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Biomedical subjects

D Kravetz

Publications and source records attributed to D Kravetz.

At least 19 recordsLinked to original sources

Paracentesis with Dextran 70 vs. paracentesis with albumin in cirrhosis with tense ascites. Results of a randomized study.

Forty-one patients with cirrhosis and tense ascites were randomized to receive daily paracentesis of 5 liters associated with Dextran 70 as volume expander (6 g for each 1000 ml of ascites removed) (group I = 20 patients) or paracentesis with albumin (6 g for each 1000 ml of ascites) (group II = 21 patients). The basal clinical features, laboratory data, and plasma renin activity were similar in both groups. The volume of ascites removed was 12.9 +/- 4.4 and 10.9 +/- 3.7 liters in group I and II, respectively (n.s.). No significant changes were observed in liver and renal function tests, KPTT, platelet count, factor VIII, serum electrolytes or plasma renin activity 24 and 96 h after the last paracentesis in both groups, except for a decrease in bilirubin in group I and a transient increase of serum albumin in group II. Four patients developed complications in each group, mainly hyponatremia, while one patient in each group developed renal impairment. One patient from group I died with hepatic encephalopathy. Moreover, the probability of survival and readmission to the hospital because of tense ascites were similar in both groups of patients during the follow-up. The treatment cost with Dextran 70 was 15.50 dollars vs. 364.30 dollars with albumin for each patient treated. These results indicate that repeated large volume paracentesis associated with Dextran 70 is as effective and safe as paracentesis associated with albumin in cirrhotic patients with tense ascites. However, due to its reduced cost, paracentesis with Dextran 70 may be considered the treatment of choice in cirrhotic patients with tense ascites without liver cancer and renal failure.

Ascites

Hemodynamic effects of blood volume restitution following a hemorrhage in rats with portal hypertension due to cirrhosis of the liver: influence of the extent of portal-systemic shunting.

The present study investigated whether, in rats with portal hypertension due to cirrhosis of the liver induced by carbon tetrachloride, blood volume restitution following a hemorrhage produces an increase of portal pressure beyond control values, as observed in rats with prehepatic portal hypertension. Since carbon tetrachloride-induced cirrhosis caused mild portal-systemic shunting, in some of the cirrhotic rats (12 of 29 rats) portal-systemic shunting was enhanced by a transient (4 days) partial constriction of the portal vein, which was removed 1 week prior to the study. After baseline measurements of portal pressure and arterial pressure, 15 ml per kg of blood were withdrawn at a rate of 0.3 ml per min and reinfused 15 min later. After blood reinfusion, portal pressure and arterial pressure were measured again, and cardiac output, regional blood flows and portal-systemic shunting were determined using radioactive microspheres. Portal-systemic shunting was 78 +/- 11% of total blood flow in the cirrhotic rats that had temporary portal vein constriction, but only 5 +/- 2% (p less than 0.001) in those that did not. Blood volume restitution in low-portal-systemic shunting rats did not produce any significant modification in splanchnic or systemic hemodynamics. However, in rats with high portal-systemic shunting, blood volume restitution produced a significant increase in portal pressure (from 9.9 +/- 0.9 to 13.5 +/- 0.9 mmHg, p less than 0.02).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Beta-blockade with propranolol and hepatic artery blood flow in patients with cirrhosis.

