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At least 19 recordsLinked to original sources

Interrelationships among the renin-angiotensin system, sympathetic nervous system and atrial natriuretic peptide in end-stage renal failure.

Since it remains unclear how the regulatory mechanism of blood pressure and volume is associated with the renin-angiotensin system, the sympathetic nervous system, and atrial natriuretic peptide (ANP), we examined the changes in blood pressure and vasoactive hormones occurring in 12 patients with end-stage renal failure. They were divided into two groups, those who were anuric (group A, n = 7), and those who had a daily urine volume of more than 700 ml (group B, n = 5). The changes in the mean blood pressure (MBP) and these vasoactive hormones were observed during hemodialysis with water removal in group A and without water removal in group B, and during blood pressure reduction with sodium nitroprusside in group A. The basal levels of ANP in groups A and B were twice as high as those of normotensive subjects. During hemodialysis, MBP did not reveal any changes in both groups. In group A, ANP and body weight (BW) decreased, whereas the plasma renin activity (PRA) and norepinephrine (NE) increased. In group B, ANP remained stable during the first 3 hr and decreased at the end of hemodialysis. However, BW, PRA, and NE were unchanged. In group A, significant correlations were observed between the changes in BW and those in ANP (r = 0.52, p less than 0.05), PRA (r = -0.57, p less than 0.01), and NE (r = -0.76, p less than 0.01). During blood pressure reduction, MBP decreased with accompanying increases in NE and PRA. However, ANP did not show any change.(ABSTRACT TRUNCATED AT 250 WORDS)

Atrial Natriuretic Factor

Nephrotoxic nephritis in rabbits. The role of the sympathetic nervous system.

The sympathetic nervous system and catecholamines play a major role in fibrin deposition in organs in rabbits after endotoxin administration. Glomerular fibrin deposition is also a key factor in the pathogenesis of nephrotoxic nephritis in rabbits, but the role of the sympathetic nervous system in this type of fibrin deposition has not been defined. We investigated sympathetic nervous system involvement in nephrotoxic nephritis using a model of isolated chemical sympathectomy with 6-hydroxydopamine. Different quantities of pooled nephrotoxic serum were injected intravenously into control and sympathectomized rabbits to produce a known spectrum of pathology in normal rabbits. Animals were killed and their organs were analyzed to ascertain that sympathectomy had been accomplished. Biochemical, immunohistologic, and histopathologic evaluation of the animals, comparing controls and sympathectomized rabbits, revealed no differences in the degree of renal damage for a given quantity of nephrotoxic serum. We conclude that, in the rabbit model, the sympathetic nervous system plays no significant role in the pathogenesis of fibrin deposition and glomerular damage in nephrotoxic nephritis.

Animals

Persistence of a hyperdynamic circulation in cirrhotic rats following removal of the sympathetic nervous system.

The sympathetic nervous system is thought to play a role in the pathogenesis of the hyperdynamic circulation associated with portal hypertension. However, the extent of this role is unknown. After elimination of all neurological control by pithing, systemic and regional hemodynamics were studied in rats with portal hypertension caused by either portal vein stenosis or biliary cirrhosis. In normal rats, pithing induced a two-thirds decrease in mean arterial pressure and cardiac index. Compared with pithed normal rats, pithed portal vein-stenosed rats showed similar values for mean arterial pressure, cardiac index, and portal tributary blood flow. In contrast, pithed cirrhotic rats still showed hyperdynamic circulation with increased cardiac index and portal tributary blood flow. Although pithing dramatically reduced portal pressure in all groups, portal pressure remained significantly higher in portal hypertensive rats than in normal rats. These results indicate that in rats with portal vein stenosis, the sympathetic nervous system plays a major role in hemodynamic alterations, whereas in rats with cirrhosis, nonneurogenic factors participate in the pathogenesis of the hyperdynamic circulation.

Animals

The effects of captopril on the renin-angiotensin system and the sympathetic nervous system during sodium nitroprusside-induced hypotension in the halothane-anesthetized rabbit.

