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The effects of amrinone on human platelet aggregation: evidence that amrinone does not act through a cyclic nucleotide mechanism in platelet rich plasma.

The purpose of the present study was to investigate in human platelet rich plasma the effects of amrinone, a cardiotonic agent, on platelet aggregation induced by ADP, arachidonic acid (AA), collagen, prostaglandin H2 (PGH2), and U46619, a substance reported to mimic the actions of thromboxane A2. Amrinone inhibited aggregatory responses to all substances studied in a dose-related fashion and this is the first report demonstrating the inhibitory actions of amrinone on platelet aggregation induced by PGH2. Although amrinone inhibited aggregatory responses to ADP, collagen, PGH2, and U46619 at similar doses, markedly lower doses of amrinone were necessary to inhibit aggregatory responses to AA. Furthermore, amrinone did not alter cAMP and cGMP levels in human platelet rich plasma. The present data demonstrate that amrinone inhibits human platelet aggregation induced by a variety of substances and independent of changes in cAMP and cGMP levels. Furthermore, the present data suggest that amrinone selectively inhibits aggregatory responses to arachidonic acid prior to the formation of thromboxane A2.

Adenosine Diphosphate↗

[Hemodynamic and clinical effects and treatment tolerance with low-dose iv amrinone in patients with refractory heart failure: a multicenter study. The Group for Research on Amrinone in the Treatment of Refractory Heart Failure].

We report the results of a multicenter study performed on 70 patients with severe congestive heart failure of different etiology (ischemic, idiopathic, alcoholic, valvular and secondary to antiblastic drugs) to evaluate the clinical and hemodynamic effects and tolerability of low dose amrinone iv (0.75 mg bolus followed by a continuous 48-hour infusion at the dose of 5-10 mcg/kg/min). Forty-one patients underwent invasive hemodynamic monitoring with right heart Swan-Ganz catheterization. Heart rate (HR), systolic (SBP) and diastolic blood pressure (DBP), mean arterial pressure (MAP), cardiac index (CI), stroke volume index (SVI), stroke work index (SWI), right atrial pressure (RAP), pulmonary wedge pressure (PWP), mean arterial pulmonary pressure (PAP), systemic vascular resistance (SVR), pulmonary vascular resistance (PVR) and total pulmonary resistance (TPR) were evaluated before and after 1, 4, 6, 24 and 48 hours of amrinone infusion and 2 and 4 hours after amrinone withdrawal. Clinical parameters (dyspnea, orthopnea, pulmonary congestion) were quantitated using a score; diuresis was assessed hourly; hematochemical parameters were evaluated before and 48 hours after amrinone infusion. HR and MAP were not significantly changed; CI, SVI and SWI presented, respectively, a significant 31.6, 55.1 and 72% increment, which peaked 48 hours after amrinone infusion. Concomitantly RAP, PAP, PWP, SVR, PVR and TPR were significantly reduced to 36.6, 22, 23.6, 9.4, 39.2 and 37.7% of the basal values, respectively. Two and 4 hours after amrinone withdrawal, hemodynamic changes similar to those observed acutely, were still present. Diuresis increased from 58.25 ml/hr to 113.18 ml/hr after 24 hours (+95%) and to 88.9 ml/hr (+53%) after 48 hours.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Age-related amrinone pharmacokinetics in a pediatric population.

