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Resuscitation from adrenaline resistant electro-mechanical dissociation facilitated by levosimendan in a young man with idiopathic dilated cardiomyopathy.

A 32-year-old man with severe congestive heart failure due to idiopathic cardiomyopathy developed ventricular tachycardia followed by electro-mechanical dissociation. High doses of conventional inotropic medications failed to restore haemodynamics. The additional infusion of levosimendan in conjunction with external chest compressions for 2.5 h restored haemodynamics, followed by complete recovery, including normal neurological function. The anti-stunning properties of levosimendan probably attenuated post-ischaemic myocardial dysfunction and helped to restore normal cardiac output.

Adult↗

Effects of levosimendan in normodynamic endotoxaemia: a controlled experimental study.

OBJECTIVES: Levosimendan is an inotropic and vasodilator drug that has proved to be useful in cardiogenic shock. Pretreatment with levosimendan in experimental hypodynamic septic shock in pigs has shown valuable effects in oxygen transport. Our goal was to assess the effects of levosimendan in a normodynamic model of endotoxaemia. METHODS: Twelve sheep were anaesthetized and mechanically ventilated. After taking basal haemodynamic and oxygen transport measurements, sheep were assigned to two groups during 120 min: (1) endotoxin (5 microg/kg endotoxin); (2) levosimendan (5 microg/kg endotoxin plus levosimendan 200 microg/kg followed by 200 microg/kg/h). Both groups received hydration of 20 ml/kg/h of saline solution. RESULTS: In the endotoxin group, cardiac output, intestinal blood flow and systemic and intestinal oxygen transports and consumptions (DO(2) and VO(2)) remained unchanged. In the levosimendan group, systemic and intestinal DO(2) were significantly higher than in the endotoxin group. Because stroke volume did not change (basal versus 120': 0.9+/-0.1 ml/kg versus 0.9+/-0.2 ml/kg, p=0.3749), the elevation in cardiac output by levosimendan (145+/-17 ml/min/kg versus 198+/-16 ml/min/kg, p=0.0096) was related to an increased heart rate (159+/-32 beats l/min versus 216+/-19 beats l/min, p=0.0037). Levosimendan precluded the development of gut intramucosal acidosis at 120' (endotoxin versus levosimendan, ileal intramucosal-arterial PCO(2) difference: 19+/-4 Torr versus 10+/-4 Torr, p=0.0025). However, levosimendan decreased mean arterial blood pressure (99+/-20 Torr versus 63+/-13 Torr, p=0.0235) and increased blood lactate levels (2.4+/-0.9 mmol/l versus 4.8+/-1.5 mmol/l, p=0.0479). All p-values are differences in specific points (paired or unpaired t-test with Bonferroni correction) after two-way repeated measures ANOVA. A p-value<0.05 was considered significant. CONCLUSIONS: Levosimendan improved oxygen transport and prevented the development of intramucosal acidosis in this experimental model of endotoxaemia. However, systemic hypotension and lactic acidosis occurred. Additional studies are needed to show if different doses and timing of levosimendan administration in septic shock might improve gut perfusion without adverse effects.

Acidosis↗

Hemodynamic and neurohumoral effects of levosimendan, a new calcium sensitizer, at rest and during exercise in healthy men.

Levosimendan is a novel inodilator that increases the calcium sensitivity of troponin C in a calcium-dependent way. Cardiac function (impedance cardiography, systolic time intervals), neurohumoral responses at rest and during exercise at 2 workloads, and peripheral blood flow (plethysmography) were studied in 14 healthy young men. Vehicle and 2 doses of levosimendan (6.5 micrograms/kg, low dose [LD]; and 25 micrograms/kg, high dose [HD]) were given intravenously in a crossover study. Measurements taken 15 minutes after a supine rest showed HD levosimendan shortened electromechanical systole (QS2i) by 16 ms maximally (p < 0.001), and decreased systemic vascular resistance by 25% (p < 0.001), compared with baseline values. Diastolic blood pressure fell by 9 mm Hg (p < 0.01). When the changes after vehicle were compared with the changes after HD levosimendan, the difference was 2.1 L/min after 25 micrograms/kg (p < 0.001), caused by an increase in stroke volume, with the heart rate being unaffected. Leg blood flow increased by 35% (p < 0.001). During exercise at the lower workload, HD levosimendan increased cardiac output by 1.5 L/min (p < 0.05), compared with that caused by vehicle, by an increase in heart rate, with the stroke volume being unchanged. Electromechanical systole was shortened significantly (20 ms, p < 0.001 after HD; 12 ms, p < 0.01 after LD). At the higher workload, no effects on electromechanical systole or cardiac output compared with that associated with administration of vehicle were seen, but the mean heart rate increased (p < 0.001, LD and HD) and mean diastolic blood pressure decreased (p < 0.01, HD).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Cardiotonic drugs differentially alter cytosolic [Ca2+] to left ventricular relationships before and after ischemia in isolated guinea pig hearts.