Three groups of New Zealand white rabbits were used to study the effects of captopril on the renin-angiotensin system and sympathetic nervous system during sodium nitroprusside (SNP)-induced hypotension and halothane anesthesia. Two groups of rabbits (C and CH) were treated with captopril 2 mg/kg i.v. One captopril-treated group (CH) and the third, untreated group (H) received SNP to induce hypotension. In these two groups, the mean arterial blood pressure (MAP) was reduced by 40% for 150 min. Group C did not undergo SNP-induced hypotension and served to document the effects of captopril alone during the 150-min study period. Arterial blood samples for norepinephrine (NE), epinephrine (EPI), and plasma renin activity (PRA) were drawn prior to, during hypotension, and in the recovery period. The SNP dose required to maintain the hypotension was continuously recorded. NE, EPI, and PRA all increased in group H, indicating activation of both the renin-angiotensin system and the sympathetic system during hypotension. This was accompanied by a dramatic increase in SNP dose requirement. In the CH group, PRA levels rose sharply and remained elevated. Plasma NE levels increased, while EPI levels remained unchanged with a decline in the SNP dose requirement. The C group demonstrated a rise in PRA levels, accompanied by unchanged NE and EPI levels and MAP during the study period. Captopril administration decreased the SNP dose requirement and significantly decreased the sympathetic response (measured by NE and EPI levels) in group CH as compared to the H group.(ABSTRACT TRUNCATED AT 250 WORDS)

Anesthesia

The influence of captopril on the epinephrine response to insulin-induced hypoglycemia in humans. The interaction between the renin-angiotensin system and the sympathetic nervous system.

The aim of this study was to assess whether an interaction exists between the renin-angiotensin system and the sympathetic nervous system at the level of the adrenal medulla during insulin-induced hypoglycemia in normal humans. Seventeen healthy volunteers were studied in a randomized, single-dose, double-blind, cross-over fashion using 25 mg captopril v placebo followed by an intravenous injection of 0.15 IU/kg insulin. Blood samples were obtained before and at 15 min intervals after insulin injection. Both plasma glucose level and heart rate were identical during captopril and placebo at rest and after insulin. Plasma renin activity increased after insulin and captopril. The increase in plasma epinephrine was lower after insulin and captopril compared to after insulin and placebo. Likewise the increase in plasma norepinephrine was blunted on insulin and captopril. Thus, when the generation of angiotensin II was blocked by captopril the insulin-induced rise in epinephrine and norepinephrine was blunted. This indicates that an interaction exists between the renin-angiotensin system and the sympathoadrenal system.

Adult

Coronary arteriolar vasoconstriction in myocardial ischaemia: reflexes, sympathetic nervous system, catecholamines.

The sympathetic nervous system exerts important control over the coronary circulation. Studies from our laboratory have demonstrated that reflex input from skeletal muscle during static contraction causes coronary vasoconstriction. Similarly, stimulation of abdominal visceral chemosensitive afferents can, on occasions, elicit coronary vasoconstriction or limit the extent of vasodilation so that the myocardium needs to extract additional oxygen from arterial blood. Recently, we have examined the innervation of the coronary collateral circulation and found that these vessels contain catecholamines which demonstrate a pattern of fluorescence similar to that of catecholamines in the native circulation. Furthermore, stimulation of alpha 2- but not alpha 1-adrenoceptors can cause an increase in collateral vascular resistance. Thus, reflex input into the coronary circulation, perhaps during static exercise or post-prandially, can cause coronary vasoconstriction. Such constriction occurs in native coronary vessels and has the potential to be present in the coronary collateral circulation.

Animals

Interactions between ANG II, sympathetic nervous system, and baroreceptor reflexes in regulation of blood pressure.

The renin-angiotensin system plays an important role in the regulation of arterial blood pressure and in the development of some forms of clinical and experimental hypertension. It is an important blood pressure control system in its own right but also interacts extensively with other blood pressure control systems, including the sympathetic nervous system and the baroreceptor reflexes. Angiotensin (ANG) II exerts several actions on the sympathetic nervous system. These include a central action to increase sympathetic outflow, stimulatory effects on sympathetic ganglia and the adrenal medulla, and actions at sympathetic nerve endings that serve to facilitate sympathetic neurotransmission. ANG II also interacts with baroreceptor reflexes. For example, it acts centrally to modulate the baroreflex control of heart rate, and this accounts for its ability to increase blood pressure without causing a reflex bradycardia. The physiological significance of these actions of ANG II is not fully understood. Most evidence indicates that the actions of ANG to enhance sympathetic activity do not contribute significantly to the pressor response to exogenous ANG II. On the other hand, there is considerable evidence that the actions of endogenous ANG II on the sympathetic nervous system enhance the cardiovascular responses elicited by activation of the sympathetic nervous system.

