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The use of vasopressin in the treatment of upper gastrointestinal haemorrhage.

Vasopressin is a potent vasoconstrictor which greatly reduces mesenteric blood flow. In patients with portal hypertension this results in decreased portal venous flow and portal pressure. Because of this property, vasopressin has been used for years in the therapy of variceal haemorrhage. A few controlled trials show that vasopressin causes a decrease in bleeding but has no effect on survival. It has been shown that intravenous vasopressin is just as effective as intra-arterial, and is associated with fewer complications. The inability to influence the outcome of variceal haemorrhage significantly may be related to suboptimal dosing due to the occurrence of systemic complications at higher doses. The combination of vasopressin with either sodium nitroprusside or nitroglycerin (glyceryl trinitrate) has resulted in a further decline of portal pressure, along with amelioration of most of the adverse haemodynamic effects of vasopressin. Whether or not clinical efficacy is increased when vasopressin is combined with sodium nitroprusside or nitroglycerin remains to be proven. Analogues of vasopressin, such as terlipressin, held early promise as agents which would be as effective as vasopressin, without the cardiac adverse effects. Recent data have not supported this and at present there is little to suggest any advantage of terlipressin over vasopressin. Virtually no adequate studies have yet been performed to support the use of vasopressin in the treatment of non-variceal haemorrhages. There is reason to suspect that vasopressin can effectively control bleeding from haemorrhagic gastritis, but the subsequent results of inducing gastric ischaemia in an already damaged gastric mucosa are unknown. In summary, vasopressin appears to have little effect on the mortality of patients with variceal haemorrhage. It may, however, help control the haemorrhage in some patients by lowering the portal pressure. Cardiovascular complications limit the dose that can be used but it is hoped that by combining vasopressin with nitroglycerin, a more effective and safe therapy will be available for variceal haemorrhages.

Gastrointestinal Hemorrhage↗

Vasopressin during cardiopulmonary resuscitation and different shock states: a review of the literature.

Vasopressin administration may be a promising therapy in the management of various shock states. In laboratory models of cardiac arrest, vasopressin improved vital organ blood flow, cerebral oxygen delivery, the rate of return of spontaneous circulation, and neurological recovery compared with epinephrine (adrenaline). In a study of 1219 adult patients with cardiac arrest, the effects of vasopressin were similar to those of epinephrine in the management of ventricular fibrillation and pulseless electrical activity; however, vasopressin was superior to epinephrine in patients with asystole. Furthermore, vasopressin followed by epinephrine resulted in significantly higher rates of survival to hospital admission and hospital discharge. The current cardiopulmonary resuscitation guidelines recommend intravenous vasopressin 40 IU or epinephrine 1mg in adult patients refractory to electrical countershock. Several investigations have demonstrated that vasopressin can successfully stabilize hemodynamic variables in advanced vasodilatory shock. Use of vasopressin in vasodilatory shock should be guided by strict hemodynamic indications, such as hypotension despite norepinephrine (noradrenaline) dosages >0.5 mug/kg/min. Vasopressin must never be used as the sole vasopressor agent. In our institutional routine, a fixed vasopressin dosage of 0.067 IU/min (i.e. 100 IU/50 mL at 2 mL/h) is administered and mean arterial pressure is regulated by adjusting norepinephrine infusion. When norepinephrine dosages decrease to 0.2 microg/kg/min, vasopressin is withdrawn in small steps according to the response in mean arterial pressure. Vasopressin also improved short- and long-term survival in various porcine models of uncontrolled hemorrhagic shock. In the clinical setting, we observed positive effects of vasopressin in some patients with life-threatening hemorrhagic shock, which had no longer responded to adrenergic catecholamines and fluid resuscitation. Clinical employment of vasopressin during hemorrhagic shock is experimental at this point in time.

Animals↗

Effects of vasopressin and catecholamines on the maintenance of circulatory stability in brain-dead patients.

