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R E Weitzman

Publications and source records attributed to R E Weitzman.

At least 37 records · Page 2Linked to original sources

Endogenous angiotensin stimulation of vasopressin in the newborn lamb.

The effect of furosemide on plasma renin, vasopressin (AVP), and aldosterone concentrations was studied in 10 control and 6 nephrectomized lambs during the 1st 2 wk of life. In a separate study in 10 newborn lambs, 1-sarcosine-8-alanine-angiotensin II (saralasin acetate, 5 mug/kg per min) was infused alone for 40 min, after which furosemide 2 mg/kg i.v. was injected in association with continuing saralasin acetate infusion. Plasma renin activity increased from a mean (+/-SEM) of 21.3+/-3.4 ng/ml per h in the 10 control lambs to 39.4+/-8.2 ng/ml per h at 8 min (P < 0.001) and remained high through 120 min after furosemide. Plasma AVP and aldosterone concentrations increased from respective mean values of 2.1+/-0.4 muU/ml and 12.8+/-2.5 ng/dl to 9.8+/-2.0 muU/ml (P < 0.01) and 23.0+/-7.7 ng/dl (P < 0.05) at 35 min and 13.8+/-2.1 muU/ml and 23.0+/-4.4 ng/dl at 65 min after furosemide (each P < 0.01). There was an insignificant AVP response in the 10 lambs treated with angiotensin inhibitor: from a mean base line of 4.7+/-0.9 to 8.3+/-2.0 muU/ml at 35 min, and 7.4+/-2.0 muU/ml at 65 min after furosemide. There was no increase in AVP in the anephric lambs. The mean increment AVP response from base line in the newborn lambs without saralasin, Delta 10.8+/-2.0 muU/ml, was greater than in the lambs with saralasin, Delta4.0+/-1.9 (P < 0.05), and greater than in the anephric lambs, Delta3.3+/-2.1 muU/ml (P < 0.05). The mean blood pressure fell 6 mm Hg in the 10 control lambs (P < 0.05), 7 mm Hg in the anephric lambs (P < 0.05), and 16 mm Hg in the lambs treated with angiotensin inhibitor (P < 0.05) by 35 min after furosemide. However, the changes in plasma AVP were not related to the fall in blood pressure. These data support the view that the observed AVP response to furosemide in the newborn lamb was mediated through the renin-angiotensin system.

Angiotensin II↗

Control of vasopressin secretion in the newborn lamb.

The plasma sodium, osmolality, and arginine vasopressin (AVP) responses to phlebotomy, hypertonic saline, water loading and fluid restriction were studied in 2--49 day old lambs. Phlebotomy of 10 and 20% of the lamb's estimated blood volume produced 37- and 44-fold increments in plasma AVP, without a concomitant change in plasma sodium or osmolality. The infusion of 10 mEq/kg sodium chloride produced a 12% rise in plasma sodium concentration accompanied by a 7-fold rise in plasma AVP. Water loading with 100 ml/kg hypotonic fluid produced a significant fall in plasma sodium concentration (10.7%) and a decrease in plasma AVP. Eighteen hr of water deprivation evoked a 7-fold increase in AVP. These results indicate that the newborn lamb is capable of responding appropriately to known stimuli for AVP secretion. The stimulus response ratio (SRR): (formula: see text) of newborn lambs was nearly identical after hypertonic saline and water loading and was also quite similar to that of the adult ewe after a saline challenge. The SRR of water deprived lambs was greater than that after the other stimuli, presumably reflecting combined volume and osmolar stimuli. We conclude that the neurohypophysis and the volume receptor systems of the newborn lamb are capable of appropriate, mature AVP responsiveness during the first days of extrauterine life.

Animals↗

Thyrotropin-releasing hormone stimulates release of arginine vasopressin and oxytocin in vivo.

