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Increased sympathetic nervous system activity and its therapeutic reduction in arterial hypertension, portal hypertension and heart failure.

Although the underlying mechanisms no doubt differ, activation of the sympathetic nervous system is an important pathophysiological feature in primary arterial hypertension, in portal hypertension accompanying hepatic cirrhosis, and in heart failure, and is a logical therapeutic target for centrally acting sympathetic nervous system suppressant drugs. Portal hypertension: The sympathetic outflows to skeletal muscle vasculature, the heart, the kidneys and to the hepatomesenteric circulation are stimulated in patients with alcoholic cirrhosis of the liver, perhaps as a reflex response to the vasodilatation and vascular shunting present. Acute dosing with clonidine produces dose dependent reduction in noradrenaline spillover from visceral organs and reduction in hepatic vein wedge pressure, with preservation of hepatic blood flow and negligible fall in arterial pressure. These findings indicate the clinical potential of drugs such as clonidine, moxonidine and rilmenidine for chronically lowering portal venous pressure in cirrhosis. Arterial hypertension: Activation of the sympathetic outflow to the heart, kidneys and skeletal muscle vasculature is commonly present in younger (< 45 years) patients with essential hypertension. The sympathetic stimulation appears to have adverse consequences in hypertensive patients beyond blood pressure elevation. Neural vasoconstriction in skeletal muscle has metabolic effects by impairing glucose delivery, which is a basis for insulin resistance and hyperinsulinemia. Within the heart a trophic effect of sympathetic activation on cardiac growth, contributing to the development of left ventricular hypertrophy, and an arrhythmogenic effect are also likely. Cardiac failure: The cardiac sympathetic nerves are preferentially stimulated in severe heart failure, with norepinephrine release from the failing heart at rest being increased as much as 50-fold, similar to the level seen in healthy people during near maximum exercise. This preferential activation of the cardiac sympathetic outflow contributes to arrhythmogenesis and possibly to progression of the heart failure, and has been directly linked to mortality; a high rate of spillover of noradrenaline from the heart is a strong, independent predictor of poor prognosis in severe cardiac failure. The mechanisms underlying sympathetic nervous stimulation are not entirely clear. Increased intracardiac diastolic pressure seems to be one peripheral signal, and increased forebrain norepinephrine turnover an important central mechanism. Following the demonstration of the beneficial effect of the beta-adrenergic blocker, carvedilol, and with second generation centrally acting sympathetic suppressants now under clinical investigation, elucidation of the abnormalities in central nervous control of sympathetic outflow in heart failure has become clinically relevant.

Animals↗

Aminoguanidine corrects hyperdynamic circulation without ameliorating portal hypertension and portal hypertensive gastropathy in anesthetized portal hypertensive rats.

BACKGROUND/AIMS: Portal hypertension and hyperdynamic circulation (i.e. generalized vasodilation and increased cardiac output and regional organ blood flows) may play an important role in the development of portal hypertensive gastropathy. This study investigated the effect of chronic administration of aminoguanidine, a selective inducible nitric oxide synthase inhibitor, to portal hypertensive rats on hemodynamics and the development of portal hypertensive gastropathy. METHODS: Partial portal vein-ligated or sham-operated rats were randomly assigned to receive either placebo (distilled water) or aminoguanidine (approximately 100 mg/kg per day subcutaneously) for 2 days prior to and 14 days. Hemodynamic studies with a thermodilution technique and gastric morphometric analysis were performed at 14 days after the operation. RESULTS: In rats given placebo, portal vein-ligated rats had a significantly lower mean arterial pressure and systemic vascular resistance associated with a significantly higher cardiac index and portal pressure than sham-operated rats (p<0.05). In portal vein-ligated rats aminoguanidine induced a significant increase in mean arterial pressure and systemic vascular resistance accompanied by a significant decrease in cardiac index (p<0.05) without changes in portal pressure (p>0.05). Despite persistence of portal hypertension, the aminoguanidine-treated portal vein-ligated rats had similar mean arterial pressure, cardiac index, and systemic vascular resistance as seen in placebo-treated sham-operated rats. The mean cross-sectional area of gastric mucosal vessels was significantly higher in placebo-treated portal vein-ligated than in placebo-treated sham-operated rats (p<0.05). Treatment with aminoguanidine did not induce changes in the mean cross-sectional area of gastric mucosal vessels in either portal vein-ligated or sham-operated rats (p>0.05). CONCLUSIONS: The results show that in portal hypertensive rats long-term aminoguanidine therapy corrects the hyperdynamic circulation without inducing changes in portal pressure and ameliorating the development of portal hypertensive gastropathy. This study suggests that, instead of correcting hyperdynamic circulation, treatment of portal hypertensive gastropathy should be aimed at reducing portal pressure.