Adrenal Medulla

Effects of decreasing arterial blood pressure on cerebral blood flow in the baboon. Influence of the sympathetic nervous system.

The influence of the sympathetic nervous system on the cerebral circulatory response to graded reductions in mean arterial blood pressure was studied in anesthetized baboons. Cerebral blood flow was measured by the 133Xe clearance method, and arterial blood pressure was decreased by controlled hemorrhage. In normal baboons, the constancy of cerebral blood flow was maintained until mean arterial blood pressure was approximately 65% of the base-line value; thereafter, cerebral blood flow decreased when arterial blood pressure was reduced. Superior cervical sympathectomy of 2-3 weeks duration did not affect the normal response. In contrast, both acute surgical sympathectomy (cervical trunk division) and alpha-receptor blockade (1.5 mg/kg of phenoxybenzamine) enhanced the maintenance of cerebral blood flow in the face of hemorrhagic hypotension in that cerebral blood flow did not decrease until mean arterial blood pressure was approximately 35% of the base-line value. The results indicate that the sympathetic nervous system is not involved in the maintenance of cerebral blood flow in the face of a fall in arterial blood pressure. Indeed, the implication is that the sympathicoadrenal discharge accompanying hemorrhagic hypotension is detrimental to, rather than responsible for, cerebral autoregulation.

Adrenergic alpha-Antagonists

Direct neurohumoral evidence for isolated sympathetic nervous system activation to skeletal muscle in response to cardiopulmonary baroreceptor unloading.

It has been postulated that cardiopulmonary baroreceptor unloading in humans results in nonuniform activation of the sympathetic nervous system. We reasoned that simultaneous measurements of arterial and venous norepinephrine (NE) spillover and clearance (using NE kinetics), muscle sympathetic neural activity (using microneurography), forearm blood flow (using plethysmography), and skin blood flow (using laser Doppler velocimetry) during lower body negative pressure at -15 mm Hg would isolate the location and extent of cardiopulmonary baroreceptor-mediated sympathetic nervous system activation. We exposed normal subjects (n = 8) to lower body negative pressure for 30 minutes, with measurements obtained at baseline, 5-10 minutes (EARLY), and 25-30 minutes (LATE). We found that arterial NE spillover, reflecting systemic sympathetic nervous system activation, did not increase significantly, whereas arterial NE clearance decreased significantly. In contrast, forearm venous NE spillover, reflecting skin and muscle sympathetic nervous system activation, increased by 17% and muscle sympathetic neural activity by 35% EARLY, whereas venous clearance did not change significantly. Although laser Doppler skin blood flow did not change, plethysmographic forearm blood flow (combined muscle and skin blood flow) decreased by 28%. All changes were sustained throughout 30 minutes of lower body negative pressure. Our data suggest that sympathetic vasoconstriction to muscle is greater than it is to skin in response to cardiopulmonary baroreceptor unloading. Moreover, our data suggest that reduced NE clearance in the arterial circulation is the primary mechanism by which arterial NE concentrations rise. Conversely, NE spillover appears to be the primary mechanism responsible for increasing venous NE concentrations measured from the forearm during cardiopulmonary baroreceptor unloading.

Adult

Regulation of the level of uncoupling protein in brown adipose tissue by insulin requires the mediation of the sympathetic nervous system.

The role of the sympathetic nervous system in the regulation by insulin of the level of uncoupling protein in brown adipose tissue has been examined. The amount of uncoupling protein was substantially reduced in streptozotocin-diabetic rats, while insulin replacement to diabetic animals induced a partial restoration. Unilateral denervation of the interscapular brown fat pads also lowered the amount of uncoupling protein, and in diabetic animals inhibited the stimulation of the level of the protein by insulin replacement. Maintenance of normal uncoupling protein levels requires both insulin and the sympathetic system; regulation of the protein by insulin involves sympathetic mediation.