OBJECTIVE: Cardiotonic agents may differentially alter indices of the cytosolic [Ca2+]/left ventricular pressure (LVP) relationship when given before and after ischemia. We measured and calculated systolic-diastolic [Ca2+], systolic-diastolic LVP, velocity ratios (VRs) d[Ca2+]/dtmax to dLVP/dtmax (VRmax), d[Ca2+]/dtmin to dLVP/dtmin (VRmin), and area ratio (AR, area Ca2+]/area LVP per beat) before and after 30 min global ischemia in guinea pig hearts. METHODS: Hearts were perfused with levosimendan, dobutamine, dopamine, or digoxin. Ca2+ transients were recorded by indo-1 fluorescence via a fiber optic probe placed on the LV free wall. [Ca2+]/LVP loops were acquired by plotting LVP time as a function of [Ca2+] at multiple time points during the cardiac cycle. RESULTS: Ischemia reperfusion increased [Ca2+] and decreased contractility and relaxation and produced a flatter and broader [Ca2+]/LVP loop. All drugs shifted the [Ca2+]/LVP loop rightward and upward when given before and after ischemia. Dobutamine increased [Ca2+] and contractility more than other drugs. Digoxin increased [Ca2+] the least but increased contractility similar to dopamine and levosimendan. Before ischemia dopamine and digoxin both decreased VRmax and VRmin, whereas dobutamine increased VRmin, but not VRmax, and levosimendan had no effect on VR. VRmax and VRmin were markedly elevated after ischemia, but again decreased with dopamine and digoxin; dobutamine again increased VRmin, but not VRmax, and levosimendan decreased both VRmax and VRmin. Before ischemia dopamine and digoxin both decreased AR, dobutamine increased AR, and levosimendan had no effect; after ischemia AR was markedly elevated but dopamine and digoxin decreased AR, dobutamine increased AR, and levosimendan decreased AR. CONCLUSION: Although each drug enhanced contractility and relaxation both before and after ischemia by increasing cytosolic [Ca2+] and Ca2+ flux, dopamine and digoxin improved, and dobutamine worsened responsiveness to Ca2+, i.e., velocity ratio and area ratio, whereas levosimendan had no net effect before ischemia but improved responsiveness after ischemia.

Animals↗

The role of cAMP- and cGMP-dependent protein kinases in the cardiac actions of the new calcium sensitizer, levosimendan.

OBJECTIVE: The role of phosphodiesterase III inhibition and calcium sensitization in the cardiac actions of levosimendan, (R)-[[4-(1,4,5, 6-tetrahydro-4-methyl-6-oxo-3-pyridazinyl)phenyl]hydrazono]propane dinitrile, was studied. METHODS: Various heart preparations were used to investigate positive inotropy, chromotropy, coronary flow and calcium sensitivity of contractile proteins. The cAMP- and cGMP-dependent protein kinases (PKA and PKG) were inhibited by KT5720 and KT5823, respectively. Furthermore, the synthesis of cAMP was stimulated by forskolin and increased phosphorylation of troponin I was induced by isoprenaline. RESULTS: In Langendorff guinea-pig heart, levosimendan (0.01-1 microM) and milrinone (0.1-10 microM) increased the left ventricular systolic peak pressure almost to the same extent. In the presence of KT5720 (1 microM) milrinone was devoid of positive inotropic activity. In contrast, KT5720 did not antagonize the inotropic effect of levosimendan at < or = 0.03 microM (-up to the EC50 of levosimendan). The effects of levosimendan and milrinone on heart rate and coronary flow were not affected by KT5720. The PKG inhibitor, KT5823 (1 microM), on the other hand, potentiated the levosimendan-induced increase in coronary flow while it had no effect on the increase induced by milrinone. The mechanical parameters were not affected by KT5823. In the papillary muscle, the positive inotropic effect of milrinone but not that of levosimendan was potentiated by forskolin (0.1 microM). In contrast to milrinone, the positive inotropy by levosimendan was decreased by isoprenaline pretreatment (0.1 microM; 3 min). In line with this, the calcium-sensitizing effect of levosimendan was decreased in skinned fibers prepared from isoprenaline-treated hearts. CONCLUSIONS: Our results indicate that the cardiac effects of levosimendan at its therapeutically relevant concentrations were not mediated through PKA or PKG and its positive inotropy is therefore most probably due to the previously reported troponin-C-mediated calcium sensitization of contractile proteins.