The effectiveness and reliability of long-term control of circulatory stability in brain-dead patients by combined administration of vasopressin and catecholamine was examined in detail. Twenty-five patients were divided into three groups according to the dose of vasopressin. The first group (n = 10) received no vasopressin, the second group (n = 2) an antidiuretic dose (0.1-0.4 U/hr), and the third group (n = 13) a pressor dose (1-2 U/hr), respectively. Patients given no vasopressin or an antidiuretic dose demonstrated circulatory deterioration and cardiac arrest within a short time after brain death, despite administration of a large dose of epinephrine. All patients with a pressor dose of vasopressin, however, demonstrated stable circulation as long as vasopressin and epinephrine were administered. Five patients in whom stable circulation was maintained by this technique were randomly chosen from the third group and studied under the following four conditions: (1) neither vasopressin nor epinephrine; (2) vasopressin only; (3) epinephrine only; and (4) both vasopressin and epinephrine. Compared with the controls (neither vasopressin nor epinephrine), vasopressin only increased the total peripheral resistance index, whereas epinephrine alone increased the cardiac index. Combined administration, however, raised the mean arterial blood pressure significantly by markedly increasing the total peripheral resistance index and cardiac index. Finally, in four brain-dead patients also randomly chosen from the third group, epinephrine, norepinephrine, and dopamine were compared in their circulatory effects with a pressor dose of vasopressin. Epinephrine increased both the total peripheral resistance index and cardiac index, whereas norepinephrine increased the total peripheral resistance index, compared with the baseline (no catecholamine). The required dose of norepinephrine, however, was four times that of epinephrine. The major effect of dopamine was to increase the cardiac index. We conclude that a pressor dose of vasopressin plays a central role in circulatory stabilization of brain-dead patients, and that long-term maintenance of stable circulation for a desired length of time is possible by the combined use of vasopressin and a catecholamine. Individually, catecholamines exhibit characteristic differences. Epinephrine has significant effects on both peripheral vessels and the heart, whereas norepinephrine keeps the circulation stable by increasing the total peripheral resistance index, with a much larger dose than epinephrine. Dopamine acts primarily on the heart.

Blood Circulation↗

Characterization of vasopressin receptors in cultured cells derived from the region of rat brain circumventricular organs.

The aim of the present study was to characterize vasopressin receptors within the two circumventricular organs located in the lamina terminalis of the rat brain, namely the organum vasculosum of the lamina terminalis and the subfornical organ. Cells derived from both structures were isolated, cultured and intracellular Ca2+ concentrations were measured in single fura-2 loaded neurons and astrocytes after application of vasopressin and various vasopressin analogues. Subsequent to Ca2+ measurements, the identification of neurons and astrocytes was verified using immunocytochemistry with cell type-specific antibodies. High proportions of subfornical organ (34%) and organum vasculosum laminae terminalis (28%) neurons exhibited increased intracellular Ca2+ concentration after exposure to 1-1000 nM vasopressin. Within single cells, the response was dose-dependent. Similar results were obtained in subfornical organ (62%) and organum vasculosum laminae terminalis (38%) astrocytes with minor differences in the transient amplitude and pattern distribution when compared with neurons. Since omission of extracellular Ca2+ preserved vasopressin responsiveness, it is likely that intracellular stores were the main source of mobilized Ca2+. The preincubation of neurons and astrocytes with the V1 receptor-specific antagonist d(CH2)5[Tyr(Me)2]8-arginine vasopressin (10-100 nM) selectively and reversibly blocked the vasopressin-mediated response. Oxytocin-induced Ca2+ transients (0.32-1000 nM), which were observed in 32% (63%) or organum vasculosum laminae terminalis and in 54% (42%) of subfornical organ neurons (astrocytes), were not affected by the V1-specific antagonist. These data indicate the presence of a V1-like vasopressin receptor and an oxytocin receptor in cultured neurons and astrocytes from both circumventricular organ structures. In addition, the exposure to the highly selective V2 receptor agonist, 1-desamino,8-D-arginine vasopressin, evoked Ca2+ transients almost exclusively in organum vasculosum laminae terminalis neurons (eight of 18 tested). Only 1 (n = 14) subfornical organ neuron and none of the astrocytes tested (n = 26) responded to 1-desamino,8-D-arginine vasopressin. Since 1-desamino,8-D-arginine vasopressin acting via "classical" V2 receptors is not expected to affect the intracellular Ca2+ concentration, these data indicate the tissue and cell type-specific expression of a 1-desamino,8-D-arginine vasopressin-sensitive vasopressin receptor in neurons of the organum vasculosum laminae terminalis. In summary, the results indicate a heterogeneity of neurohypophyseal peptide receptor subtypes in the primary cell culture of both circumventricular structures.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Regional differences in the arterial response to vasopressin: role of endothelial nitric oxide.