OBJECTIVES: To measure the plasma concentrations of amrinone and N-acetyl-amrinone achieved using current pediatric dosing recommendations. To examine the pharmacokinetics of amrinone in an extended age range of pediatric patients. To examine any age-related differences in the relative contribution of hepatic metabolism vs. renal elimination of amrinone. DESIGN: Prospective study. SETTING: A pediatric intensive care unit in a tertiary care teaching hospital. PATIENTS: Thirty-one patients aged 4 days to 15 yrs who required a constant infusion of amrinone. INTERVENTIONS: Blood samples were obtained 15 mins after each 0.75 mg/kg loading dose, and every 6 hrs during a constant infusion of amrinone to measure plasma amrinone, N-acetyl-amrinone and N-glycolyl-amrinone concentrations by high-performance liquid chromatography. Blood samples to measure amrinone, N-acetyl-amrinone, and N-glycolyl-amrinone concentrations during elimination were also obtained at regular intervals after discontinuation of the infusion. Six-hour urine collections were obtained to measure amrinone renal clearance. MEASUREMENTS AND MAIN RESULTS: Plasma amrinone concentrations > or = 2 micrograms/mL were obtained in 13 of 14 patients after a 3-mg/kg loading dose. There was a six-fold variability in steady-state plasma amrinone concentrations in patients receiving the same ordered infusion rate. There was a significant (p = .001) difference between the ordered and measured amrinone infusion rates. Six (19.4%) of 31 patients had steady-state plasma amrinone concentrations of < or = 2 micrograms/mL. There was a large variability in the volume of distribution, clearance, and elimination half-life which did not appear to be age-related. Renal clearance of amrinone ranged between 0.4 and 2.18 mL/kg/min, and did not increase with age. There was no increase in the proportion of children with a high plasma steady-state N-acetyl-amrinone/amrinone ratio over time from 1 to 24 months of life. CONCLUSIONS: Administering a 3-mg/kg amrinone loading dose in four divided doses over 1 hr resulted in relatively rapid therapeutic plasma concentrations without excessively high concentrations and good clinical tolerance. The wide interindividual variation in clearance and volume of distribution resulted in a variable dose-concentration relationship; children receiving lower amrinone infusion rates may-have subtherapeutic plasma steady-state concentrations. There did not appear to be any age-related change in renal clearance or hepatic metabolism of amrinone in children aged 1 to 24 months.

Adolescent↗

Combined inotropic effects of amrinone and epinephrine after cardiopulmonary bypass in humans.

Amrinone, a phosphodiesterase inhibitor, and epinephrine, an alpha- and beta-adrenergic receptor agonist, are inotropic drugs used during cardiac surgery to reverse myocardial depression after cardiopulmonary bypass. However, these drugs have not been compared separately, or in combination, in this patient population. We hypothesized that the combination might have complementary actions in improving myocardial function. We, therefore, compared amrinone, epinephrine, and the combination of amrinone and epinephrine in a randomized, blinded, placebo-controlled study in patients undergoing coronary artery bypass grafting. Forty patients with ejection fractions > 0.45 were studied. Right ventricular ejection fraction pulmonary artery catheters and radial arterial catheters were inserted before fentanyl-midazolam anesthesia. After separation from bypass, patients received either a placebo (n = 20) or amrinone bolus (1.5 mg/kg, n = 20) at time 0 and a placebo (n = 20) or epinephrine (30 ng.kg-1.min-1, n = 20) infusion at time 5 min. This resulted in four study groups, n = 10 in each group. Data were collected every 2.5 min for 10 min. Epinephrine, amrinone, and the combination of both drugs significantly increased cardiac output, stroke volume, O2 delivery, and left ventricular stroke work. The increase in stroke volume (P < 0.05) was 12 +/- 6, 16 +/- 4, and 30 +/- 4 mL/beat with epinephrine, amrinone, and the combination of amrinone and epinephrine, respectively. The amrinone-epinephrine combination increased stroke volume as much as the sum of amrinone and epinephrine given separately. Systemic vascular resistance and pulmonary vascular resistance decreased with amrinone and amrinone-epinephrine, but not with epinephrine. Epinephrine increased mean arterial and mean pulmonary arterial pressures. Right ventricular ejection fraction did not significantly increase (P = 0.09) with epinephrine, but increased significantly with amrinone (0.45 to 0.53, P = 0.01), and with the combination (0.43 to 0.55, P = 0.006). These data indicate that amrinone and epinephrine effectively increase myocardial performance during cardiac surgery. Right ventricular function especially was improved with amrinone and the combination of amrinone and epinephrine. The combined effects of amrinone and epinephrine may be useful in patients recovering from the ischemia and reperfusion injury resulting from coronary artery bypass grafting.

Amrinone↗

High-dose amrinone is required to accelerate rewarming from deliberate mild intraoperative hypothermia for neurosurgical procedures.