Adipose Tissue, Brown

[Systemic arterial hypertension: pathogentic role of the sympathetic nervous system].

Role of the clinical and experimental data suggesting the role of the sympathetic nervous system in some essential hypertension are reviewed: increase in heart rate and diastolic blood pressure during orthostatism, increase in cardiac output resulting from increase in cardiopulmonary blood volume and/or in myocardial contractility, increase in peripheral resistances, elevated plasma catecholamines and dopamine-bêta-hydroxylase, disturbances in arterial baroreceptor sensitivity and in vascular response to adrenergic stimuli, elevated plasma renin activity. It appears that the role of a sympathetic overactivity is mainly important in labile hypertension with hyperkinetic syndrome and elevated plasma renin activity.

Animals

[Morphology of experimental tumors of the sympathetic nervous system].

Morphology of experimental tumours of the sympathetic nervous system in rabbits and hamsters induced by administration of nitrose compounds and the use of modifying factors was studied. The tumours were localized in the mediastinum, retroperitoneal space, adrenals and kidneys. The predominant involvement of the female animals was observed. Histological, histochemical and electron microscopic study of 33 tumours of the sympathetic nervous system was carried out. The tumours were classified as ganglioneuromas, ganglioneuroblastomas and sympathoblastomas by their degree of maturity. The experimental tumours by their structure were similar to the analogous neoplasias of man.

Adrenal Gland Neoplasms

Effect of cold exposure and nutrient intake on sympathetic nervous system activity in rat kidney.

Renal sympathetic nervous system (SNS) responses to environmental temperature and diet were evaluated using [3H]norepinephrine ([3H]NE) turnover as the index of sympathetic activity. Pharmacological studies first demonstrated that renal NE was localized principally within storage granules of renal sympathetic nerves and regulated by central sympathetic outflow. Acute exposure to cold (4 degrees C), which increased cardiac SNS activity (P < 0.00005), had no effect on renal SNS. A 48-h fast suppressed renal [3H]NE turnover by 37% (P = 0.00024) and cardiac [3H]NE turnover by 48% (P = 0.00608). Dietary supplementation with sucrose did not affect [3H]NE turnover in kidney in either of two separate experiments, although it increased cardiac NE turnover in both. On the other hand, lard feeding significantly increased [3H]NE turnover in both kidney and heart, whereas dietary protein supplementation exerted no effect on either renal or cardiac [3H]NE turnover. These studies demonstrate a unique pattern of sympathetic regulation in kidney, one which is highly responsive to fasting and dietary fat, but not to cold exposure or dietary sucrose.

Animals

The effects of perhexiline on the sympathetic nervous system.

The effects of perhexiline on sympathetic nervous system function were studied in vitro and in vivo. Perhexiline decreased the field stimulation-induced contractile response of the isolated vas deferens and significantly decreased the quantity of norepinephrine released during stimulation of this preparation. In vivo studies in dogs showed that perhexiline reduced the heart rate response to cardiac accelerator nerve stimulation, an effect not associated with an increase in cholinergic tone or beta adrenergic blockade. Measurements of norepinephrine released from the heart during cardiac nerve stimulation showed that perhexiline (3 mg/kg) decreased norepinephrine release by approximately 35%. These results suggest that a presynatpic effect of perhexiline, which results in a decrease in norepinephrine release, contributes significantly to the attenuated heart rate response which occurs after administration of this drug. A decrease in transmitter release during sympathetic stimulation could play an important role in the mechanism for the protective effects of perhexiline in myocardial ischemic damage.

Animals

Morphology of experimental tumors of the sympathetic nervous system.

The morphology of experimental tumors of the sympathetic nervous system in rabbits and hamsters induced by administration of nitrose compounds and the use of modifying factors were studied. The tumors were localized in the mediastinum, retroperitoneal space, adrenals and kidneys. A predominant involvement of the female animals was observed. Histological, histochemical and electron microscopic studies of 33 tumors of the sympathetic nervous system were carried out. By their degree of maturity the tumors were classified as ganglioneuromas, ganglioneuroblastomas and neuroblastomas. By their structure the experimental tumors were similar to the analogous neoplasias of man.

Animals