The effects of TRH upon neurohypophyseal hormone release were studied in conscious rabbits. Intravenous infusion of 250 nm/kg TRH had no significant effect on either arginine vasopressin (AVP) or oxytocin (OT) release, but a 5-fold greater dose led to significant increases in plasma levels of both AVP and OT and behavioral arousal. Intraventricular injection of 3 nm TRH produced significant elevations of both plasma AVP and OT, with even greater effects on behavior than after iv infusion. The maximal hormone response to intraventricular injection was observed considerably earlier than that for iv injection and the response occurred after an almost 1000-fold lower dose of TRH. Neither artificial cerebrospinal fluid vehicle nor the inactive analogue D-tyrosine2 TRH (p-Glu-d-Tyr-Proamide) had any effect on neurohypophyseal hormone release or on behavior. MK-771 [L-N-(2-oxopiperidin-6-YL-carbonyl)-L-histidyl-L-thiazolidine-4-carboxamide], a TRH analog with enhanced central nervous system effects, had effects on AVP and OT release comparable to equimolar doses of TRH. TRH stimulates release of both AVP and OT after both intraventricular and iv injection, and these effects may be independent of behavioral activation.

Animals↗

Development pharmacokinetics of the posterior pituitary hormones.

Arginine vasotocin, arginine vasopressin, and oxytocin play a critical role in the stimulation of labor and delivery and in salt and water homeostasis in the newborn infant. The authors present information on their chemistry, secretion, and metabolism, and discuss the clinical effects upon target organs of their presence or absence.

Animals↗

The clinical physiology of water metabolism. Part I: The physiologic regulation of arginine vasopressin secretion and thirst.

Water balance is tightly regulated within a tolerance of less than 1 percent by a physiologic control system located in the hypothalamus. Body water homeostasis is achieved by balancing renal and nonrenal water losses with appropriate water intake. The major stimulus to thirst is increased osmolality of body fluids as perceived by osmoreceptors in the anteroventral hypothalamus. Hypovolemia also has an important effect on thirst which is mediated by arterial baroreceptors and by the renin-angiotensin system. Renal water loss is determined by the circulating level of the antidiuretic hormone, arginine vasopressin (AVP). AVP is synthesized in specialized neurosecretory cells located in the supraoptic and paraventricular nuclei in the hypothalamus and is transported in neurosecretory granules down elongated axons to the posterior pituitary. Depolarization of the neurosecretory neurons results in the exocytosis of the granules and the release of AVP and its carrier protein (neurophysin) into the circulation. AVP is secreted in response to a wide variety of stimuli. Change in body fluid osmolality is the most potent factor affecting AVP secretion, but hypovolemia, the renin-angiotensin system, hypoxia, hypercapnia, hyperthermia and pain also have important effects. Many drugs have been shown to stimulate the release of AVP as well. Small changes in plasma AVP concentration of from 0.5 to 4 muU per ml have major effects on urine osmolality and renal water handling.

Adolescent↗

The clinical physiology of water metabolism. Part II: Renal mechanisms for urinary concentration; diabetes insipidus.

The renal reabsorption of water independent of solute is the result of the coordinated function of the collecting duct and the ascending limb of the loop of Henle. The unique juxtaposition of the ascending and descending portions of the loop of Henle and of the vasa recta permits the function of a counter-current multiplier system in which water is removed from the tubular lumen and reabsorbed into the circulation. The driving force for reabsorption is the osmotic gradient in the renal medulla which is dependent, in part, on chloride (followed by sodium) pumping from the thick ascending loop of Henle. Urea trapping is also thought to play an important role in the generation of a hypertonic medullary interstitium. Arginine vasopressin (AVP) acts by binding to receptors on the cell membrane and activating adenylate cyclase. This, inturn, results in the intracellular accumulation of cyclic adenosine monophosphate (AMP) which in some fashion abruptly increases the water permeability of the luminal membrane of cells in the collecting duct. As a consequence, water flows along an osmotic gradient out of the tubular lumen into the medullary interstitium. Diabetes insipidus is the clinical condition associated with either a deficiency of or a resistance to AVP. Central diabetes insipidus is due to diminished release of AVP following damage to either the neurosecretory nuclei or the pituitary stalk. Possible causes include idiopathic, familial, trauma, tumor, infection or vascular lesions. Patients present with polyuria, usually beginning over a period of a few days. The diagnosis is made by showing that urinary concentration is impaired after water restriction but that there is a good response to exogenous vasopressin therapy. Nephrogenic diabetes insipidus can be identified by a patient's lack of response to AVP. Nephrogenic diabetes insipidus is caused by a familial defect, although milder forms can be acquired as a result of various forms of renal disease. Central diabetes insipidus is eminently responsive to replacement therapy, particularly with dDAVP, a long lasting analogue of AVP. Nephrogenic diabetes insipidus is best treated with a combination of thiazide diuretics as well as a diet low in sodium and protein.