BACKGROUND: Since the time available to provide the cooling and rewarming is limited during deliberate mild hypothermia, the technique to accelerate the cooling and rewarming rate of core temperature has been studied. Amrinone has been reported to accelerate the cooling rate but not the rewarming rate of core temperature during deliberate mild hypothermia. The failure of amrinone effect on the rewarming rate might be due to an insufficient dose of amrinone during hypothermic conditions. The authors therefore tested whether higher doses of amrinone can accelerate the rewarming rate of core temperature during deliberate mild hypothermia for neurosurgery. METHODS: After institutional approval and informed consent, 30 patients were randomly assigned to one of three groups. Patients in the control group (n = 10) did not receive amrinone; patients in the AMR 15 group (n = 10) received 15 microg x kg(-1) x min(-1) amrinone with a 1.0-mg/kg loading dose of amrinone at the beginning of cooling; and patients in the ReAMR group (n = 10) received 5 microg x kg(-1) x min(-1) amrinone with 1.0-mg/kg loading and reloading doses of amrinone at the beginning of cooling and rewarming, respectively. Administration of amrinone was started just after the induction of cooling and continued until the end of anesthesia. Anesthesia was maintained with nitrous oxide in oxygen, propofol, and fentanyl. After induction of anesthesia, patients were cooled, and tympanic membrane temperature was maintained at 34.5 degrees C. After completion of the main surgical procedures, patients were actively rewarmed and extubated in the operating room. RESULTS: The cooling and rewarming rates of core temperature were both significantly faster in both amrinone groups than in the control group. During the cooling and rewarming periods, forearm minus fingertip temperature gradient was significantly smaller in both amrinone groups than in the control group. During the rewarming period, heart rate and mean arterial pressure in the AMR 15 group were significantly faster and lower, respectively, than in the control group. Systemic vascular resistance in the AMR 15 group was smaller than in the control group throughout the study; on the other hand, only the value after the start of rewarming in the ReAMR group was smaller than in the control group. CONCLUSIONS: Amrinone at an infusion rate of 15 or 5 microg x kg(-1) x min(-1) with a reloading at the beginning of rewarming accelerated the rewarming rate of core temperature during deliberate mild hypothermia. This suggests that high-dose amrinone is required to accelerate rewarming from deliberate mild intraoperative hypothermia for neurosurgical procedures.

Adult↗

Amrinone in cardiac surgical patients with left-ventricular dysfunction. A prospective, randomized placebo-controlled trial.

STUDY OBJECTIVE: To evaluate the efficacy of amrinone for facilitating weaning from cardiopulmonary bypass (CPB). DESIGN: Prospective, randomized, double-blind, placebo-controlled trial with epinephrine as "rescue" therapy. SETTING: Operating room of a large, metropolitan tertiary-care center. PATIENTS: Thirty-nine patients with preoperative left ventricular dysfunction undergoing cardiac surgery. Thirty-three patients underwent aortocoronary bypass grafting; six patients underwent valve replacement for severe mitral or aortic regurgitation. INTERVENTIONS: Patients received either amrinone (1.5 mg/kg loading dose plus 10 micrograms/kg/min maintenance infusion; n = 20) or placebo (n = 19) in a randomized double-blind fashion shortly (median, 10.5 min; range, 2 to 24 min) before separation from CPB. Inotropic drugs (other than the study drug) were withheld prior to separation from CPB unless safety considerations demanded that the protocol be broken. Patients who could not be weaned from CPB, as well as those with a cardiac index of 2.2 L/min/m2 or less after weaning from CPB, received epinephrine (60 to 120 ng/kg/min) by infusion. MEASUREMENTS AND RESULTS: Fourteen of 19 patients receiving placebo but only 1 of the 20 patients receiving amrinone (p = 0.00001) required epinephrine infusion to separate from bypass. The cardiac index of 4 patients receiving placebo (but no patients with amrinone) failed to exceed 2.2 L/min/m2 despite epinephrine infusion, requiring the protocol to be broken (p < 0.08). Blood concentrations of amrinone determined (only in the amrinone group) after separation from CPB confirmed that the dosage of amrinone produced an effective blood concentration. Fourteen of 19 patients receiving placebo and 17 of 20 patients receiving amrinone required an infusion of phenylephrine titrated to maintain systolic blood pressure less than 90 mm Hg. Seven patients (four with amrinone and three with placebo) required antiarrhythmic drug therapy. The outcome at 3 months was similar in the 2 groups. CONCLUSIONS: Amrinone by itself is an effective agent to facilitate weaning from CPB, and therapy with amrinone reduced the need for individualized titration of epinephrine. Amrinone is as effective as individualized titration of epinephrine (after CPB) to improve cardiac function. Patients in the group receiving amrinone had no greater need for vasoconstricting agents than did patients in the group receiving placebo; however, proactive administration of amrinone before separation from CPB appears to offer no greater benefit to high-risk patients than selective administration of drugs (epinephrine) only to those patients who demonstrate the need for drug support at the time of weaning.

Adult↗

Influence of amrinone on tissue oxygenation of jejunal mucosa during endotoxemia.

BACKGROUND: The intestinal mucosa is the portion of the gut most susceptible to impaired perfusion and oxygen delivery. The phosphodiesterase (PDE) inhibitor amrinone has been proposed to improve oxygen delivery and tissue perfusion during sepsis. The objective of this study was to investigate the effects of amrinone on arterial oxygenation (Pao(2)) and tissue oxygenation (Ptio(2)) of jejunal mucosa during endotoxemia. MATERIALS AND METHODS: Forty anesthetized and ventilated rats were laparotomized and a jejunal portion was exteriorized and fixed on a plexiglass stage. The jejunum was punctured and a Clark-type microcatheter Po(2) probe and a microthermocouple were placed on the mucosa to measure Ptio(2). The animals were randomly assigned to receive one of the four treatments: infusion of Escherichia coli lipopolysaccharides (LPS, 2 mg/kg/h) without amrinone pretreatment (LPS group); infusion of LPS with amrinone pretreatment (40 microg/kg/min, start 30 min before LPS infusion, amrinone + LPS group); no treatment with either amrinone or LPS (control group); treatment with amrinone without LPS infusion (amrinone group). Mean arterial pressure (MAP), heart rate (HR), Pao(2), and Ptio(2) were measured 30 min before and 0, 60, and 120 min after induction of endotoxemia. RESULTS: MAP remained stable in the control and LPS groups. In the amrinone + LPS group MAP decreased within the first 30 min of amrinone infusion and decreased further during endotoxemia. Pao(2) remained stable in the control group and decreased in the LPS group. This endotoxin-induced decrease in Pao(2) was attenuated in the amrinone + LPS group. The mucosal Ptio(2) decreased in the LPS group but remained stable in both the control and amrinone + LPS groups. CONCLUSIONS: Pretreatment with amrinone was able to diminish a decrease in Pao(2) during endotoxemia, indicating that pulmonary dysfunction was attenuated. Endotoxin-induced tissue hypoxia of the intestinal mucosa, however, could be fully prevented, indicating that an additional improvement in compromised tissue perfusion had occurred.

Amrinone↗

Non-additive positive inotropic effects of amrinone and ouabain on cat papillary muscles.

Amrinone has been shown to produce haemodynamic benefits in digitalis-treated patients. Since amrinone is a positive inotropic agent on isolated heart muscle, these benefits may mean that amrinone increases the maximal ouabain-induced increase in force of contraction, without causing toxicity. We have therefore measured, in cat right ventricular papillary muscles, the inotropic effects of ouabain, amrinone alone and amrinone with a maximally effective, non-toxic ouabain concentration (2 X 10(-7) M). Ouabain is much more potent than amrinone (EC50-values: ouabain, 8 X 10(-8) M, amrinone, 1-2.8 X 10(-3) M). The highest amrinone concentration used (6 X 10(-3) M) produced a significantly lower increase in force of contraction than ouabain (2 X 10(-7) M) in the same muscles. After ouabain (2 X 10(-7) M) produced a stable effect, no further increase in force of contraction was observed with any amrinone concentration. Sustained arrhythmias were observed in five of six muscles at 3 X 10(-3) M amrinone with ouabain (2 X 10(-7) M), but in only one of these muscles with amrinone 3 X 10(-3) M alone. Since the positive inotropic effects of amrinone are not additive with those from a maximally effective ouabain concentration, the haemodynamic benefits seen in patients are probably due to non-cardiac effects of amrinone such as vasodilatation.

Aminopyridines↗

Amrinone loading during cardiopulmonary bypass in neonates, infants, and children.

OBJECTIVES: To determine whether amrinone is bound to cardiopulmonary bypass circuits. When amrinone is administered to children during cardiopulmonary bypass, determine whether measured amrinone concentrations differ from those predicted based on a reported volume of distribution of 1.6 L/kg. DESIGN: In vitro study: Uptake of amrinone by cardiopulmonary bypass circuits was determined. Clinical study: Prospective, open label investigation. SETTING: University-affiliated tertiary children's hospital. PARTICIPANTS: Clinical study: 27 children participated, including 5 neonates and 9 infants. INTERVENTIONS: In vitro study: Waste blood was circulated within seven pediatric cardiopulmonary circuits. Amrinone was administered, and blood was serially assayed for amrinone levels. Clinical study: Amrinone (mean dose 4.9 mg/kg) was loaded during cardiopulmonary bypass and amrinone concentrations in pump blood were determined at termination of bypass. Amrinone measured by high-performance liquid chromatography. MEASUREMENTS AND MAIN RESULTS: Cardiopulmonary bypass circuit uptake reduced amrinone concentrations to 79% of predicted. After correcting for circuit uptake, serum amrinone levels in patients were significantly higher than predicted. The levels, expressed in the ratio of measured: predicted amrinone concentration, did not differ among neonates, infants, and children older than 1 year of age. CONCLUSIONS: When amrinone is administered to children during cardiopulmonary bypass, about 20% of the dose becomes bound to the circuit. Available drug is distributed within a smaller volume than predicted. This may be the consequence of the physiologic perturbations of hypothermic cardiopulmonary bypass.

Amrinone↗

A multicenter, randomized, blind comparison of amrinone with milrinone after elective cardiac surgery.

UNLABELLED: Amrinone and milrinone are phosphodiesterase inhibitors with positive inotropic effects useful for the treatment of ventricular dysfunction after cardiac surgery. Forty-four patients undergoing elective cardiac surgery at four centers received either amrinone (n = 22) or milrinone (n = 22) in a randomized, blind fashion. Immediately after separation from cardiopulmonary bypass (CPB), two bolus doses of either amrinone 0.75 mg/kg or milrinone 25 microg/kg were administered over 30 s, separated by 5 min. Hemodynamic measurements were recorded before each dose and at the end of the 10-min study. Both amrinone and milrinone increased the cardiac index (48% vs 52%, P = not significant [NS] for amrinone and milrinone, respectively). There was a small increase in mean arterial pressure (MAP) after amrinone administration (from 68 +/- 3 to 72 +/- 3 mm Hg at 10 min, P < 0.05) with no significant change in MAP after milrinone administration. Central venous pressure was significantly higher in the amrinone group at baseline and 5 min (12 vs 10 mm Hg and 11 vs 10 mm Hg, respectively; P < 0.05). Systemic and pulmonary vascular resistances decreased significantly and to a similar extent after either amrinone or milrinone administration. Phenylephrine was required in 11 of 22 patients receiving amrinone and in 11 of 22 patients receiving milrinone to maintain arterial blood pressure. The proportion of patients requiring an intravascular volume infusion (15 of 22 vs 17 of 22, P = NS) and the total fluid volume infused were similar (402 +/- 57 vs 350 +/- 49 mL, P = NS for amrinone and milrinone, respectively). Amrinone and milrinone seem to have similar hemodynamic effects after CPB, with the exception of blood pressure, although the need for vasopressor support of blood pressure did not differ. Selection between these two drugs may include nonhemodynamic considerations such as cost. IMPLICATIONS: Amrinone and milrinone are drugs that improve cardiac contraction. Their effects have never been directly compared in patients. We found that amrinone and milrinone produced similar hemodynamic effects in adult patients undergoing cardiac surgery. Choice between the two drugs can be based on nonhemodynamic considerations such as cost.

Adult↗

A bolus dose of 1.5 mg/kg amrinone effectively improves low cardiac output state following separation from cardiopulmonary bypass in cardiac surgical patients.