Animals↗

Chronic administration of octreotide ameliorates portal hypertension and portal hypertensive gastropathy in rats with cirrhosis.

1. Portal hypertension and hyperdynamic circulation have been postulated to play a role in the pathogenesis of portal hypertensive gastropathy. Administration of octreotide to portal hypertensive rats has been shown to reduce portal pressure and ameliorate hyperdynamic circulation. 2. This study investigated the effects of chronic administration of octreotide on systemic and portal haemodynamics and the development of portal hypertensive gastropathy in carbon tetrachloride-induced cirrhotic rats. 3. After 12 weeks of carbon tetrachloride induction, cirrhotic rats were randomly assigned to receive either placebo (5% dextrose in water) or octreotide (65 micrograms/kg in 5% dextrose in water) subcutaneously twice daily for 10 days. Haemodynamic studies with a thermodilution technique and gastric morphometric analyses were performed at 10 days after treatment. 4. In cirrhotic rats, octreotide treatment induced a significant increase in systemic vascular resistance (2.7 +/- 0.2 versus 3.4 +/- 0.2 mmHg/ml.min-1.100 g-1, P < 0.05) and decrease in portal pressure (12.5 +/- 1.2 versus 9.9 +/- 0.5 mmHg, P < 0.05) compared with placebo-treated rats. In addition, octreotide treatment significantly reduced the mean cross-sectional area of gastric mucosal vessels (2290 +/- 145 versus 1810 +/- 101 micron 2, P < 0.05). 5. This study shows that chronic octreotide treatment ameliorates the development of portal hypertensive gastropathy in cirrhotic rats. The effect of octreotide on portal hypertensive gastropathy may, at least partly, be due to the alleviation of portal hypertension and hyperdynamic circulation.

Animals↗

Portal hypertension and portal hypertensive gastropathy in patients with liver cirrhosis: a haemodynamic study.

BACKGROUND/AIM: The relationships between the levels of portal hypertension and the morphologic alterations of gastric mucosa in patients with liver cirrhosis--generally described as portal hypertensive gastropathy--are poorly defined. PATIENTS: In total, 62 patients with cirrhosis of different aetiologies, were examined by endoscopy and measurement of portal hypertension by hepatic venous pressure gradient. RESULTS: Portal hypertensive gastropathy was observed in 49 cases; six patients showed gastric antral vascular ectasia always associated with gastric lesions described as severe portal hypertensive gastropathy with different localizations. Hepatic venous pressure gradient showed severe portal hypertension in 37 cases, and averaged 17.7 +/- 4.3 mmHg. It was much higher in patients with severe lesions (p=0.0004). Hepatic venous pressure gradient in patients with endoscopic signs of isolated antral gastropathy was lower (p=0.04) than in those with isolated lesions in body-fundus. No relationship was found between hepatic function, as assessed by the Child-Pugh score, and portal hypertensive gastropathy. CONCLUSIONS: The present data suggest that the severity of portal hypertensive gastropathy is related to portal hypertension, but portal hypertension is not the sole determinant of the occurrence of endoscopic abnormalities of gastric mucosa. The derangement of liver function does not appear to play any role in the occurrence of portal hypertensive gastropathy.

Endoscopy, Digestive System↗

[Correlation between pulmonary hypertension and portal hypertension--2 case reports of different forms of pre-sinusoidal portal hypertension].

Since its first description in 1951 by Mantz and Craig pulmonary hypertension in combination with portal hypertension has been observed more and more frequently. In a recent prospective study Hadengue et al. reported an incidence of 2%. Thus this simultaneous occurrence can no longer be considered to be coincidental. The etiology remains still unclear. It is most probable that the development is due to vasoactive substances which bypass the liver or which are produced in the lung itself, and which, due to a long-term vasoconstriction, causes irreparable damage to the arterioles and arteries in the lung. Such pulmonary hypertension can develop in the presence of a pre- as well as an intrahepatic block, even when the portal hypertension is partially or completely alleviated by a portosystemic anastomosis. This last circumstance can be illustrated by two cases which were observed by our group. Case A is of particular interest because it is the first documentation of a case of an intrahepatic block due to a (so-called) macronodular transformation of the liver in the absence of portal thrombosis (a so-called NRH: nodular regenerative hyperplasia) in combination with pulmonary hypertension. This type of non-cirrhotic portal hypertension can be associated with micronodular transformation of the liver as well. Post-hepatic blocks or the so-called BUDD-CHIARI Syndrome type appear to carry no risk of development of pulmonary hypertension. It remains unclear which particular etiologies increase susceptibility to later development of pulmonary hypertension.

Adolescent↗

Non-cirrhotic portal hypertension versus idiopathic portal hypertension.

Portal hypertension occurs in a number of disorders other than cirrhosis and they are collectively called non-cirrhotic portal hypertension (NCPH). The common causes of NCPH include idiopathic portal hypertension (IPH), non-cirrhotic portal fibrosis (NCPF) and extrahepatic portal venous thrombosis (EHPVT). Other causes include schistosomiasis, hepatic venous outflow tract obstruction, veno-occlusive disease and congenital hepatic fibrosis. Patients with IPH and EHPVT present with upper gastrointestinal bleeding, splenomegaly, ascites after gastrointestinal bleeding, features of hypersplenism, growth retardation and jaundice due to portal biliopathy. The diagnosis is usually made by abdominal ultrasound, upper gastrointestinal endoscopy, normal liver function tests and normal liver histology. Variceal bleeding in NCPH has lower mortality as compared with cirrhosis because of better liver functions in NCPH. Treatment for NCPH includes primary prophylaxis for variceal bleeding and prevention of repeat bleeding using drugs like beta-blockers, endoscopic sclerotherapy and endoscopic band ligation of varices. In patients with uncontrolled variceal bleeding or symptomatic hypersplenism, porto-systemic shunt surgery or splenectomy are required.

Humans↗

Effects of nitric oxide and cyclooxygenase inhibition on splanchnic hemodynamics in portal hypertension.

Portal hypertension is associated with splanchnic hyperemia and increased plasma levels of prostacyclin. Recently, nitric oxide was proposed as a mediator of this arterial vasodilatation. We hypothesized that portal hypertension alters the relative contribution of prostacyclin and nitric oxide to splanchnic vasomotor control. We studied the relationship of nitric oxide and prostaglandins in normal and portal-hypertensive (3 wk after partial portal vein ligation) male rabbits at baseline and following increasing doses of indomethacin, LG-nitro-L-arginine methylester or both. L-arginine was used as the control. Aortic, central and portal venous pressures were measured directly. Blood flow in the superior mesenteric artery was measured by means of an ultrasonic flow probe, and resistance was calculated. LG-nitro-L-arginine methylester produced vasoconstriction (increased resistance and decreased blood flow in the superior mesenteric artery) in normal and portal-hypertensive rabbits, although in portal hypertensive animals resistance and superior mesenteric artery blood flow remained significantly different than that in normal rabbits because of preexisting hyperemia. L-arginine reversed the effect of LG-nitro-L-arginine methylester. Cyclooxygenase blockade induced dose-dependent vasoconstriction in normal and portal-hypertensive animals. Indomethacin induced further vasoconstriction after LG-nitro-L-arginine methylester and reduced portal venous pressure in portal-hypertensive animals. We conclude that this indicates an amplified role for some prostaglandin, probably prostacyclin, in portal hypertension hemodynamics. It also implies that the two vasodilators act by way of independent mechanisms.