In patients with cirrhosis and portal hypertension, propranolol administration reduces heart rate and cardiac output and diminishes portal pressure and collateral blood flow. However, there is little information on the possible effects of propranolol on hepatic artery blood flow. The present study addressed this question in 12 cirrhotic patients with end-to-side portacaval shunt, in whom all of the liver blood flow represents the hepatic artery blood flow. Hepatic artery blood flow (continuous infusion of indocyanine green), cardiac output (thermal dilution), heart rate and mean arterial pressure were measured before and 20 min after the intravenous infusion of 10 to 15 mg of propranolol. beta-Adrenergic blockade caused a significant reduction of cardiac output (from 9.1 +/- 2.1 to 7.1 +/- 1.4 liters per min, p less than 0.001) (mean +/- S.D.) and heart rate (from 85 +/- 10 to 71 +/- 7 beats per min, p less than 0.001), and a significant increase of systemic vascular resistance (from 9.0 +/- 2.1 to 11.7 +/- 2.7 mmHg per liter per min, p less than 0.001), whereas mean arterial pressure did not change (77 vs. 78 mmHg). Propranolol significantly reduced hepatic artery blood flow (from 0.65 +/- 0.20 to 0.55 +/- 0.14 liters per min, p less than 0.01). However, reduction of hepatic artery blood flow (-12.9 +/- 7.3%) was significantly less than reduction of cardiac output (-21.1 +/- 5.2%, p less than 0.01). As a result, the fraction of the cardiac output delivered to the liver was significantly greater after propranolol (8.0 +/- 1.7%) than before (7.3 +/- 1.7%, p less than 0.05).(ABSTRACT TRUNCATED AT 250 WORDS)

Female

Propranolol decreases portal pressure without changing portocollateral resistance in cirrhotic rats.

Propranolol decreases portal pressure by reducing portal blood inflow. Studies in rats with prehepatic portal hypertension due to portal vein stenosis (a model with extensive portosystemic shunting) have shown that propranolol increases the portocollateral resistance, which hinders the fall in portal pressure. The present study examined the effects of propranolol on splanchnic and systemic hemodynamics in rats with portal hypertension due to cirrhosis of the liver, a model which is characterized by mild portosystemic shunting. Two groups of rats with CCl4-induced cirrhosis were studied: the propranolol group (n = 8), which received a propranolol infusion of 2 mg per 15 min, and controls (n = 9), which received a placebo (saline) infusion. Hemodynamic measurements were done using radiolabeled microspheres. Propranolol-treated rats had significantly lower cardiac output (-31%) and heart rate (-26%) than controls (p less than 0.001). Hepatic artery flow was not modified by propranolol. Propranolol caused splanchnic vasoconstriction, manifested by increased splanchnic resistance (+57%) and by a significant fall in portal blood inflow (4.8 +/- 0.4 vs. 6.3 +/- 0.5 ml per min.100 gm in controls, p less than 0.05). In contrast with rats with prehepatic portal hypertension, propranolol did not increase portal resistance in cirrhotic rats [2.0 +/- 0.2 vs. 2.0 +/- 0.1 mmHg per ml per min.100 gm body weight (not significant)]. Hence, the fall in portal pressure (-19%) was expected from the decrease in portal inflow (-24%). These results suggest that increased portal resistance in rats with prehepatic portal hypertension may represent an intrinsic effect of propranolol on the portocollateral vessels, since beta-blockade does not modify portal vascular resistance in cirrhosis.

Animals

Interaction of hemopexin, albumin and liver fatty acid-binding protein with protoporphyrin.

Equilibrium constants for the binding of protoporphyrin to serum albumin and hemopexin and liver cytosolic fatty acid-binding protein of the rat were determined fluorometrically. The experimental equilibrium constant [10(6) M-1 (mean +/- S.D.)] values were 8.4 +/- 1.3, 10.0 +/- 2.4 and 34.0 +/- 3.0 for albumin, hemopexin and liver fatty acid-binding protein, respectively. Statistical analysis showed the equilibrium constant of binding of protoporphyrin to liver fatty acid-binding protein to be significantly (p less than 0.01) higher than that to albumin and hemopexin. The data suggest that in patients with erythropoietic protoporphyria an equilibrium gradient may exist which favors the uptake by hepatocytes of plasma protoporphyrin as a result of its greater affinity for intracellular liver fatty acid-binding protein.

Animals

Endoscopic measurement of variceal pressure in cirrhosis: correlation with portal pressure and variceal hemorrhage.