BACKGROUND: The aim of this study was to evaluate the efficacy of 1.5 mg/kg bolus of amrinone on low cardiac output (CO) state following emergence from cardiopulmonary bypass (CPB) in cardiac surgical patients. METHODS: Immediately after emergency from CPB, 14 patients with a cardiac index (CI) less than 2.2 l.min-1.m-2 despite administration of inotropes and nitroglycerin, received 1.5 mg/kg amrinone over 3 min without changing catecholamine infusion rates (amrinone group). Hemodynamics and left ventricular short axis views with transesophageal echocardiography were recorded at baseline, 3, 4, and 10 min following amrinone administration. Left ventricular filling volumes were maintained constant by volume reinfusion from the CPB reservoir. We matched the data of the amrinone group with the other 14 patients who did not receive amrinone (non-amrinone group) to evaluate the efficacy of amrinone in low CO state. RESULTS: At baseline, CI (1.8 +/- 0.1 l.min-1.m-2) in the amrinone group was significantly lower than CI (3.0 +/- 0.2) in the non-amrinone group. Following amrinone administration, CI and velocity of circumferential fibershortening corrected for heart rate (Vcfc) significantly increased, and systemic vascular resistance index and pulmonary vascular resistance index significantly decreased from the baseline within 10 min without changes in heart rate, mean arterial blood pressure, or pulmonary artery occlusion pressure, and became equivalent with those of the non-amrinone group. CONCLUSIONS: A 1.5 mg/kg amrinone loading dose to patients in a low CO state, despite catecholamine therapy immediately after emergence from CPB, effectively improves ventricular function when loading conditions are maintained constant.

Adult↗

Amrinone-associated thrombocytopenia: pharmacokinetic analysis.

Amrinone-associated thrombocytopenia is thought to result from nonimmune-mediated peripheral platelet destruction. Platelet destruction may be a concentration-dependent toxic effect of amrinone or its principal metabolite N-acetylamrinone. Eighteen children receiving amrinone after heart surgery were prospectively evaluated to correlate the pharmacokinetics of amrinone and N-acetylamrinone with thrombocytopenia. Amrinone and N-acetylamrinone plasma concentrations were determined by HPLC during loading, infusion, and terminal elimination, with concurrent monitoring of platelet counts. Thrombocytopenia developed in eight patients (platelet count, 66 +/- 17 x 10(9) platelets/L [mean +/- SD]). Peak and steady-state amrinone plasma concentration, amrinone total dose, duration of amrinone exposure, and amrinone area under curve (AUC) were similar between patients with and without thrombocytopenia. N-Acetylamrinone peak concentration, steady-state concentration, N-acetylamrinone AUC, and ratio of N-acetylamrinone to amrinone were greater in patients with thrombocytopenia. This association suggests that N-acetylamrinone, and not amrinone, may be the mediator of thrombocytopenia in children receiving amrinone.

Amrinone↗

Diminished inotropic response to amrinone in ventricular myocytes from myopathic hamsters is linked to depression of high-gain Ca2+-induced Ca2+ release.

This study investigates whether amrinone (100-1000 microM), a phosphodiesterase-III inhibitor, can alleviate depression of contractions in ventricular myocytes from prefailure cardiomyopathic (CM) hamsters (80-100 days). Cell shortening and ion currents were measured in voltage-clamped cells at 37 degrees C. Normal myocytes exhibited low-gain Ca(2+)-induced Ca(2+) release (CICR) initiated by test steps from -40 mV and high-gain CICR initiated from more negative potentials. In normal myocytes, amrinone selectively increased contractions initiated by high-gain CICR (fractional shortening increased from 3.6 +/- 0.5% to 5.3 +/- 0.6%, 300 microM amrinone) but had no effect on low-gain CICR. Amrinone decreased L-type Ca(2+) current (I(Ca-L); -5.5 +/- 0.8 to -3.7 +/- 0.5 picoAmp/picoFarad, 300 microM amrinone). In contrast, in CM myocytes, high-gain CICR was virtually absent, and amrinone had no inotropic effect. Amrinone inhibited I(Ca-L) less in CM than normal myocytes. Sarcoplasmic reticulum (SR) Ca(2+) stores, assessed by caffeine, were significantly increased by amrinone in normal but not CM myocytes. Thus, the positive inotropic effect of amrinone in normal hamster myocytes was mediated by selective enhancement of high-gain CICR. This effect was not mediated by stimulation of I(Ca-L) because I(Ca-L) is inhibited by this drug in hamster. High-gain CICR, which is depressed in CM myocytes, cannot be restored by amrinone. However, minimal stimulation of adenylyl cyclase with forskolin restored the positive inotropic effect of amrinone in CM cells. This positive inotropic effect of amrinone may reflect increased SR Ca(2+) stores because increased stores accompanied the positive inotropic effect in normal myocytes but were absent in CM myocytes.