1. The isometric response to arginine-vasopressin (10(-10)-10(-7)M) was studied in 2 mm long rabbit arterial segments isolated from several vascular beds (cutaneous, pial, renal, coronary, muscular, mesenteric and pulmonary). 2. Vasopressin induced contraction in central ear (cutaneous), basilar (pial), renal, coronary and saphenous (muscular) arteries, but had no effect in mesenteric and pulmonary arteries; the order of potency for the contraction was: ear > basilar > renal > coronary > saphenous arteries. 3. Treatment with the blocker of nitric oxide synthesis NG-nitro-L-arginine methyl ester (L-NAME; 10(-6)-10(-4) M) increased significantly (P < 0.05) the contraction to vasopressin in ear (148% of control), basilar (150% of control), renal (304% of control), coronary (437% of control) and saphenous (235% of control) arteries. Removal of the endothelium increased significantly (P < 0.05) the contraction to vasopressin in basilar (138% of control), renal (253% of control), coronary (637% of control) and saphenous (662% of control) arteries, but not in ear artery. Mesenteric and pulmonary arteries in the presence of L-NAME or after endothelium removal did not respond to vasopressin, as occurred in control conditions. 4. The specific antagonist for V1 vasopressin receptors d(CH2)5Tyr(Me)AVP (3 x 10(-9)-10(-7) M) was more potent (pA2 = 9.3-10.1) than the antagonist for both V1 and V2 vasopressin receptors desGly-d(CH2)5-D-Tyr(Et)ValAVP (10(-7)-10(-6) M) (pA2 = 7.4-8.4) to block the contraction to vasopressin of ear, basilar, renal and coronary arteries. 5. The specific V2 vasopressin agonist [deamino-Cys1, D-Arg8]-vasopressin (desmopressin) (10(-10)-10(-7) M) did not produce any effect in any effect in any of the arteries studied, with or without endothelium. 6. In arteries precontracted with endothelin-1, vasopressin or desmopressin did not produce relaxation. 7. These results suggest: (a) most arterial beds studied (5 of 7) exhibit contraction to vasopressin with different intensity; (b) the vasoconstriction to this peptide is mediated mainly by stimulation of V1 vasopressin receptors, and (c) endothelial nitric oxide may inhibit the vasoconstriction to this peptide, especially in coronary and renal vasculatures.

Animals↗

Effects of vasopressin on portal-systemic collaterals in portal hypertensive rats: role of nitric oxide and prostaglandin.

This study investigated the effect of vasopressin on portal-systemic collaterals in portal hypertensive rats and the influence of nitric oxide (NO) and prostaglandin on the responsiveness of collateral vessels to vasopressin. The vascular responsiveness to graded concentrations of vasopressin was tested with or without the incubation of n(omega)-nitro-L-arginine (NNA) (100 micromol/L) and/or indomethacin (10 micromol/L) in perfused collateral vascular beds of rats with portal hypertension induced by partial portal vein ligation. In addition, concentration-response curves to vasopressin with incubation of a vasopressin V(1) receptor antagonist d(CH(2))(5)Tyr(Me) arginine vasopressin and concentration-response curves to a V(2) receptor agonist 1-desamino-8-D-arginine vasopressin were performed. Vasopressin significantly increased the perfusion pressure of collaterals, and this effect was suppressed by the addition of the V(1) receptor antagonist. Perfusion with the V(2) receptor agonist had no effect on the collaterals. Incubation with NNA, indomethacin, or both significantly potentiated the response of collaterals to vasopressin. In addition, the pressor response to vasopressin in the combination group was significantly higher than that in the NNA-alone group. The results show that vasopressin produces a direct vasoconstrictive effect on the portal-systemic collaterals of portal hypertensive rats. This effect is mediated by the vasopressin V(1,) but not V(2), receptors. The attenuation of the response to vasopressin by NO and prostaglandin suggest a function role of both mediators in the regulation of the portal-systemic collateral circulation in portal hypertensive rats.

Animals↗

Localization of vasopressin binding sites in rat brain by in vitro autoradiography using a radioiodinated V1 receptor antagonist.