Alkaloids↗

Myocardial efficiency during calcium sensitization with levosimendan: a noninvasive study with positron emission tomography and echocardiography in healthy volunteers.

Dynamic positron emission tomography (PET) with [11C]acetate allows noninvasive assessment of myocardial oxygen consumption. In combination with echocardiography, PET enables determination of cardiac efficiency (defined as useful cardiac work per unit of oxygen consumption). We used this approach to compare the effects of levosimendan, a Ca(2+)-dependent calcium sensitizer, with dobutamine and sodium nitroprusside in healthy male volunteers. The effects of levosimendan on k(mono), an index of oxygen consumption, and cardiac efficiency were neutral, whereas the hemodynamic profile was consistent with balanced inotropism and vasodilatation. Dobutamine enhanced cardiac efficiency at the expense of increased oxygen requirement, but the effects of nitroprusside on k(mono) and cardiac efficiency were neutral. This study shows the feasibility of PET in phase 1 pharmacodynamic studies and suggests potential energetical advantages of calcium sensitization with levosimendan.

Adult↗

Inotropic effects of OR-1896, an active metabolite of levosimendan, on canine ventricular myocardium.

We performed experiments in dog ventricular trabeculae loaded with aequorin to elucidate the mechanism of positive inotropic effect of (R)-N-[4-(4-methyl-6-oxo-1,4,5, 6-tetrahydro-pyridazin-3-yl)-phenyl]-acetamide (OR-1896), an active metabolite of (R)-([4-(1,4,5, 6-tetrahydro-4-methyl-6-oxo-3-pyridazinyl)phenyl]-hydrazono)-pr opaned initrile (levosimendan). Concentration-response curve for OR-1896 was biphasic: positive inotropic effect of OR-1896 reached a plateau at 10(-5) M (1st phase) and the concentration-response curve became steeper at 10(-3) M and higher (2nd phase). Maximum response of the 1st phase was 29% of maximal response to isoproterenol and associated with an increase in Ca(2+) transients of 13% of the maximal response to isoproterenol. For a given increase in force, the increase in Ca(2+) transients by OR-1896 was lower than that induced by elevation of [Ca(2+)](o). The positive inotropic effect of OR-1896 was not associated with impairment of relaxation and it was abolished by carbachol. In conclusion, OR-1896 has a positive inotropic effect partly due to an increase in myofibrillar Ca(2+) sensitivity that is exerted via cross-talk with signal transduction mediated by cAMP.

Acetamides↗

Levosimendan improves diastolic and systolic function in failing human myocardium.

Ca(2+)-sensitizers increase myocardial contractility, but may worsen diastolic dysfunction. Levosimendan, through its unique troponin-C interaction, may preserve diastolic function. We investigated the effects of levosimendan (10(-7)-10(-5) M) on diastolic and systolic function in multicellular cardiac muscle preparations from end-stage failing human hearts (1 and 2.5 Hz, 37 degrees C, 1.25 mM [Ca(2+)], pH 7.4). Levosimendan improved systolic function: at 1 Hz, developed force (F(dev)) increased from 13.84+/-3.27 to 16.40+/-3.57 (10(-7) M, P<0.05), while diastolic force (F(dia)) decreased from 5.32+/-0.67 to 4.94+/-0.61 mN/mm(2) (P<0.05). Under control conditions, the increase in stimulation frequency from 1 to 2.5 Hz resulted in a decrease in F(dev) of -0.51+/-1.80 mN/mm(2) (negative force-frequency relationship). Levosimendan improved this relationship: at 10(-7) M, this change became positive (+1.81+/-2.06 mN/mm(2), P<0.05). Diastolic function was markedly improved in the presence of levosimendan; the increase in F(dia) of 1.56+/-0.42 mN/mm(2) (control) was attenuated to 0.70+/-0.19 mN/mm(2) (P<0.05). To allow for a more detailed analysis, preparations were sometimes divided into two groups, based on their force-frequency behavior. Twitch timing parameters were accelerated by levosimendan in preparations with a negative force-frequency relationship. Levosimendan improves both systolic and diastolic function in failing human myocardium. Effects are even more pronounced at higher heart rates and under prevailing diastolic dysfunction.