This study evaluated the clinical application of a pressure-sensitive gauge that allows the noninvasive measurement of the pressure of esophageal varices at endoscopy. The study was performed in 70 patients with cirrhosis and portal hypertension. Among them, 47 had bled from the varices and 23 had varices but had not bled. In addition to measurements of variceal pressure, the size of the varices was estimated semiquantitatively at endoscopy. This allowed an estimate of the tension on the wall of the varices as the product of the transmural pressure and the estimated radius of the varices. Most patients had a standard hemodynamic evaluation of portal hypertension, with measurements of wedged and free hepatic venous pressures, and of azygos blood flow. These were performed within 24 h of the variceal pressure measurements. Variceal pressure was significantly higher in bleeders than in nonbleeders (15.7 +/- 2.8 vs. 12.1 +/- 2.6 mmHg, p less than 0.001) in spite of a similar portal pressure in both groups (20.1 +/- 5.1 vs. 20.4 +/- 7.6 mmHg, NS). More than 60% of the bleeders, but only 22% of the nonbleeders had a variceal pressure greater than or equal to 15 mmHg (p less than 0.005). Among nonbleeders, variceal pressure was higher in patients with large varices (13.9 +/- 2 mmHg, n = 9) than in those with small varices (10.9 +/- 2.4 mmHg, n = 14) (p less than 0.01). Estimates of variceal wall tension further exaggerated the differences between bleeders and nonbleeders (66.1 +/- 22.6 vs. 32.0 +/- 19.8 mmHg.mm, p less than 0.001). More than 50% of bleeders, but just 9% of nonbleeders had an estimated variceal tension greater than 50 mmHg.mm (p less than 0.001). Our findings support the role of an increased variceal pressure in the pathogenesis of variceal hemorrhage, and suggest that this noninvasive technique can be valuable in assessing the risk of variceal hemorrhage in patients with portal hypertension.

Endoscopes

Effects of somatostatin on splanchnic hemodynamics and plasma glucagon in portal hypertensive rats.

The effects of somatostatin infusion on splanchnic and systemic hemodynamics and plasma glucagon levels were investigated in rats with portal hypertension. Forty-four male Sprague-Dawley rats were studied. Portal hypertension was induced in 26 rats by partial portal vein ligation (PVL). These rats were divided in two experimental groups to receive blindly 1) somatostatin (PVL-SMT, n = 13) at a dose of 25 micrograms/kg body wt during 30 min preceded by a bolus injection of 15 micrograms/kg body wt or 2) placebo (saline) (PVL-P, n = 13) infused at the same rate as in the previous group. The remaining 18 rats were used as normal controls and received somatostatin (n = 9) or saline infusion (n = 9). Regional blood flows and cardiac output were measured using radioactive microspheres. Arterial and portal pressures were also measured. In portal hypertensive rats somatostatin infusion produced significant reductions in the increased portal venous inflow, reductions in portal pressure, and significantly increased portal venous resistance. Reduction of portal venous inflow was due to splanchnic vasoconstriction, evidenced by increased splanchnic arteriolar resistance. No significant differences were observed in systemic hemodynamic parameters between PVL-SMT and PVL-P rats. Plasma glucagon levels were significantly reduced by somatostatin to levels similar to those observed in sham-operated rats. In sham-operated rats, somatostatin also caused significant reduction in portal venous inflow and plasma glucagon concentration, although these changes were of lesser magnitude than in portal hypertensive rats.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Effects of somatostatin in patients with portal hypertension.

Portal hypertension is a common complication of chronic liver disease. Conventional therapy consists of surgery and palliative measures for the hemodynamic problem. It has been recently reported that somatostatin may reduce portal pressure without altering the systemic circulation and so reducing hepatic blood flow. This peptide also causes a significant fall in azygos circulation in patients with esophageal varices. The mechanism of this effect is unclear although suppression of intestinal vasodilating hormones and of glucagon have been claimed to play a role. Comparative clinical studies have shown somatostatin to be superior to the standard vasopressin treatment. Recent findings suggest that the efficacy of somatostatin can be increased by administering this peptide in repeated intravenous bolus injections. New derivatives, specially long-acting peptides, may eventually prove beneficial in the chronic treatment of this complication.

Blood Pressure

Diagnosis and evaluation of portal hypertension.