Animals↗

Etiology and pathophysiology of portal hypertension.

Portal hypertension may result from increased resistance of the hepatic vascular bed ("backflow") and from a hyperdynamic splanchnic circulation ("forward flow" theory). Most likely, both mechanisms contribute to the formation of portal hypertension in man. The classical macroscopic terminology describes prehepatic, intrahepatic and posthepatic forms of portal hypertension. Increased splanchnic blood flow represents the predominant cause of some pre- and intrahepatic types of portal hypertension. Intrahepatic portal hypertension has been subclassified as presinusoidal, sinusoidal or postsinusoidal. However, one to one allotments of diseases to this classification may not be made. The relative contribution of each of these causes to the increased portal pressure of liver cirrhosis varies with the etiology of the disease. A new ultrastructural classification of the processes leading to portal hypertension differentiates primarily hepatocellular (e.g., increased hepatocellular size) from interstitional causes (e.g., sinusoidal capillarization). The role of the fenestrated sinusoidal endothelial cells in the regulation of intrahepatic resistance and, thus, for the generation of portal hypertension is poorly defined up to date. A thorough evaluation of the effects of prostanglandins, leukotrienes, catecholamines, serotonin and others on sinusoidal endothelial cells and hepatic microcirculation may provide the basis for new therapeutic avenues.

Humans↗

Prostacyclin mediates splanchnic vascular response to norepinephrine in portal hypertension.

Portal hypertension is characterized by increased splanchnic blood flow. This hyperemia may be related to the documented in vitro impaired sympathetic response in portal hypertension. Because prostacyclin (PGI2) has been shown to be elevated in portal hypertensive rabbits, we studied whether PGI2 could mediate the reduced sympathetic response. We measured the change in the superior mesenteric artery resistance (Rsma) to norepinephrine infusion in chronic portal vein ligated (PHT) and normotensive rabbits, in both portal hypertensives and normals following cyclooxygenase blockade with 8 mg/kg indomethacin, and finally in portal hypertensive, cyclooxygenase-blocked rabbits with a constant IV infusion of PGI2 at 200 or 300 ng/kg/min. Dose-response curves were obtained and statistical comparisons were based on the dose of norepinephrine producing 50% of maximal Rsma response (ED50). Portal hypertensive rabbits had significantly higher ED50 (310 +/- 4.1 mg/kg) than normotensive rabbits (150 +/- 4.1 mg/kg, P less than 0.01). Cyclooxygenase blockade resulted in marked reduction of the ED50 in both groups and ablated the difference between normotensive and PHT rabbits (20 +/- 2.4 and 20 +/- 2.8 mg/kg/min, respectively). Prostacyclin infusion at 200 ng/kg/min increased the ED50 (80 +/- 2.5 mg/kg) and PGI2 infusion at 300 ng/kg/min increased the ED50 further (160 +/- 7.5 mg/kg/min, P less than 0.01 vs cyclooxygenase-blocked only rabbits). These results provide the first in vivo evidence of reduced splanchnic sensitivity to norepinephrine in portal hypertension and demonstrate that PGI2 will cause a dose-related decrease in sympathetic response.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Choledochal cyst associated with portal hypertension.