Body Water↗

The effect of pain on plasma arginine vasopressin concentrations in man.

The effect of pain on plasma AVP concentration in man has previously been studied only during major surgery with general anaesthesia. Plasma AVP concentration (pAVP) and plasma osmolality (pOsm) were measured in thirty-six patients seen in a surgical emergency department complaining of pain and in fifty-one control subjects. No significant difference in pOsm was found, but pAVP was significantly higher in the emergency room patients in pain (M +/- SEM = 4.94 +/- 0.98 pmol/1 compared to 2.31 +/- 0.32 pmol/1 in control subjects, P less than 0.01). In the control subjects, age was found to have a low but significant inverse correlation with pAVP (r = 0.37, P less than 0.01). Chronic smoking was associated with significant elevation of pAVP (3.81 +/- 0.99 pmol/1 in smokers vs. 1.89 +/- 0.28 pmol/1 in non-smokers, P less than 0.02). Neither smoking nor age could account for the difference in pAVP between the pain and control groups. Thus, pain is a non-osmolar factor capable of elevating AVP in conscious man.

Adolescent↗

Arginine vasopressin metabolism in dogs. I. Evidence for a receptor-mediated mechanism.

The plasma clearance rates (PCR) of arginine vasopressin (AVP), and iodinated AVP (125I-AVP) were determined after pulse injection in conscious water-loaded dogs. Both the PCR and the apparent initial volume of distribution were significantly greater for AVP than for the biologically inactive iodinated AVP 37.4 +/- 4.8 ml/kg per min vs. 6.7 +/- 0.8 ml/kg per min (P less than 0.001) and 12.7 +/- 0.9% body wt vs. 7.1 +/- 0.4% body wt (P less than 0.001). AVP clearance was then determined by the constant-infusion technique at doses that produced equilibrium AVP concentrations within and above the physiological range. AVP-PCR was 37.4 +/- 7.1 ml/kg per min at 34 microU/kg per min, which was comparable to that after pulse injection (P less than 0.9). AVP clearance fell progressively, and urine osmolality progressively increased with increasing AVP infusion rates to plateau values at 136 microU/kg per min; a strong negative correlation was observed between mean AVP-PCR and urine osmolality (r = -0.993). The data suggest a relationship between the biological activity of AVP and its clearance. It is proposed that plasma membrane receptors may mediate a portion of the metabolic clearance of AVP.

Animals↗

Arginine vasopressin metabolism in dogs. II. Modeling and system analysis.

System modeling and analysis methods were applied to interpret data regarding arginine vasopressin (AVP) metabolism in dogs. Based on this analysis a new nonlinear 3-pool model of AVP distribution and disposal was proposed and quantified; the model pools included the plasma, a receptor pool, and an extravascular nonreceptor pool. The receptor pool mediated a portion of the rapid flux of hormone between the plasma and the extravascular pool. Mathematical analysis indicated that the plasma AVP impulse response (bolus) data would be insufficient to uniquely estimate all the model constants, but additional plasma impulse data using 125I-labeled AVP, which does not bind to physiologic hormone receptors, would allow unique model quantification. Other required measurements were the urinary excretion of intact hormone, and plasma AVP degradation. The model was successfully fitted to the data from 10 dogs. The results suggest that, in the normal dogs studied, plasma contained 25% of the total AVP, 19% was bound to receptors, and the remaining 56% was in the extravascular pool. Eighty percent of the flux of AVP from the vascular compartment was mediated by the receptor pool; 98% of AVP degradation occurred in the extravascular pool; and urine excretion and plasma degradation made up the remainder.