In the past recent years there have been several major innovations in the diagnosis and evaluation of portal hypertension. These include the application of new endoscopic, ultrasonographic and haemodynamic techniques that allow a better evaluation of the portal hypertensive patient, specially when prophylactic medical therapy is considered. Ultrasonography is very useful to assess the patency of the portal vein. The association of a pulsed Doppler flowmeter increases its accuracy and allows the non-invasive estimation of the direction and magnitude of portal blood flow. Endoscopic measurements of variceal pressure may help to understand the mechanism of variceal bleeding, and perhaps might permit to assess the risk of haemorrhage in the individual patient. In addition to the measurement of portal pressure, measurement of blood flow through the azygos vein has been the major innovation in the haemodynamic evaluation of portal hypertension. Azygos blood flow represents an index of blood flow through gastroesophageal collaterals and varices draining in the azygos vein. This technique has been very useful in the development of new forms of pharmacological therapy for portal hypertension.

Azygos Vein

Hyposensitivity to vasopressin in a hemorrhaged-transfused rat model of portal hypertension.

This study was designed to evaluate the hemodynamic response to vasopressin infusion during hemorrhage and blood transfusion in a rat model of portal hypertension. Portal pressure, arterial pressure, and regional and systemic blood flows were measured in a rat model of portal hypertension receiving placebo or vasopressin infusion. Effects of the drugs were compared in control rats and rats subjected to hemorrhage and blood transfusion. In a stable portal hypertensive rat group (no hemorrhage or transfusion) a standard vasopressin dose, 2.5 mU X kg-1 X min-1, resulted in a significantly lower portal pressure (11.5 +/- 0.7 vs. 14.4 +/- 0.6 mmHg) with a concomitantly lower portal venous inflow (8.5 +/- 0.3 vs. 11.1 +/- 0.6 ml X min-1 X 100 g body wt-1) when compared with rats receiving placebo. These findings are in contrast to the effects obtained with the same dose of vasopressin given during blood transfusion to hemorrhaged portal hypertensive rats. The standard dose of vasopressin had no effect on any of the splanchnic or systemic circulatory parameters. Only when a dose of vasopressin 10 times larger was used in the hemorrhaged-transfused animals were hemodynamic effects noted. A significant decrease in portal flow and pressure was noted. These findings suggest that vasopressin given during hemorrhage may be less effective than when given during a stable state. Larger doses of vasopressin may be needed during hemorrhage to produce the same effect as seen during a controlled stable state. Caution should be used in extrapolating the results of pharmacologic studies in stable portal-hypertensive models to hypovolemic states in humans.

Animals

Effects of alpha-adrenergic stimulation and beta-adrenergic blockade on azygos blood flow and splanchnic haemodynamics in patients with cirrhosis.

The effects of beta-blockade with propranolol and of alpha-adrenergic stimulation with methoxamine, a powerful alpha-agonist, on azygos blood flow and on systemic and hepatic haemodynamics were investigated in 26 cirrhotic patients with portal hypertension. Beta-adrenergic blockade with propranolol (n = 12), evidenced by a significant reduction of heart rate (-17 +/- 1%, P less than 0.001) and cardiac index (-17 +/- 2%, P less than 0.001), caused a mild but significant decrease of hepatic venous pressure gradient (-10 +/- 2%, P less than 0.05) and a marked fall of azygos venous blood flow (-31 +/- 5%, P less than 0.05). Alpha-adrenergic stimulation with methoxamine (n = 14), manifested by a significant increase of mean arterial pressure (19 +/- 2%, P less than 0.001), mimicked the effects of propranolol on hepatic venous pressure gradient (-10 +/- 4%, P less than 0.05) and cardiac index (-11 +/- 2%, P less than 0.001). However, azygos blood flow was not significantly reduced by methoxamine (0.7 +/- 0.1 vs 0.6 +/- 0.1 l/min). On the contrary, hepatic blood flow was significantly reduced by methoxamine (-19 +/- 4%, P less than 0.01) but not by propranolol (-7 +/- 7%, ns). Similarly, in 8 patients who received methoxamine after being beta-blocked by propranolol, azygos blood flow, that was markedly reduced by beta-blockade, did not experience a further reduction but increased slightly by alpha-adrenergic stimulation, while hepatic blood flow, that was not reduced by propranolol, decreased significantly during the subsequent methoxamine infusion.(ABSTRACT TRUNCATED AT 250 WORDS)

Azygos Vein

Hyperglucagonemia and hyperkinetic circulation after portocaval shunt in the rat.