Vasopressin may act in the brain as a neurotransmitter or neuromodulator to influence blood pressure, memory, body temperature and brain development. In order to localize probable central nervous system sites for these actions, we have used 125I-labelled 1-d(CH2)5, 7-sarcosine-8-arginine vasopressin, a specific V1-receptor antagonist, and in vitro autoradiography to map brain vasopressin binding sites. High levels of binding were found in the choroid plexus, blood vessels, lateral septum, bed nucleus of stria terminalis, accumbens nucleus, central nucleus of amygdala, stigmoid hypothalamic nucleus, suprachiasmatic nucleus, arcuate nucleus, nucleus of the solitary tract, area postrema and parts of the hippocampus, thalamus, superior colliculus, and inferior olivary nuclei. Many of these regions are known to be vasopressin-sensitive and to contain vasopressin fibres. Significantly there was no binding to the paraventricular nor the supraoptic nuclei. Displacement of the radioligand from the lateral septum with unlabelled vasopressin analogues gave a rank order of potencies: d(CH2)5-D-Tyr2(Et)Val4-desGly9-arginine-vasopressin approximately equal to d(CH2)5-Tyr2-(Me)arginine-vasopressin approximately equal to arginine-vasopressin approximately equal to d(CH2)5-Sar7-arginine-vasopressin greater than [1-deamino, 8-D-arginine]-vasopressin approximately equal to oxytocin much greater than vasopressin4-9, consistent with binding to V1 receptor subtype. These studies confirm and extend previous findings of V1 receptors in the rat brain. In particular, several new regions of vasopressin receptor binding have been identified, possibly due to the advantages of a radioiodinated ligand with high receptor affinity without binding to neurophysins. Future study of these regions may prove fruitful in elucidating the central actions of vasopressin.

Animals↗

Vasopressin-induced contraction in the rat basilar artery in vitro.

Vasopressin ([Arg(8)]vasopressin)-induced contraction was characterized using receptor agonists and antagonists for vasopressin and channel blockers in the rat basilar artery ring preparations. Vasopressin induced rhythmic contractions superimposed on a contraction in endothelium-intact preparations but not in denuded ones. Endothelium removal shifted the concentration-response curve for vasopressin leftward and upward. In endothelium-denuded preparations, vasopressin V(1) receptor antagonist shifted the concentration-response curve for vasopressin downward and rightward. Vasopressin V(1) receptor agonist caused contraction but V(2) receptor agonist did not. The contractile response to vasopressin was partly inhibited by nifedipine, SK&F 96365 (1-[beta-[3-(4-methoxyphenyl)propoxy]-4-methoxyphenethyl]-1H-imidazole) and niflumic acid. In the absence of extracellular Ca(2+), vasopressin produced a transient contraction. Charybdotoxin produced an upward and leftward shift of the concentration-response curve for vasopressin. These results suggest that vasopressin elicits contraction due to Ca(2+) influx through voltage-dependent and receptor-operated Ca(2+) channels and to Ca(2+) release from Ca(2+) stores by activating vasopressin V(1) receptors in the rat basilar artery.

Animals↗

Hypertrophic growth of cultured neonatal rat heart cells mediated by vasopressin V(1A) receptor.

Primary cultures of neonatal cardiac myocytes were used to determine both the identity of second messengers that are involved in vasopressin receptor-mediated effects on cardiac hypertrophy and the type of vasopressin receptor that is involved in vasopressin-induced cell growth. Neonatal rat myocytes were plated at a density of 1x10(6) cells per 60 mm dish and were incubated with serum-free medium for 7 days. Treatment of myocytes with vasopressin significantly increased the RNA-to-DNA ratio, by 18-25%, at culture days 4-6 and the protein-to-DNA ratio by 18-20% at culture days 5-7. Rates of protein synthesis were determined to assess their contribution to protein contents during myocyte growth. Vasopressin significantly accelerated rates of protein synthesis by 25% at culture day 6. Intracellular free Ca(2+) ([Ca(2+)](i)) was transiently increased after vasopressin exposure. After the peak increase in [Ca(2+)](i) at less than 30 s, there was a sustained increase for at least 5 min. The specific activity of protein kinase C in the particulate fraction was increased rapidly after exposure to vasopressin, and its activity remained higher for 30 min, returning to its control level within 60 min. The activity of protein kinase C in the cytosol was significantly decreased at all times after exposure to vasopressin. After vasopressin treatment, the content of c-fos mRNA was increased. The stimulatory effects of vasopressin on these parameters were significantly inhibited by vasopressin V(1A) receptor antagonist, OPC-21268, but not by vasopressin V(2) receptor antagonist, OPC-31260. These results suggest that vasopressin directly induces myocyte hypertrophic growth via the V(1A) receptor in neonatal rat heart cells.