Animals↗

Arginine vasopressin response to an osmotic stimulus in the fetal sheep.

Baseline plasma osmolality (pOsm) and plasma arginine vasopressin (pAVP) were measured in chronically catheterized fetal sheep. Mean baseline pAVP in fetuses from 101-120 days was 1.9 +/- 0.46 muU/ml (mean +/- SEM) with a pOsm of 293 +/- 1.8 mOsm/kg. In fetuses of 121-141 days of gestation, mean pAVP was significantly lower, 0.77 +/- 0.19 muU/ml (P less than 0.05), with a similar pOsm (293 +/- 1.9 mOsm/kg). The logarithmic baseline pAVP values were linearly correlated with pOsm for both groups. Hypertonic saline infusion resulted in a similar increase in the log pAVP corrected for the rise in pOsm in the 101-120-day fetuses and in 121-141-day fetuses. The slope of this response was similar to that of the steady state relationship. The data indicates that the fetal osmoreceptor system for control of arginine vasopressin secretion is fully functional in the last trimester of pregnancy.

Animals↗

The effect of hemorrhage and hypertonic saline upon plasma oxytocin and arginine vasopressin in conscious dogs.

Sensitive and highly specific RIAs for arginine vasopressin (AVP) and oxytocin (OT) were utilized to assess the specificity of neurohypophyseal hormone release after hemorrhage or infusion of hypertonic saline to trained conscious dogs. Phlebotomy of 12.5 and 25 ml/kg produced increases in plasma AVP from 1.0 +/- 0.2 to 7.8 +/- 2.1 and 41.6 +/- 9.7 (SEM) microunit/ml respectively, and both responses differed significantly from values in control experiments (P less than 0.01 after the first phlebotomy and P less than 0.001 after the second phlebotomy). Plasma OT concentrations rose from baseline values of 1.1 +/- 0.4 to 3.3 +/- 0.6 and 8.3 +/- 1.7 microunit/ml (P less than 0.005 and P less than 0.001 compared to controls); plasma osmolality and sodium concentrations were unchanged. Both log AVP and log OT were highly correlated with the quantity of blood removed (r = 0.92 and -0.82, each P less than 0.001). Infusion of hypertonic (20g/dl) NaCl (3.4 meq/kg) over 20 min caused plasma osmolality and sodium to rise from 304 +/- 1.0 mosm/kg and 143 +/- 3.0 meq/liter to 316 +/- 1.0 mosm/kg and 150 +/- 3.0 meq/liter (each P less than 0.001). Plasma AVP rose from 1.5 +/- 0.2 to 2.4 +/- 0.2 microunit/ml (P less than 0.0025) and OT rose from 1.2 +/- 0.5 to 2.6 +/- 0.7 microunit/ml (P less than 0.005). The stimulus response ratios (change in log hormone concentration divided by the rise in plasma osmolality) were comparable for both hormones (0.024 +/- 0.006 for AVP and 0.031 +/- 0.008 for OT; P less than 0.4). The data indicate that hemorrhage or hypertonic saline stimulate release of both AVP and OT. After hemorrhage, there is greater stimulation of AVP than OT, whereas there is comparable stimulation of both peptides after hypertonic saline.

Animals↗

Lack of arginine vasopressin response to central dopamine blockade in normal adults.

Haloperidol, a central nervous system dopamine blocker, was given im to seven normal volunteers at a dose level (1.0 mg) known to have central nervous system effects. Plasma PRL levels rose sharply in response to haloperidol, but plasma arginine vasopressin levels did not change significantly. These data do not support the hypothesis of a prominent dopamine neurotransmitter regulation of arginine vasopressin secretion.

Adult↗