The study was aimed at investigating whether increased portal venous inflow (PVI) after portocaval shunt (PCS) in the rat is the result of selective splanchnic vasodilatation or whether it is part of a generalized circulatory disturbance. Rats with PCS (n = 9) and sham-operated controls (n = 8) were studied 2 wk after surgery by measuring cardiac output (CO), PVI, and hepatic artery flow (HAF) with radioactive microspheres. Plasma glucagon (GL) was measured by radioimmunoassay. PCS rats had increased CO (46.2 +/- 2.8 vs. 28.2 +/- 1.7 ml X min-1 X 100 g-1, P less than 0.001) and reduced arterial pressure and total peripheral resistance. PVI was markedly increased (7.7 +/- 0.7 vs. 4.3 +/- 0.2 ml X min-1 X 100 g-1, P less than 0.001), but this appeared to be part of a generalized circulatory disturbance, since when PVI is expressed as percent of CO no difference is observed between PCS and sham-operated rats (17.0 +/- 1.5 vs. 15.8 +/- 1.3%, NS), indicating the absence of a preferential splanchnic vasodilatation. GL increased after PCS (548 +/- 130 vs. 156 +/- 23 pg/ml, P less than 0.005), and significant correlations were observed between GL and CO (r = 0.787, P less than 0.001) and between GL and PVI (r = 0.806, P less than 0.001).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Increased plasma volume in two models of portal hypertension in the rat: cirrhosis of the liver and partial portal vein ligation.

Portal hypertension has been studied in the rat to see if it is associated to altered blood volume composition, as it has been shown in other species. Plasma volume was measured by isotope dilution using 99mTc labelled albumin in three groups of male Sprague-Dawley rats: normal rats (controls), partially ligated portal vein rats and rats with Cl4C induced cirrhosis. Plasma volume was significantly higher in rats with portal hypertension due to partially ligated portal vein and cirrhosis than in control animals. Similarly, the calculated blood volume was also significantly higher in the portal hypertensive animals than in control group. Portal hypertension in the rat, therefore, has been demonstrated to be associated to a marked hypervolemia and this finding should be taken into consideration in haemodynamic and pharmacokinetic studies in portal hypertensive rat models.

Animals

Splanchnic and systemic hemodynamics in portal hypertensive rats during hemorrhage and blood volume restitution.

In portal hypertension the hemodynamic events after episodes of bleeding and blood transfusions may have important pathophysiological and therapeutic implications. The present study was designed to evaluate the effect of hemorrhage and blood restitution on splanchnic and systemic hemodynamics in a rat model of portal hypertension induced by portal vein constriction. In 16 portal hypertensive rats, sequential measurements of arterial and portal pressure were obtained during withdrawal and reinfusion of 15 ml X kg-1 body wt of blood. At the completion of the hemorrhage, a decrease of 16.9% +/- 2.6% in arterial pressure and 27.3% +/- 2.2% in portal pressure was observed. After blood reinfusion, arterial pressure returned to baseline values while portal pressure increased by 20.4% +/- 3.2% (p less than 0.01). This increase in portal pressure was not observed in 5 normal rats that were subjected to the same blood volume changes. Hemodynamic studies using a radioactive microsphere technique revealed that the withdrawal of 15 ml X kg-1 body wt of blood is followed by a decrease in portal venous inflow (6.4 +/- 0.4 vs. 10.4 +/- 0.6 ml X min-1 X 100 g-1 body wt in the control group, p less than 0.01). After blood volume restitution, the portal venous inflow returned to control values while the portal-collateral resistance increased significantly (2.06 +/- 0.13 vs. 1.67 +/- 0.07 mmHg X min X ml-1. 100 g, p less than 0.05). These results indicate that during hypovolemia there is a marked reduction in portal pressure because of a reduction in portal venous inflow. Blood volume restitution returns the portal venous inflow to control values. However, the portal pressure increases beyond control values because of an increase in portal-collateral resistance.