Portal hypertension is a known complication of delayed presentation of choledochal cyst. In the literature, choledochal cyst presenting with portal hypertension has not been addressed adequately. The aetiology of portal hypertension in these cases has not been well studied, but it may be related to compression of the cyst over the portal vein, secondary biliary cirrhosis, or even extrahepatic portal venous thrombosis. We present our experience with four cases of choledochal cysts with associated portal hypertension over a 10-year period (1991-2001). Gastrointestinal bleeding, splenomegaly or incidental discovery of oesophageal varices led to the diagnosis of associated portal hypertension. Excision of choledochal cyst and bilioenteric bypass may not be feasible in those patients with massive collaterals in the region of porta with secondary portal hypertension. An initial approach of internal drainage (endoscopic/operative) of the cyst may allow regression of collaterals and subsequent safe excision of the cyst in this difficult group of patients. The liver function and histopathology dictated the final outcome.

Child↗

Diminished angiotensin-II and intact vasopressin response to hemorrhage in portal hypertension.

Portal hypertension is characterized by splanchnic vasodilation and diminished arterial vasoconstrictor response to hemorrhage. Angiotensin-II and arginine vasopressin are critical modulators of the splanchnic response to hemorrhage in normal animals. We hypothesized that alterations in endogenous renin, angiotensin-II, or arginine vasopressin production or release could contribute to the abnormal response to hemorrhage in portal hypertension. Hemodynamics were studied in normal and portal hypertensive rabbits following either graded isovolumetric or single large volume hemorrhage, followed by reinfusion of blood. Hemodynamic and renin-angiotensin-II, and arginine vasopressin activities were determined. The experiments demonstrated a significantly diminished appearance in angiotensin-II (110.87+/-30 vs. 245+/-51.0 pg/mL) and aldosterone (54.2+/-9.5 vs. 119.4+/-13.5 ng/dL), and plasma renin activity (19.4+/-4.2 vs. 29.1+/-2.8 ng/mL/h) in portal hypertension compared with normal, but an appropriate rise in arginine vasopressin levels following hemorrhage in portal hypertension. These findings suggest a diminished angiotensin-II production or release in portal hypertension, which may mediate the failure of the appropriate splanchnic vasoconstrictive response to hemorrhage.

Angiotensin II↗

Research progress of vasculopathy in portal hypertension.

Portal hypertension, one of the vascular diseases, not only has lesions in liver, but also changes in vascular structures and functions of extrahepatic portal system, systemic system and pulmonary circulation. The pathological changes of vasculopathy in portal hypertension include remodeling of arterialized visceral veins, intimal injury of visceral veins and destruction of contractile structure in visceral arterial wall. The mechanisms of vasculopathy in portal hypertension may be attributed to the changes of hemodynamics in portal system, immune response, gene modulation, vasoactive substances, and intrahepatic blood flow resistance. Portal hypertension can cause visceral hyperdynamic circulation, and the development and progression of visceral vasculopathy, while visceral vasculopathy can promote the development and progression of portal hypertension and visceral hyperdynamic circulation in turn. The aforementioned three factors interact in the pathogenesis of hepatic cirrhosis-induced portal hypertension and are involved in hemorrhage due to varicose vein rupture.

Animals↗

Portal hypertension.

Portal hypertension, the main complication of cirrhosis, is responsible for its most common complications: variceal hemorrhage, ascites, and portosystemic encephalopathy. Portal hypertension is the result of increased intrahepatic resistance and increased portal venous inflow. Vasodilatation (splanchnic and systemic) and the hyperdynamic circulation are hemodynamic abnormalities typical of cirrhosis and portal hypertension. Gastroesophageal varices result almost solely from portal hypertension, although the hyperdynamic circulation contributes to variceal growth and hemorrhage. Ascites results from sinusoidal hypertension and sodium retention, which, in turn, is secondary to vasodilatation and activation of neurohumoral systems. The hepatorenal syndrome represents the result of extreme vasodilatation, with an extreme decrease in effective blood volume that leads to maximal activation of vasoconstrictive systems, renal vasoconstriction, and renal failure. Spontaneous bacterial peritonitis is a potentially lethal infection of ascites that occurs in the absence of a local source of infection. Portosystemic encephalopathy is a consequence of both portal hypertension (shunting of blood through portosystemic collaterals) and hepatic insufficiency that result in the accumulation of neurotoxins in the brain. This review covers the recent advances in the pathophysiology and management of the complications of portal hypertension.