Animals↗

In vitro desensitization of isolated nephron segments to vasopressin.

Recent studies have demonstrated that in vivo administration of 1-deamino-8-D-arginine-vasopressin, an analog of arginine-8-vasopressin, induces homologous desensitization to vasopressin in the thick ascending limb of the loop of Henle. Desensitization has been documented by a decreased physiological response to vasopressin in vivo and by a reduced cAMP accumulation in the cortical thick ascending limb (CTAL). By measuring cAMP content in single isolated medullary thick ascending limbs (MTALs), we now report that desensitization can occur all along the thick ascending limb and, more importantly, that it can also be induced in vitro. In a first series of experiments, we observed that 1 hr after in vivo injection of 1-deamino-8-D-arginine-vasopressin, MTALs were desensitized by 80% to vasopressin, whereas the effects of the other hormones acting on the same cyclase pool (glucagon, calcitonin) were fully maintained. In a second set of experiments, desensitization was induced in vitro by vasopressin, the natural hormone. A 60-min preincubation of MTALs with vasopressin caused a marked (up to 86%) and highly reproducible desensitization. The process was dose and time dependent. The apparent Ka for desensitization was 0.2 nM, and the half-maximal effect was obtained within 20 min. The desensitization induced in vitro by vasopressin was again essentially homologous in nature, with 80% of the maximal stimulation of cAMP accumulation being obtained in the presence of glucagon. Desensitization to vasopressin was observed in the presence and absence of indomethacin, indicating that it is independent of prostaglandin synthesis. It is concluded that (i) vasopressin and its analog 1-deamino-8-D-arginine-vasopressin cause marked desensitization in the CTAL and MTAL and (ii) the low vasopressin concentrations required to induce desensitization and the rapid onset of the process suggest that it has a physiological significance.

1-Methyl-3-isobutylxanthine↗

Vasopressin and water distribution in rats with DOCA-salt hypertension.

The role of vasopressin in the regulation of body water volume and its distribution to intravascular, interstitial and intracellular compartments, and the importance of particular body water compartments in the pathogenesis of DOCA-salt hypertension were studied in young Brattleboro rats. Vasopressin-deficient, vasopressin-synthesizing and vasopressin-deficient rats chronically supplemented with deamino-8-D-arginine vasopressin (dDAVP) were compared with water-drinking controls. The chronic DOCA-salt treatment caused a marked hypertension in vasopressin-synthesizing animals; in these animals body water was slightly increased due to the expansion of extra-cellular fluid volume whereas intracellular water tended to decrease, so that the ratio of extracellular fluid volume to intracellular water rose significantly. The development of DOCA-salt hypertension was attenuated in the vasopressin-deficient rats, which had a similar level of total body water, slightly increased intracellular water and significantly decreased extracellular fluid volume compared with the hypertensive vasopressin-synthesizing rats. Consequently, in the vasopressin-deficient rats, the ratio of extracellular fluid volume to intracellular water did not differ from that of controls. A vasopressin deficiency was associated with a failure to expand the interstitial fluid volume although plasma volume was increased. Unaltered total body water together with elevated plasma osmolality indicated an extracellular water deficiency in DOCA-salt-treated vasopressin-deficient rats. Chronic dDAVP supplementation restored the body fluid pattern and the hypertensive response of the DOCA-salt-treated vasopressin-deficient rats. In conclusion, the antidiuretic effects of vasopressin are necessary for the interstitial fluid volume expansion that is essential for a full development of DOCA-salt hypertension.

Animals↗

Arginine vasopressin potentiates natriuretic effect of atrial peptide.

We investigated potentiation of atrial peptide (AP)-induced natriuresis by vasopressin in anesthetized rats. Increasing doses of vasopressin potentiated AP-induced natriuresis in a dose-dependent manner, e.g., sodium excretion during AP administration (290 ng/min) was 0.66 +/- 0.16, 2.02 +/- 0.68, 5.21 +/- 1.38 and 7.08 +/- 1.96 mu eq/min during infusion of 0.00, 0.78, 1.56, and 3.12 ng.kg-1.min-1 of vasopressin, respectively. Vasopressin alone had no effect on sodium excretion. In a second experiment, vasopressin (1.56 ng.kg-1.min-1) potentiated AP (128 ng/min)-induced natriuresis similar to that seen in the first experiment. In this experiment, glomerular filtration rate (GFR) and mean arterial pressure were monitored. Mean arterial pressure was no different between the groups treated with AP plus vasopressin and AP alone. Glomerular filtration was actually reduced in the group treated with vasopressin plus AP, suggesting that neither changes in GFR nor blood pressure were responsible for potentiation of the natriuresis. A third experiment compared the ability of 1-desamino-8-D-arginine vasopressin (dDAVP), a nonpressor analogue of vasopressin, to vasopressin in enhancing AP (145 ng/min)-induced natriuresis. The nonpressor analogue did not potentiate AP-induced natriuresis, whereas vasopressin had the same effect as in the first two experiments. These are the first studies to report a functional interaction between AP and vasopressin. They show that vasopressin potentiates AP-induced natriuresis without altering mean arterial pressure or GFR.

Animals↗

Dual actions of vasopressin and oxytocin in regulation of water permeability in terminal collecting duct.

We conducted studies in isolated perfused terminal inner medullary collecting ducts (IMCD) from rats to investigate the roles of oxytocin and vasopressin in the regulation of osmotic water permeability. Vasopressin and oxytocin were found to have both stimulatory effects (at 0.1 nM) and inhibitory effects (at 10 nM) on osmotic water permeability. Measurements of adenosine 3',5'-cyclic monophosphate (cAMP) production demonstrated that both vasopressin and oxytocin increase cAMP production. Both the selective oxytocin-receptor agonist [Thr4,Gly7]oxytocin (10 nM) and the selective V1b agonist [deamino1,D-3-(pyridyl)Ala2,Arg8]vasopressin (10 nM) inhibited vasopressin-stimulated osmotic water permeability. In contrast, the selective V1a vasopressin-receptor agonist [Phe2,Ile3,Orn8]vasopressin (10 nM) had no effect on vasopressin-stimulated osmotic water permeability. These effects on water permeability correlated with the ability of the agents to transiently increase intracellular free calcium. The oxytocin/vasopressin-receptor antagonist [des-glycinamide9,d(CH2)5(1),O-Me-Tyr2,Thr4,Orn8]vasot ocin, which almost completely blocks vasopressin-induced calcium mobilization, also blocked the ability of 10 nM vasopressin to inhibit osmotic water permeability relative to that found with 0.1 nM vasopressin. We conclude the following. 1) Oxytocin, like vasopressin, has dual effects on osmotic water permeability, increasing it at subnanomolar concentrations and inhibiting it at suprananomolar concentrations. 2) Oxytocin, like vasopressin, can increase cAMP production, perhaps accounting for the increase in water permeability.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Influence of intravenous and intracerebroventricular vasopressin on baroreflex control of renal nerve traffic.

We performed experiments in alpha-chloralose-anesthetized rabbits with vagi sectioned, to determine the influence of intravenous and intracerebroventricular vasopressin on arterial baroreflex control of renal nerve activity. Arterial baroreflex control of renal nerve activity was assessed during phenylephrine-induced increases and nitroglycerin-induced decreases in arterial pressure. Intravenous vasopressin (4 and 40 mU over 1 minute) reduced basal renal nerve activity (from 149 +/- 14 to 101 +/- 13 and 28 +/- 13 impulses/sec) without changing arterial pressure and reduced the sensitivity of the arterial baroreflex control of renal nerve activity. This effect was reversed by vasopressin antagonist (d(CH2)5[Tyr(Me)2]AVP) which blocks vasoconstrictor effects of vasopressin. Intracerebroventricular vasopressin (4, 40, or 400 mU) did not alter basal renal nerve activity or arterial pressure but increased the sensitivity of baroreflex control of renal nerve activity. This effect was not blocked by the vasopressin antagonist. The influence of intravenous vasopressin on basal renal nerve activity was not altered by sinoaortic baroreceptor denervation. In contrast, the inhibitory influence of intravenous vasopressin on lumbar sympathetic nerve activity was abolished by sinoaortic denervation. Finally, intravenous vasopressin inhibited renal nerve activity (by 43 +/- 5%) in six rabbits with spinal cord transection. This effect was abolished by the vasopressin antagonist. We draw the following conclusions from these data: (1) intravenous and intracerebroventricular vasopressin have different effects on basal and baroreflex control of renal nerve activity; (2) these effects are mediated by different vasopressin receptors; (3) the effects of intravenous vasopressin on basal renal nerve activity are not baroreflex dependent, and appear to be mediated by spinal or, possibly, ganglionic mechanisms.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Reconstitution of the rat liver vasopressin receptor coupled to guanine nucleotide-binding proteins.

The V1 vasopressin receptor has been solubilized from rat liver membranes with the zwitterionic detergent 3-[(3-cholamidopropyl)dimethylammoniol]-1-propanesulfonate (CHAPS) and reconstituted into phospholipid vesicles. There is essentially complete solubilization of the receptor by 3% CHAPS at a protein concentration of 15 mg/ml. Reconstitution into soybean phospholipid vesicles is readily achieved either by gel filtration chromatography or by membrane dialysis. The binding of [3H]vasopressin to proteoliposomes is specific, saturable, reversible, and magnesium-dependent. In contrast, the detergent-soluble vasopressin receptor does not display specific binding. The apparent affinity of the reconstituted receptor for [3H]vasopressin is approximately 4-fold lower than that of the receptor in native membranes. In addition, the binding of [3H]vasopressin to reconstituted vesicles is not sensitive to 100 microM guanosine 5'-O-thiotriphosphate (GTP gamma S) as it is in native membranes. However, the apparent affinity of the reconstituted receptor for ligand approximates that of native membranes when membranes are prebound with vasopressin prior to solubilization and reconstitution into vesicles. Furthermore, vesicles reconstituted from membranes prebound with vasopressin show GTP gamma S sensitivity of [3H] vasopressin binding. This finding strongly suggests that vasopressin stabilizes a receptor-G-protein complex during solubilization. The rat liver vasopressin receptor is a glycoprotein, as shown by its specific binding to the lectin "wheat germ agglutinin." The vasopressin receptor can be reconstituted from the N-acetylglucosamine-eluted peak of a wheat germ agglutinin-Sepharose column, and [3H] vasopressin binding activity is purified 5-6-fold from membranes by this chromatographic procedure. The functionality of the partially purified receptor is indicated by its ability to bind ligand with high affinity and by its ability to functionally interact with a G-protein when vasopressin is bound prior to solubilization.

Animals↗

Responses to vasopressin and desmopressin of human cerebral arteries.

The effects of vasopressin and deamino-8-D-arginine vasopressin (desmopressin) were studied in isolated rings from branches (0.8-1.2 mm in external diameter) of human middle cerebral arteries obtained during autopsy of 27 patients who had died 3 to 10 hr before. In arterial rings under resting tension, vasopressin produced concentration-dependent contractions with an EC50 of 7.2 x 10(-10) M. The vasopressin V1 receptor antagonist [(1-(beta-mercapto-beta, beta-cyclopentamethylenepropionic acid)-2- (O-methyl)-tyrosine-8-arginine)vasopressin] (10(-6) M) displaced the control curve to vasopressin 1250-fold to the right in a parallel manner. The mixed V1-V2 receptor antagonist [(1-(beta-mercapto-beta, beta-cyclopentamethylenepropionic acid)-2- (O-ethyl)-D-tyrosine-4-valine-8-arginine-9-desglycine)vasopressin] (10(-8) M) depressed both the slope and maximal response of the control curve for vasopressin. Vasopressin produced further contractions in arterial rings with or without endothelium precontracted with prostaglandin F2 alpha or norepinephrine. In precontracted arterial rings and previously treated with the V1 vasopressinergic antagonist [(1-(beta-mercapto-beta, beta-cyclopentamethylenepropionic acid)-2- (O-methyl)-tyrosine-8-arginine)vasopressin] (10(-6) M) vasopressin caused endothelium-independent relaxation. The relaxation to vasopressin was reduced significantly by indomethacin (10(-6) M) and unaffected by the V1-V2 receptor antagonist [(1-(beta-mercapto-beta, beta-cyclopentamethylenepropionic acid)-2- (O-ethyl)-D-tyrosine-4-valine-8-arginine-9-desglycine)vasopressin] (10(-6) M) or by NG-monomethyl-L-arginine (10(-4) M).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Preeclampsia is not associated with altered platelet vasopressin binding and cytosolic Ca++ concentration.

OBJECTIVES: Preeclampsia is an important cause of fetal and maternal morbidity and mortality. Recently it was described that platelet cytosolic Ca++ levels could be used to screen for preeclampsia. The current study investigated platelet arginine vasopressin receptor characteristics, platelet cytosolic Ca++ levels, plasma- and platelet-bound arginine vasopressin in white pregnant women. STUDY DESIGN: In a cross-sectional study nine third-trimester nulliparous pregnant women with gestational hypertension (seven with proteinuria, two with excessive weight gain without proteinuria) were compared with nine healthy nulliparous pregnant women matched for gestation length and age and 10 healthy age-matched nonpregnant women. Determined were (1) platelet arginine vasopressin receptor number and affinity, (2) platelet cytosolic Ca++ levels, both basal and on arginine vasopressin or thrombin stimulation, and (3) plasma- and platelet-bound arginine vasopressin levels. RESULTS: None of the measured parameters differed significantly among the three groups studied. Mean arginine vasopressin receptor number and affinity ranged from 108 to 143 receptors per platelet and 0.35 to 0.40 nmol/L, respectively. A single population of binding sites was found (Hill number 0.96). Basal Ca++ levels ranged from 113.4 to 133.3 nmol/L, on arginine vasopressin stimulation from 199 to 250 nmol/L. Median arginine vasopressin levels in platelet-poor plasma were between 1.2 and 2.4 pg/ml, with circulating platelets being estimated to possess two to five molecules of arginine vasopressin per platelet. A significant correlation was found between platelet cytosolic Ca++ levels before and after arginine vasopressin stimulation (r = 0.69, p < 0.001) and a weak correlation between platelet receptor density and arginine vasopressin-stimulated platelet cytosolic Ca++ levels (r = 0.38, p < 0.05). CONCLUSIONS: The studied parameters, platelet cytosolic Ca++ levels, whether basal or after stimulation with arginine vasopressin and vasopressin platelet receptor density and affinity, do not discriminate already hypertensive or preeclamptic white women from nondiseased subjects. A valuable test to screen for preeclampsia awaits further prospective studies.

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Vasopressin deficiency decreases the frequency of gastroduodenal ulceration in humans.

Vasopressin is a stress hormone released from the posterior pituitary. In humans suffering from central diabetes insipidus, this release of vasopressin is diminished. It was shown previously that the congenitally vasopressin-deficient Brattleboro homozygous rat is less sensitive to various ulcerogenic stimuli. In this study, we investigated the incidence of gastroduodenal ulceration in vasopressin deficient patients. Data on patients aged 20-70, hospitalized in Hungary between 1992 and 1995 were compared with those on the total population in this age group (6,681,020 in 1994). Subjects with central diabetes insipidus were selected separately (815 cases). Gastroduodenal ulceration was compared in subjects with an intact vasopressin release and vasopressin-deficient patients. The frequencies of gastroduodenal ulceration were also examined separately in male and female subjects. In the total population, the frequency of gastroduodenal ulceration was lower in vasopressin-deficient cases (2.22% versus 0.61%; P < 0.005). Among normal-vasopressin subjects, males have a higher risk of gastroduodenal ulceration than females (3.04% versus 1.46%, respectively; P < 0.001). Among vasopressin-deficient subjects, a similar male:female ratio was observed, but it was not significant (P = 0.36). In comparison to the normal-vasopressin population, the incidence of gastroduodenal ulceration was reduced among vasopressin-deficient males and females by 77% (P < 0.01) and by 82% (P < 0.05), respectively. In conclusion, endogenous vasopressin has a significant harmful action towards the human gastroduodenal mucosa. Peptide and non-peptide vasopressin receptor antagonists might have a potential therapeutic benefit in the treatment (as an adjuvant) and prevention of gastroduodenal ulceration.

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