Amrinone↗

Dobutamine potentiates amrinone's beneficial effects in moderate but not in advanced heart failure. 31P-MRS in isolated hamster hearts.

There is controversy as to whether potent inotropic agents are beneficial or detrimental in moderate to severe heart failure. Accordingly, we studied the effects of amrinone, amrinone plus dobutamine, and dobutamine alone on mechanical performance, myocardial oxygen consumption, and high energy phosphate metabolism in different stages of congestive heart failure in the cardiomyopathic Syrian hamster. In hearts with moderate heart failure, administration of amrinone, amrinone plus dobutamine, and dobutamine alone increased developed pressure significantly, whereas the phosphorylation potential increased significantly only with amrinone and amrinone plus dobutamine. In hearts with advanced heart failure, administration of amrinone and amrinone plus dobutamine increased developed pressure significantly, whereas dobutamine alone had no effect. The phosphorylation potential improved significantly only with amrinone. Thus, amrinone improved mechanical performance and mitochondrial activity in both heart failure states. Dobutamine potentiated amrinone's beneficial effects in moderate heart failure, but negated the positive inotropic effect of amrinone in advanced heart failure. Therefore, hearts responded differently to potent inotropic agents depending on the severity of heart failure.

Amrinone↗

The biphasic effect of amrinone on tension development in newborn mammalian myocardium.

The effect of the bipyridine compound, amrinone, on tension generation in neonatal and adult myocardium was studied over the concentration range 30-500 micrograms/mL. Increasing concentrations of amrinone caused a monotonic increase in twitch tension and the rate of tension development in adult papillary muscles. In contrast, lower concentrations of amrinone (30 and 100 micrograms/mL) caused a decrease in twitch tension and dP/dt in newborn papillary muscles, whereas 500 micrograms/mL amrinone caused a significant increase in both parameters in the younger age group. Lactic acid, used to dissolve amrinone, was shown to have no effect on tension development. Half relaxation time was decreased in adult preparations at all concentrations of amrinone. In comparison, the decrease in half relaxation time produced by amrinone in the newborn was significant only at a concentration of 500 micrograms/mL. Action potential duration in the newborn was significantly shortened by 30 micrograms/mL amrinone. In voltage clamp experiments, 30 micrograms/mL amrinone was shown to have no effect on tension accompanying two second voltage clamp steps to the plateau potential in newborn myocardium. Developed tension at 400 ms into the clamp step, final tension, and the ratio of early peak tension to final tension were all unchanged by the low concentration of amrinone. In contrast, 500 micrograms/mL amrinone in the newborn increased tension at 400 ms and final tension but had no effect on the ratio of early peak tension to final tension. These results suggest that the negative inotropic effect of lower concentrations of amrinone on neonatal myocardium is the result of changes in action potential configuration and not a true alteration in basic mechanisms of intracellular Ca2+ regulation.(ABSTRACT TRUNCATED AT 250 WORDS)

Action Potentials↗

[Amrinone (Wincoram)--a new positive inotropic and vasodilator agent].

The bipyridine derivative amrinone is a specific phosphodiesterase III blocking agent. In vitro and in vivo studies show a dose-dependent increase in myocardial contractility induced by amrinone. In patients with congestive heart failure, the inotropic and vasodilator effects of amrinone contribute to cardiac improvement. When amrinone is used, the increase in myocardial oxygen consumption due to increased contractility is offset by the reductions in preload and afterload. In hearts with very high wall tension, myocardial oxygen consumption may even decrease with amrinone. Amrinone therapy is not accompanied by significant increases in heart rate. Tachyphylaxis has not been observed. The elimination half-life ranges between 2.5 and 3.5 h. A large quantity of amrinone is excreted unchanged, and therefore in cases of renal impairment the possibility of cumulation exists. The main adverse reaction of amrinone is a reversible thrombocytopenia induced by a dose-dependent decrease in platelet survival time. Therefore, frequent platelet counts are necessary when amrinone is administered. Numerous studies in patients with chronic congestive heart failure confirmed the beneficial hemodynamic effects of amrinone. Experience in the treatment of acute perioperative heart failure with amrinone are still limited, but the present results are encouraging; an additive effect of amrinone to catecholamines seems especially promising in the therapy of severe postoperative low-cardia-output syndrome.

Amrinone↗