Journal Article↗

Hepatic, splanchnic and systemic haemodynamic abnormalities in portal hypertension.

Portal hypertension is characterized by a pathological increase in portal venous pressure that leads to the formation of portosystemic collaterals that divert portal blood to the systemic circulation, bypassing the liver. Increased vascular resistance to portal blood flow is the initiating factor in portal hypertension. Increased resistance along the hepatic and portocollateral circulation is in part modifiable by pharmacological agents. An additional factor is splanchnic vasodilatation with increased portal blood inflow, which contributes to the maintenance and aggravation of the portal hypertension. Endogenous vasodilators are thought to be responsible for the splanchnic hyperaemia of portal hypertension. Vasodilatation is also prominent in the stomach and lungs, and plays an important role in the pathophysiology of portal hypertensive gastropathy and of the hepatopulmonary syndrome. The systemic circulation is markedly hyperkinetic, with reduced arterial pressure and peripheral resistance and increased cardiac output. The plasma volume is expanded due to renal sodium retention. The expanded plasma volume enables the increase in cardiac output, and represents another mechanism contributing to the increase in portal pressure.

Blood Flow Velocity↗

Portal hypertension.

Portal hypertension is the main complication of cirrhosis and is responsible for its most common complications: variceal hemorrhage, ascites, and portosystemic encephalopathy. Portal hypertension is the result of increased intrahepatic resistance and increased portal venous inflow, which in turn is the result of splanchnic vasodilatation. Vasodilatation (splanchnic and systemic) and hyperdynamic circulation are hemodynamic abnormalities typical of cirrhosis and portal hypertension. Gastroesophageal varices result almost solely from portal hypertension, although the hyperdynamic circulation contributes to variceal growth and hemorrhage. Ascites results from sinusoidal hypertension and sodium retention, which is, in turn, secondary to vasodilatation and activation of neurohumoral systems. The hepatorenal syndrome represents the result of extreme vasodilatation with an extreme decrease in effective blood volume that leads to maximal activation of vasoconstrictive systems, renal vasoconstriction, and renal failure. Spontaneous bacterial peritonitis is a potentially lethal infection of ascites that occurs in the absence of a local source of infection. Portosystemic encephalopathy is a consequence of both portal hypertension (shunting of blood through portosystemic collaterals) and hepatic insufficiency that result in the accumulation of neurotoxins in the brain. This paper reviews the recent advances in the pathophysiology and management of the complications of portal hypertension.

Journal Article↗

Noncirrhotic intrahepatic portal hypertension.

Portal hypertension, widely recognized as a complication of cirrhosis, may also develop as an intrahepatic consequence of numerous hepatic disorders in the absence of cirrhosis. When gastrointestinal bleeding occurs in such cases, ruptured esophageal varices must be considered. Among chronic liver diseases, some, such as schistosomiasis, are commonly associated with portal hypertension and its complications. In others, including tuberculosis, amyloidosis, and polycystic disease, well-documented portal hypertension has been reported in only a small minority of cases. Nevertheless, because of the ever-present possibility of variceal hemorrhage whenever portal hypertension occurs, clinicians should be aware of these disorders. Acute conditions associated with noncirrhotic intrahepatic portal hypertension include acute (and particularly fulminant) viral or drug-induced hepatitis, acute alcoholic hepatitis, acute veno-occlusive disease, and acute fatty liver of pregnancy. Portal hypertension may be reversible following recovery in these settings. Particular attention is called to the increasing frequency of acute veno-occlusive disease on bone marrow transplant units, presumably as a complication of high-dose chemo- and radiotherapy.

Adolescent↗