Cardiotonic Agents↗

Levosimendan is a mitochondrial K(ATP) channel opener.

Levosimendan, a new inodilator developed for the treatment of heart failure has been shown to have a vasodilatory effect via opening of K(ATP) channels in the plasma membrane of vascular smooth muscle cells. In this study, we investigated the effects of levosimendan on the mitochondrial K(ATP) channel. This compound did not influence mitochondrial transmembrane potential (DeltaPsi), and at up to 2.2 microM had no effect on the respiration rate of rat liver mitochondria, respiring on 5 mM succinate (+5 microM rotenone). A sensitive method was developed for assessing K(ATP) channel opening activity employing rat liver mitochondria, respiring only on endogenous substrates in the presence of 400 microM ATP and 1 microg oligomycin/mg mitochondrial protein. In this model, levosimendan (0.7-2.6 microM) decreased DeltaPsi by 6.5-40.4% (n=3, incubation time 15 min). This effect was dependent on the K+ concentration in the incubation medium and was abolished by the selective blocker of the mitochondrial K(ATP) channel-5-hydroxydecanoate (200 microM). Our results indicate that levosimendan opens mitochondrial K(ATP) channels.

Adenosine Triphosphate↗

Levosimendan increases L-type Ca(2+) current via phosphodiesterase-3 inhibition in human cardiac myocytes.

To evaluate the potency of levosimendan, a newly developed cardiotonic agent, as a phosphodiesterase-3 inhibitor, we examined its effects on the L-type Ca(2+) current (I(Ca,L)) in single human atrial cells using the whole-cell voltage-clamp method. Levosimendan significantly increased I(Ca,L) in a concentration-dependent manner (E(max), 139.0 +/- 1.8%; EC(50), 54 +/- 3.6 nM). The increase in I(Ca,L) induced by 1 microM levosimendan was significantly greater in human atrial cells (136.7 +/- 11.0%, n=8) than in rabbit atrial cells (23.5 +/- 3.5%, n=6) (depolarization to +10 mV in each case). In rat atrial and ventricular cells, I(Ca,L) was unaffected by 1-10 microM levosimendan. These results indicate that the selective phosphodiesterase-3 inhibitor levosimendan increases cardiac-cell I(Ca,L) significantly more strongly in human than in rabbit and rat. It seems likely that the positive inotropic effect of levosimendan on the human myocardium depends on an increase in I(Ca,L) that is modulated by adenosine 3'5'-cyclic monophosphate (cAMP)-dependent phosphorylation.

1-Methyl-3-isobutylxanthine↗

Effect of long-term oral pretreatment with levosimendan on cardiac arrhythmias during coronary artery occlusion in conscious rats.

Heart failure is frequently associated with cardiac arrhythmias. The aim of the present study was to investigate the effect of levosimendan, a new cardiotonic drug for the treatment of congestive heart failure, on experimental ischaemic arrhythmias. Acute coronary artery occlusion was produced in conscious rats 7-10 days after placement of ligature around the left main coronary artery. Acute pretreatment with levosimendan (0.2 or 0.6 mg/kg orally 1 h before coronary artery occlusion) did not influence the incidence, onset and duration of arrhythmias. Long-term pretreatment with levosimendan (0.2 or 0.6 mg/kg orally twice a day for 2 weeks) increased the survival rate (50% and 81% vs. 44% in controls) and the number of animals without any arrhythmia (37% and 31% vs. 5% in controls). The present results demonstrate that chronic oral treatment with levosimendan could be beneficial in congestive heart failure and arrhythmias resulting from regional myocardial ischaemia.

Administration, Oral↗

Levosimendan, a novel Ca2+ sensitizer, activates the glibenclamide-sensitive K+ channel in rat arterial myocytes.

The electrophysiological effect of levosimendan, a novel Ca(2+)-sensitizing positive inotropic agent and vasodilator, was examined on rat mesenteric arterial myocytes using the patch clamp technique. Resting potential was significantly hyperpolarized with levosimendan, with an EC50 of 2.9 microM and maximal effect (19.5 +/- 3.5 mV; n = 12) at 10 microM. Levosimendan (10 microM) significantly increased the whole-cell outward current. The currents intersected close to the calculated EK (-84 mV), suggesting that the activated current was a K+ current. Hyperpolarization and stimulation of K+ current by levosimendan were not prevented by 30 microM H-7 (a non-specific inhibitor of protein kinases) and 100 nM charybdotoxin (a blocker of Ca(2+)-activated K+ channels), but were abolished by 10 microM glibenclamide. In single-channel current recording in open cell-attached patches, two types of K+ channels were observed having conductances of 26 and 154 pS. The 154 pS channels were not affected by levosimendan and glibenclamide. The 26 pS channels were evoked in one-fourth of the patches when 10 microM levosimendan (and 0.1 mM UDP) was added (at -60 mV) and channel activity was abolished by glibenclamide. The mean open probability of the 26 pS channels was 0.094 +/- 0.017 (n = 9), and the mean open time (at -60 mV) was 6.6 ms in the presence of UDP and levosimendan. Although significant hyperpolarization (4.7 +/- 1.5 mV, n = 8) was observed at 1 microM levosimendan, the same concentration did not affect Ca2+ channel currents (n = 10). In summary, levosimendan hyperpolarized the arterial myocytes, probably through activation of a glibenclamide-sensitive K+ channel. This mechanism may contribute to the vasodilating action of levosimendan.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

The effects of levosimendan on [Ca2+]i in guinea-pig isolated ventricular myocytes.

Ca2+-sensitising agents offer a new approach to the treatment of congestive heart failure. This study examined the effects of the Ca2+-sensitising agent, levosimendan, on contraction and [Ca2+]i in guinea-pig ventricular myocytes. Levosimendan 100 nM produced an increase in cell shortening without affecting the [Ca2+]i transient or the Ca2+ content of the sarcoplasmic reticulum. 1 microM levosimendan increased the rate of decay of the [Ca2+]i transient and increased the Ca2+ content of the sarcoplasmic reticulum. These results suggest that at therapeutically relevant concentrations levosimendan can produce a significant inotropic effect without affecting [Ca2+]i but at higher concentrations may also inhibit phosphodiesterase.

Animals↗

Interaction of levosimendan with cardiac troponin C in the presence of cardiac troponin I peptides.

The interaction between troponin C (TnC) and troponin I (TnI) is essential for the regulation of muscle contraction. There are several binding sites for TnI on TnC that are differentially occupied depending on the phase of the contraction/relaxation cycle. TnI and TnC interact in an antiparallel fashion with each other. The C-domain of cTnC and the N-domain region of cTnI(residues 33-70) always interact under physiological conditions, whereas the interaction between regulatory regions of TnC and TnI (residues 128-166) is calcium dependent. Previously, it has been shown that levosimendan, a calcium sensitizer used as a treatment for acute heart failure, can interact with both domains of isolated cTnC. To understand which interaction is relevant for the mechanism of calcium sensitization, we used a more complete troponin model obtained by complexing cTnI(32-79) and cTnI(128-180) with calcium-saturated cTnC(CS). The cTnI peptides bound to cTnC(CS) to form a 1:1:1 complex. The interaction of levosimendan with this complex was followed by 1H-(15)N heteronuclear correlation spectroscopy. It was clear that based on chemical shift changes, cTnI(32-79) blocked the levosimendan interaction sites on the C-domain, whereas cTnI(128-180) did not compete with levosimendan for the binding site on the N-domain. Hence, the effective binding site of levosimendan on cTnC resulting in the calcium-sensitizing effect is located in the regulatory domain (N-domain).

Amino Acid Sequence↗

Troponin C-mediated calcium sensitization by levosimendan accelerates the proportional development of isometric tension.

The effects of various calcium sensitizers on myosin-actin crossbridge kinetics were evaluated in intact, paced guinea-pig papillary muscle by analysing the velocity of the development of isometric tension (dT/dt) in detail. The effect on association (the whole sequence of events from troponin onward) and dissociation rates of crossbridges was estimated from the rising phase and from the early decay phase of the normalized dT/dt curve. Levosimendan, a calcium sensitizer acting through troponin C, accelerated the proportional association rate and decelerated the dissociation rate of crossbridges. The effect of levosimendan on crossbridge kinetics occurred before the peak twitch tension was achieved. Thus, the compound did not change the actual relaxation phase of twitch tension. Since the effect on the association was more pronounced than on the dissociation of crossbridges, levosimendan shifted the entire twitch tension curve to the left. Based on the dissociation rate analysis levosimendan seems to act preferentially as a calcium sensitizer at low concentrations. At high concentrations the phosphodiesterase III (PDE III) inhibitory properties of levosimendan modulated its effect on the early relaxation processes. In contrast, PDE III inhibition is probably the primary mechanism of action for MCI-154. Pimobendan, and EMD 53998 at low concentrations, whereas their direct effects on crossbridge kinetics contributed to the positive inotropic action at high concentrations. The calcium sensitizing mechanisms of these compounds seemed to be based almost exclusively on the decelerating effect on dissociation of crossbridges.

3',5'-Cyclic-AMP Phosphodiesterases↗

Efficacy and safety of intravenous levosimendan compared with dobutamine in severe low-output heart failure (the LIDO study): a randomised double-blind trial.

BACKGROUND: Levosimendan, a novel calcium sensitiser, improves myocardial contractility without causing an increase in myocardial oxygen demand. We compared the effects of levosimendan and dobutamine on haemodynamic performance and clinical outcome in patients with low-output heart failure. METHODS: Patients were recruited into a multicentre, randomised, double-blind, double-dummy, parallel-group trial. Under continuous haemodynamic monitoring, an initial loading dose of levosimendan of 24 microg/kg was infused over 10 min, followed by a continuous infusion of 0.1 microg kg(-1) min(-1) for 24 h. Dobutamine was infused for 24 h at an initial dose of 5 microg kg(-1) min(-1) without a loading dose. The infusion rate was doubled if the response was inadequate at 2h. The primary endpoint was the proportion of patients with haemodynamic improvement (defined as an increase of 30% or more in cardiac output and a decrease of 25% or more in pulmonary-capillary wedge pressure) at 24 h. Analyses were by intention to treat. FINDINGS: 103 patients were assigned levosimendan and 100 dobutamine. The primary haemodynamic endpoint was achieved in 29 (28%) levosimendan-group patients and 15 (15%) in the dobutamine group (hazard ratio 1.9 [95% CI 1.1-3.3]; p=0.022). At 180 days, 27 (26%) levosimendan-group patients had died, compared with 38 (38%) in the dobutamine group (0.57 [0.34-0.95]; p=0.029). INTERPRETATION: In patients with severe, low-output heart failure, levosimendan improved haemodynamic performance more effectively than dobutamine. This benefit was accompanied by lower mortality in the levosimendan group than in the dobutamine group for up to 180 days.

Cardiac Output, Low↗

Development of level A, B and C in vitro-in vivo correlations for modified-release levosimendan capsules.

The aim of this study was to investigate the possibility of developing different levels of correlation between in vitro release and in vivo absorption rate for four modified-release levosimendan capsule formulations. Differences and similarities in the in vitro dissolution curves were compared with pharmacokinetic parameters describing absorption rate. Formulations F, G, H and I differed in the amounts of the delaying excipients alginic acid and HPMC. In vitro release rate was studied by the USP basket method using the following conditions: pH 5.8 or 7.4 and a rotation speed of 50 or 100 rpm. In vivo bioavailability was tested in nine healthy male volunteers and the fractions absorbed were calculated by the Wagner-Nelson method. Dissolution conditions pH 5.8 and a rotation speed of 100 rpm predicted best the similarities and differences in absorption rates among different formulations, and levels C and B correlation coefficients were 0.85 and 0.97, respectively. For formulation H level A correlation (r=0.997) was found when in vitro lag time was 0.2 h and time scale factor 1.9. This study indicated that dissolution tests developed can be used as a surrogate for human bioequivalence studies, for development processes of final commercial products, to ensure batch to batch bioequivalence and in the future in possible scale-up and post approval change cases for modified-release levosimendan formulation H.

Adult↗