concentration on salt appetite.

During the course of evolution from the beginning of the Caenozoic period, the mammalian species have irradiated into increasingly diverse environments and these physical conditions have imposed powerful selection pressures on the systems of water and salt homeostasis. In the case of physiological actions of hormonal elements of the control systems, effects of antidiuretic hormone and aldosterone on water and salt conservation and of renin-angiotensin II on blood pressure and aldosterone secretion show a general similarity across mammalian species. However, evidence is accruing that there may be large species variation in the vectors of physical, chemical and hormonal changes of the milieu which cause water and salt intake. In the sheep, physiological degree of reduction of CSF [Na] produced by IVT infusion of various hypertonic or isotonic saccharide solutions has a powerful stimulating effect on salt appetite of both Na replete and Na deficient animals. Increasing CSF [Na] reduces appetite. The 0.7 M mannitol CSF infusions initially stimulated thirst but eventually depressed it, presumably due to reduction of CSF [Na]. By contrast, in wild rabbits infusion of 0.9 M mannitol CSF for 2 days at 17 microliter/h caused a large reduction of water intake, a diuresis and no significant increase in salt intake. In laboratory white rats, 0.7 M mannitol CSF infusion at 10 microliter/h for 4 days by Alzet pump, did not increase salt appetite though the infusion was calculated to produce moderate reduction of CSF [Na]. It would appear that there may be significant species differences in effect of reduced CSF [Na] on salt appetite.

Animals↗

What makes wild rabbits drink?

Wild rabbits Oryctolagus cuniculus (L) introduced to Australia over a century ago successfully colonized diverse environments in a large part of the continent varying from arid desert, alps, to lush grasslands and coastline where water and salt may be either abundant or very scarce. Wild rabbits caught in Northern Victoria were studied under laboratory conditions, where they adapted to dry pelleted food and drank regularly water and a cafeteria of electrolyte solutions offered. Intracerebroventricular (IVT) infusion of angiotensin II (AII) in doses 10, 50 and 500 ng/h did not increase their water drinking, but increased salt appetite, although it was delayed one or more days after the beginning of AII infusion. IVT infusion of AII 500 ng/h for one day caused a halving in water intake and a tenfold increase in sodium excretion. These were followed by compensatory changes in water and 0.5 M NaCl intake on the consecutive days. IVT infusion of AII 50 ng/h for one day induced an increased urinary sodium excretion, a negative sodium balance which was not followed by an increased salt appetite. IVT infusion of AII 10 ng/h for five days caused a progressive increase in sodium excretion and salt appetite which were significant on the fourth day of infusion and both remained eight-ten times greater than control levels for three days after the cessation of infusion. Water intake was unchanged. IVT infusion of 0.3 M Na-CSF for two days reduced water and food intake, and caused a negative sodium balance on the second day of infusion which was not followed by increase in salt appetite.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗

The anterior wall of the third cerebral ventricle and homeostatic responses to dehydration.

Within the anterior wall of the third cerebral ventricle, structures are found which have been implicated in the regulation of fluid and electrolyte balance. These structures include the subfornical organ (SFO), preoptic medianus nucleus (PMN) and the organum vasculosum of the lamina terminalis (OVLT). In sheep, the OVLT rises from the ventricular floor over the optic chiasma and occupies most of the midline ventricular wall up to the level of anterior commissure. It contains a plexus of blood vessels at its base which possess fenestrated endothelial cells, and appears to lack ependyma. The SFO of sheep bulges into the third ventricle above the anterior commissure and the PMN is situated between the SFO and OVLT, surrounding the rostral edge of the midline anterior commissure. Like most mammals, water deprivation in sheep results in hypertonicity of body fluids, thirst and graded increase in plasma concentration of vasopressin (AVP). Dehydration also causes a natriuresis in these animals. In sheep with combined ablation of OVLT/PMN tissue, the volume of water drunk, the increases in plasma vasopressin (AVP) level, and the natriuresis in response to dehydration were considerably attenuated, and extreme hypernatremia resulted. Additionally, ablation of OVLT/PMN tissue almost abolished water drinking and AVP secretion in response to systemic infusion of hypertonic NaCl, but did not diminish AVP secretion in response to haemorrhage. In other animals, the OVLT and PMN were individually ablated. While partial osmoregulatory deficits were observed in each case, these deficits were smaller than those observed with combined OVLT/PMN ablation. In contrast to these results, the homeostatic responses to dehydration were not diminished in sheep with combined SFO/PMN lesions.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Lowered cerebrospinal fluid sodium antagonizes effect of raised blood sodium on salt appetite.

Moderately Na-deficient sheep (i.e., Na deficit = 300-400 mmol) will correct their deficit when given hypertonic NaHCO3 solution to drink. Access to NaHCO3 was provided by bar press for 2 h only each day following 22 h of salivary loss from a parotid fistula. Each delivery by bar press provided 9 mmol of NaHCO3 and, of the 46.3 +/- 2.5 deliveries made and drunk in 2 h, 80-90% were made in the first 20 min. Ten minutes before access to NaHCO3 commenced an intracarotid infusion of 4 M NaCl at 1.6 ml/min for 30 min was initiated. This infusion reduced intake by approximately 80% and increased both plasma and cerebrospinal fluid sodium concentration (CSF[Na]). Intraventricular (ivt) infusion of 0.7 M mannitol in artificial CSF at 1 ml/h for 3 h begun 1 h before access to Na by bar press lowered CSF[Na] and approximately doubled voluntary Na intake. The combination of the two procedures resulted in NaHCO3 intake similar to base line. That is, the ivt infusion of 0.7 M mannitol counteracted the inhibition of Na appetite produced by the systemic infusion of hypertonic NaCl, and this was associated with attenuation of the effect of the systemic 4 M NaCl infusion on CSF[Na]. The results suggest that the effects of both the ivt and the systemic infusions are mediated via the same sensor system located within the neuropil.

Animals↗