Animals

Effects of prostaglandin inhibition on systemic and hepatic hemodynamics in patients with cirrhosis of the liver.

The role of prostaglandins in the pathogenesis of the circulatory abnormalities of cirrhosis was investigated by studying the effects of prostaglandin inhibition with indomethacin (50 mg/8 h for 24 h) on the systemic and splanchnic hemodynamics in 13 patients with cirrhosis of the liver. Indomethacin administration significantly reduced cardiac output (from 7.44 +/- 0.7 to 6.78 +/- 0.7 L/min, p less than 0.05) and increased peripheral vascular resistance (from 990 +/- 104 to 1155 +/- 140 dyn X s X cm-5, p less than 0.05). Arterial pressure was not modified. These changes in systemic hemodynamics were associated with a significant reduction in hepatic blood flow (from 1.88 +/- 0.43 to 1.48 +/- 0.3 L/min, p less than 0.05) and with a slight decrease of portal pressure (from 18.8 +/- 1.3 to 17.5 +/- 1.4 mmHg, p less than 0.05). These results suggest that endogenous prostaglandins contribute to the increased cardiac output and diminished vascular resistance observed in cirrhosis of the liver. In addition, by promoting splanchnic vasodilation, prostaglandins may contribute to increased portal pressure in these patients.

Adult

Measurement of azygos venous blood flow in the evaluation of portal hypertension in patients with cirrhosis. Clinical and haemodynamic correlations in 100 patients.

Blood flow in the azygos vein, an index of blood flow through gastro-oesophageal collaterals, was measured by continuous thermal dilution in 100 patients with cirrhosis. Azygos blood flow was directly related to portal pressure (r = 0.54, P less than 0.001). Patients with portal hypertension had very high azygos blood flow (692 +/- 32 ml/min) in comparison with controls (n = 11, 174 +/- 29 ml/min). Patients with previous oesophageal bleeding had similar azygos blood flow as those without, but azygos blood flow was significantly greater in patients with massive or recurrent bleeding than in those with less severe haemorrhage, suggesting that the magnitude of collateral flow may influence the course of variceal bleeding. Patients with grade III varices had higher azygos blood flow than those with grades II or I. In addition, both oesophageal tamponade and vasopressin infusion, procedures of known value in variceal bleeding, markedly reduced azygos blood flow (-40% and -25%, respectively). Measurement of azygos blood flow allows evaluation of haemodynamic changes in the oesophageal collaterals of patients with portal hypertension, and provides useful information on the effect of therapeutic procedures aimed at arresting or preventing variceal haemorrhage.

Azygos Vein

Evolution of portal hypertension and mechanisms involved in its maintenance in a rat model.

In rats with portal hypertension induced by partial ligation of the portal vein, we have recently demonstrated an increased portal venous inflow that becomes an important factor in the maintenance of portal hypertension. The sequence of events that leads into this circulatory disarray is unknown. We evaluated chronologically the chain of hemodynamic changes that occurred after portal hypertension was induced by partial ligation of the portal vein. In this model it is possible to follow, from the initiation of the portal-hypertensive state, the interaction between blood flow and resistance in the portal system as well as the relation between the development of portal-systemic shunting and the elevated portal venous inflow. The study was performed in 45 portal-hypertensive rats and in 29 sham-operated rats. Blood flow and portal-systemic shunting were measured by radioactive microsphere techniques. The constriction of the portal vein was immediately followed by a resistance-induced portal hypertension characterized by increased portal resistance (9.78 +/- 0.89 vs. 4.18 +/- 0.71 dyn X s X cm-5 X 10(4), mean +/- SE, P less than 0.01), increased portal pressure (17.7 +/- 0.9 vs. 9.5 +/- 0.6 mmHg, P less than 0.001), and decreased portal venous inflow (3.93 +/- 0.26 vs. 6.82 +/- 0.49 ml X min-1 X 100 g body wt-1, P less than 0.001).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals