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Insulin secretion by isolated perfused rat and mouse pancreas.

A method for isolation and perfusion of a pancreas preparation consisting of pancreas, stomach, proximal duodenum, and spleen is described. Basic characteristics of regulation of insulin secretion from the perfused pancreas isolated from rats, albino mice, obese mice (ob/ob), and black mice were identical. Viability and stability of the pancreas preparation during perfusion were maintained as documented by measurements of oxygen consumption of the pancreas preparation, perfusion pressure, and pH of the perfusion medium. The insulin-secretory capacity of the pancreas of different animal species was compared. Insulin secretion by the perfused rat and obese (ob/ob) mouse pancreas was much more potent than that by the pancreas of lean albino and lean black mice. D-Glucose-induced insulin secretion from the pancreas was decreased after fasting of the animals and was dependent on glucose concentration and presence of calcium in the perfusion medium. D-Glyceraldehyde, tolbutamide, D-mannose, dihydroxyacetone, L-leucine, and L-arginine also induced insulin secretion from the pancreas. D-Fructose, D-galactose, L-glucose, 3-O-methyl-D-glucose, N-acetylglucosamine, D-xylose, D,L-glyceric acid, pyruvate, L-lactate, and theophylline did not provoke insulin secretion.

Animals↗

Effect of dopamine on the isolated perfused lung lobes of the dog.

Dopamine (beta-3:4-dihydroxyphenylethylamine) has a pressor action on the pulmonary vascular bed in isolated perfused lung lobes of the dog. Its pulmonary vasoconstrictor effect in this preparation is about 1/20-1/30 that of adrenaline or noradrenaline. When compared with adrenaline, dopamine is less effective as a vasoconstrictor in the bronchial vascular system than in the pulmonary circulation. Even very large doses of dopamine had no bronchomotor effect in the isolated perfused lung lobes. Addition of dopamine alone, or of dopamine together with some "new" blood, sometimes caused a potentiation of the pulmonary vasoconstrictor responses to sympathetic nerve stimulation.

Animals↗

Diuretic and natriuretic effects of nifedipine on isolated perfused rat kidneys.

The effects of nifedipine, a vasodilating drug which acts through calcium antagonism, were studied in vitro using isolated perfused rat kidneys. Most of the nifedipine was neither metabolized nor excreted by this preparation. Four doses were tested: 50, 250, 500 and 750 nM. The two higher concentrations enhanced urine flow and sodium (UNaV) and potassium excretion. Tubular reabsorption of sodium was reduced compared to untreated control kidneys. The glomerular filtration rate was not modified but the filtration fraction decreased. The magnitude of urine volume, UNaV, urinary potassium excretion and filtration fraction changes were related to the dose of nifedipine. The decrement of total renal resistance and the increment of UNaV were correlated for 500 and 750 nM nifedipine (n = 13; r = -0.77; P less than .001), suggesting that it acted by dilating the renal vascular bed. Nifedipine at 250, 500 and 750 nM significantly increased the renin secretion rate compared to that of untreated control kidneys. When renin secretion was enhanced by 50 nM isoproterenol, this stimulatory effect was enhanced in kidneys concomitantly treated with 500 and 750 nM nifedipine. Dihydralazine, another vasodilating drug, was tested at a comparable molar dose (500 nM) and induced similar changes in urine volume, UNaV, urinary potassium excretion and Na reabsorption. The variations in total renal resistance and UNaV were also inversely correlated (n = 8; r = -0.68; P less than .05). Dihydralazine did not modify renin secretion rate significantly. These results suggest that: 1) both nifedipine and dihydralazine increase diuresis, natriuresis and kaliuresis in the isolated perfused rat kidney and 2) nifedipine enhances basal renin release from the juxta-glomerular cells and potentiates renin release caused by beta receptor stimulation.

Animals↗

12-O-tetradecanoyl phorbol-13-acetate (TPA) stimulates somatostatin release from isolated perfused rat stomach.

Effect of TPA (12-O-tetradecanoyl phorbol-13-acetate), a potent tumor promoter, on immunoreactive somatostatin release was investigated using the isolated perfused rat stomach. TPA at the concentration as low as 20nM significantly stimulated the somatostatin release from isolated perfused rat stomach. The integrated net output of somatostatin induced by TPA was dose-dependent in a range of 5 - 50nM TPA. Since TPA is known to activate C-kinase specifically at a low dose (less than 20nM), these findings suggest that C-kinase system may be involved in the regulation of somatostatin release in rat stomach.

Animals↗

Effects of L-NAME and inhaled nitric oxide on ventilator-induced lung injury in isolated, perfused rabbit lungs.

OBJECTIVE: To determine whether nitric oxide (NO) might modulate ventilator-induced lung injury. DESIGN: Randomized prospective animal study. SETTING: Animal research laboratory in a university hospital. SUBJECTS: Isolated, perfused rabbit heart-lung preparation. INTERVENTIONS: Thirty-six isolated, perfused rabbit lungs were randomized into six groups (n = 6) and ventilated using pressure-controlled ventilation for two consecutive periods (T1 and T2). Peak alveolar pressure during pressure-controlled ventilation was 20 cm H2O at T1 and was subsequently (T2) either reduced to 15 cm H2O in the three low-pressure control groups (Cx) or increased to 25 cm H2O in the three high-pressure groups (Px). In the control and high-pressure groups, NO concentration was increased to approximately equal to 20 ppm (inhaled NO groups: CNO, PNO), reduced by NO synthase inhibition (L-NAME groups: CL-Name, PL-Name), or not manipulated (groups CE, PE). MEASUREMENTS AND MAIN RESULTS: Changes in ultrafiltration coefficients (deltaKf [vascular permeability index: g.min(-1).cm H2O(-1).100 g(-1)]), bronchoalveolar lavage fluid 8-isoprostane, and NOx (nitrate + nitrite) concentrations were the measures examined. Neither L-NAME nor inhaled NO altered lung permeability in the setting of low peak alveolar pressure (control groups). In contrast, L-NAME virtually abolished the change in permeability (deltaKf: PL-Name (0.10 +/- 0.03) vs. PNO [1.75 +/- 1.10] and PE [0.37 +/- 0.11; p <.05]) and the increase in bronchoalveolar lavage 8-isoprostane concentration induced by high-pressure ventilation. Although inhaled NO was associated with the largest change in permeability, no significant difference between the PE and PL-NAME groups was observed. The change in permeability (deltaKf) correlated with bronchoalveolar lavage NOx (r2 =.6; p <.001). CONCLUSIONS: L-NAME may attenuate ventilator-induced microvascular leak and lipid peroxidation and NO may contribute to the development of ventilator-induced lung injury. Measurement of NO metabolites in the bronchoalveolar lavage may afford a means to monitor lung injury induced by mechanical stress.

Administration, Inhalation↗

The modulation of pacing-induced changes in intracellular sodium levels by extracellular Ca2+ in isolated perfused rat hearts.

This study demonstrates the inverse relationship between extracellular free calcium ([Ca(o)]f) and intracellular sodium ([Na(i)]) in isolated perfused rat hearts and thus supports the role of [Na(i)] in the "calcium paradox". It also shows that the extent of the increase in [Na(i)] (delta[Na(i)]), and the extent of the decrease in left ventricular developed pressure (deltaLVDP) in isolated perfused rat hearts, induced by pacing, is modulated by [Ca(o)]f. At low (0.24 mM) as well as normal (1.15 mM) [Ca(o)]f, [Na(i)] increased with pacing, progressively and significantly (P<0.01 and P<0.05, respectively), reaching a maximum of 12.56 +/- 0.46 and 9.22 +/- 0.16 mM at 500 beats/min, respectively. At high [Ca(o)]f (2.2 mM), however, no pacing-induced increase in [Na(i)] was observed. Simultaneously, within the pacing range of 250-500 beats/min, the interval-force relationship was negative for all [Ca(o)]f. With decreasing [Ca(o)]f, a gradually increasing delta[Na(i)] was induced. We hypothesise that a [Ca(o)]f-dependent Na-Ca exchanger activity modulates Na+ uptake, and thus baseline [Na(i)]. During incremental pacing, the increase in pacing rate induces a [Ca(o)]f-dependent delta[Na(i)], which may interact further with the sarcolemmal Na-Ca exchanger activity. As a result, both baseline [Na(i)] and the pacing-induced, [Ca(o)]f-dependent delta[Na(i)] modulate the net Ca2+ uptake, and thus SR Ca, in a manner that results in a modulated left ventricular force development.

Animals↗

Amitriptyline-induced release of endothelin-1 in isolated perfused and ventilated rat lungs.

We have previously shown that tricyclic antidepressants can induce vaso- and bronchoconstriction as well as oedema formation in isolated perfused lungs. This is an effect similar to that seen clinically in adult respiratory distress syndrome. In order to investigate whether endothelin can be a mediator of this reaction, isolated perfused rat lungs were exposed to 0.1 mM amitriptyline via the pulmonary circulation, perfusate was collected and endothelin-1 present in the perfusate and lavage fluids was determined by radioimmunoassay. A significant increase in perfusate concentration of endothelin-1 was noted, with the highest release seen within the first 10 min. of exposure. Histamine and thromboxane have also been proposed as mediators in induction of adult respiratory distress syndrome. However, no increased amounts of these mediators were detected in the perfusate. Experiments where lungs were exposed to exogenous endothelin-1(0.1-1 nmol), both via the perfusate and via intratracheal instillation were conducted. Similar effects as observed with amitriptyline (0.1 mM) on lung function and perfusion flow were detected. In conclusion, the detection of endothelin-1 release in our lung model proposes a role for endothelin-1 in amitriptyline-induced vaso- and bronchoconstriction and possibly in adult respiratory distress syndrome type reaction. Further studies with this model are interesting in order to elucidate mechanisms behind the complex issue of adult respiratory distress syndrome-induction.

Amitriptyline↗

Bile acid metabolism in mammals: IX. Conversion of chenodeoxycholic acid to cholic acid by isolated perfused rat liver.

Current dogma of bile acid synthesis in mammals insists that hydroxylation of the ring structure at C-12 precedes side chain oxidation, and that chenodeoxycholic acid is not converted to cholic acid under normal conditions. This report concerns the conversion of chenodeoxycholic acid to cholic acid by isolated, perfused rat liver. Results indicate that isolated perfused rat liver has a definite, but limited, capacity for synthesis of cholic acid from chenodeoxycholic acid.

Animals↗

Influence of sodium diet and deoxycorticosterone on the response to norepinephrine, lysine-vasopressin and angiotensin II of isolated perfused rat mesenteric arteries.

The pressure response of isolated perfused mesenteric arteries to norepinephrine, lysine-vasopressin and angiotensin II was evaluated after feeding 3 different sodium diets and administration of deoxycorticosterone to the intact rats. Varying sodium diet did not consistently alter vascular responsiveness to the 3 pressor agonists. In contrast, the administration of deoxycorticosterone enhanced the responsiveness to lysine-vasopressin and particularly to angiotensin II. This enhanced responsiveness was equally present following a low or a high sodium diet. These results suggest that sodium intake of the intact animal has no consistent influence on the responsiveness of isolated mesenteric rat arteries, whereas deoxycorticosterone tends to enhance the vascular response independently of sodium.

Angiotensin II↗

A novel HPLC assay for pentamidine: comparative effects of creatinine and inulin on GFR estimation and pentamidine renal excretion in the isolated perfused rat kidney.

PURPOSE: 1. To develop and validate an analytical method for pentamidine (PTM) by reversed-phase HPLC. 2. To compare the effects of creatinine and inulin on PTM excretion in the isolated perfused rat kidney. METHODS: The HPLC method utilized a base deactivated, 5 micro, C18 column and a mobile phase containing acetonitrile (24%) and 0.025 M monobasic phosphate buffer, pH 3.2 (76%). Mobile phase flow rate and UV detection wavelength were 1 mL/min and 270 nm, respectively. Sulfadiazine (SDZ) was used as the internal standard. The method was used to measure pentamidine in perfusate and urine samples generated from studies with the isolated perfused rat kidney (IPK) model. Perfusion experiments were conducted in the presence of two different GFR markers: creatinine and inulin (PTM dose 800 micro g). Both creatinine and inulin were assayed using colorimetric methods. RESULTS: The HPLC assay is rapid, sensitive and reproducible. The method was validated over two standard concentration ranges: 0.1 to 1 micro g/mL, and 1 to 10 micro g/mL. In control (drug-naïve) IPK perfusions, creatinine clearance was approximately 15% greater than inulin clearance (0.80+/- 0.21 mL/min vs. 0.69+/-0.17 mL/min, p > 0.05). In the presence of PTM, however, creatinine clearance was reduced to 0.56+/-0.27 (p < 0.05 compared to control). Inulin clearance was not altered by PTM administration (0.76+/-0.26 mL/min). Cumulative urinary excretion of PTM (% dose) was 3.0+/-0.47% and 9.6+/-4.2% in the presence of creatinine and inulin, respectively. PTM clearance was significantly reduced (0.06+/-0.01 mL/min vs. 0.13+/-0.01 mL/min, p < 0.05) and % kidney accumulation significantly enhanced (66+/-4.7% vs. 37+/-9.7%, p < 0.05) by creatinine. CONCLUSIONS: Creatinine overestimated GFR in the IPK. The altered renal excretion of PTM by creatinine is consistent with inhibition of PTM tubular secretion. Because of increased kidney accumulation, detrimental effects of PTM on renal function were observed. Based on these findings, creatinine should be used cautiously as an indicator of GFR in IPK experimentation.

Animals↗

Vaporized perfluorohexane attenuates ventilator-induced lung injury in isolated, perfused rabbit lungs.

BACKGROUND: The authors tested the hypothesis that administration of vaporized perfluorohexane may attenuate ventilator-induced lung injury. METHODS: In isolated, perfused rabbit lungs, airway pressure-versus-time curves were recorded. At baseline, peak inspiratory pressure and positive end-expiratory pressure of mechanically ventilated lungs were set to obtain straight pressure-versus-time curves in both the lower and upper ranges, which are associated with less collapse and overdistension, respectively. After that, peak inspiratory pressure and positive end-expiratory pressure were set at 30 cm H2O and 0, respectively, and animals were randomly assigned to one of two groups: (1) simultaneous administration of 14% perfluorohexane vapor in room air (n = 7) and (2) control group-ventilation with room air (n = 7). After 20 min of cycling collapse and overdistension, tidal volume and positive end-expiratory pressure were set back to baseline levels, administration of perfluorohexane in the therapy group was stopped, and mechanical ventilation was continued for up to 60 min. Lung weight, mean pulmonary artery pressure, and concentration of thromboxane B2 in the perfusate were measured. In addition, the distribution of pulmonary perfusate flow was assessed by using fluorescent-labeled microspheres. RESULTS: Significantly higher peak inspiratory values developed in control lungs than in lungs treated with perfluorohexane. In addition, upper ranges of pressure-versus-time curves were closer to straight lines in the perfluorohexane group. Lung weight, mean pulmonary arterial pressure, and release of thromboxane B2 were significantly higher in controls than in perfluorohexane-treated lungs. Also, redistribution of pulmonary perfusate flow from caudal to cranial zones was less important in the treatment group. CONCLUSION: The authors conclude that the administration of perfluorohexane vapor attenuates the development of ventilator-induced lung injury in isolated, perfused rabbit lungs.

Animals↗

The treatment of state I melanoma of the extremities with regional hyperthermic isolation perfusion.

One hundred twenty-two clinically Stage I malignant melanoma patients were treated prospectively in a nonrandomized trial by hyperthermic isolation perfusion with l-phenylalanine mustard (l-Pam), regional lymphadenectomy (RL), and wide local excision (WLE) between April 1965 and July 1980. There were 31 males and 91 females. All primary lesions were retrospectively microstaged by Clark's levels and Breslow's thickness criteria by one of the senior authors. Morphologically, 71% were superficial spreading melanomas (SSM), 16.5% were nodular melanomas (NM), and 11.9% were acral lentiginous melanomas. Survival by microstaging and morphology are reported in Table 1. Eighty-one per cent of all patients were disease-free at five years. Twenty-three patients (18.8%) recurred and of these, 15 died of their disease. This included six of the seven patients with histologically positive lymph nodes. Complications were not only acceptable but preventable and will be discussed. Microstaging provides a valid basis by which to compare treatment regimens and, more importantly, a valid criteria by which to select treatment for a given patient. These data compare favorably with other reported series. At the time these studies were initiated, five-year survivals for clinically Stage I and II melanoma were roughly 55% and 15%, respectively. Existing data clearly indicate that hyperthermic isolation perfusion with RL is superior to WLE and warrants further study in selected patients.

Chemotherapy, Cancer, Regional Perfusion↗

Effects of COX-1 and COX-2 inhibitors on eicosanoid biosynthesis and the release of substance P from the guinea-pig isolated perfused lung.

OBJECTIVE: In the guinea-pig isolated perfused lung, co-administration of bradykinin (BK) and histamine causes the release of pro-inflammatory neuropeptides, an effect that is largely dependent on BK-induced formation of prostaglandins. Since it is known that at least two isoenzymes, cyclooxygenase-1 (COX-1) and cyclooxygenase-2 (COX-2) catalyse the conversion of arachidonic acid to prostaglandins (PGs) and thromboxanes, the present study aimed at investigating the effect of selective COX-1 and COX-2 inhibitors on the evoked release of substance P (SP). MATERIAL AND METHODS: Lungs were vascularly perfused with oxygenated physiological salt solution containing peptidase inhibitors. BK (0.1 microM) and histamine (100 microM) were added to the perfusate for 10 min and 5 min, respectively. The concentrations of 6-keto-PGF1alpha, cysteinyl-leukotriene (LT), and SP were determined in the outflow by radioimmunoassay. RESULTS: In non-stimulated preparations, indomethacin (2 microM) and the selective COX-1 inhibitor SC-560 (0.03-1 microM) reduced basal release of 6-keto-PGF1alpha, without significantly affecting the release of cysteinyl-LT and SP. The selective COX-2 inhibitors NS-398 (1 microM) or DFU (10 microM) had no significant effect on the basal release of eicosanoids or SP. Co-administration of BK and histamine caused a pronounced increase in the concentration of 6-keto-PGF1alpha and cysteinyl-LT, and SP in the effluate. Under these conditions, indomethacin as well as SC-560 reduced the release of 6-keto-PGF1alpha, enhanced cysteinyl-LT release, and attenuated the release of SP. In contrast, the selective COX-2 inhibitors NS 398 and DFU had no significant effect on the stimulated release of eicosanoids or SP. CONCLUSIONS: These results suggest that in the isolated guinea-pig lung, basal prostanoid biosynthesis as well as BK-induced stimulation of prostanoid formation and subsequent facilitation of histamine-induced SP release is primarily mediated by COX-1 without detectable involvement of COX-2.

6-Ketoprostaglandin F1 alpha↗

Drug metabolizing function of isolated perfused liver.

How closely the isolated liver of the rat would simulate the in vivo function of the organ in terms of the metabolic pattern of the compounds such as bromosulphophthalein, p-nitrophenol, hexobarbital, and indocyanine green was investigated. In order to produce tissue with the stimulated function, the animal was pretreated with phenobarbital and, for the reverse purpose, with ethionine. Some of the indices of the function employed herein, such as the appearance pattern of the compound, the rate of biochemical transformation or the biliary excretion, showed that the perfused liver would generally well reflect the in vivo situation. The method with isolated and perfused liver could exclude the participation of other organs and also the influence of the factors unavoidable in an in vivo experiment. Thus, it is suggested that the isolated perfused liver is useful for studying directly the functional level of the organ as drug metabolizing tissue.

Animals↗

Effects of preload alteration on the degree of ischemia and function of ischemic myocardium under constant mean aortic pressure, coronary perfusion pressure and heart rate in isolated perfused canine heart.

We examined the effects of preload alteration on global and regional (i.e., non-ischemic and ischemic areas) function in the presence of regional myocardial ischemia and on the degree of ischemia using 18 isolated, metabolically supported canine left ventricles. For this purpose, cardiac output (CO), systolic segment length change (SL), myocardial CO2 tension (PmCO2) and ST level of epicardial ECG were measured at 3 levels of left ventricular end-diastolic pressure (LVEDP), i.e., approximately 7 (low LVEDP), 11 (middle LVEDP), and 16 mmHg (high LVEDP) without and with left circumflex artery (LCx) stenosis under a constant mean aortic pressure (90 mmHg), mean coronary perfusion pressure (90 mmHg) and heart rate. In the Pre-ischemic stage, CO and SL increased significantly when LVEDP was elevated in a stepwise fashion by changing the height of the reservoir connected to the left atrium. There were no significant changes in PmCO2 or ST level. On the other hand, with LCx stenosis, CO did not show a subsequent increase at higher LVEDPs (i.e., from 796 +/- 103 ml/min at middle LVEDP to 931 +/- 153 ml/min at high LVEDP). Furthermore, there was no significant SL response in the LCx area following alterations of LVEDP, although there was considerable lengthening of end-diastolic length. Both increased PmCO2 and ST level of the LCx area, following LCx stenosis, further increased significantly with elevation of LVEDP. These results suggest the possibility that considerable elevation of LVEDP worsens the degree of ischemia and does not significantly augment ischemic regional myocardial function or global function, while mild elevation of preload improves or tends to improve simultaneously regional ischemic and global functions without aggravating the ischemic injury significantly. Therefore, we conclude that the preload level is quite important in managing ischemia induced myocardial dysfunction.

Animals↗

Differences in the metabolism of very-low-density lipoproteins by isolated beating-heart cells and the isolated perfused rat heart. Evidence for collagenase-released extracellular lipoprotein lipase.

1. The metabolism of VLD lipoproteins (very-low-density lipoproteins) was studied in intact isolated beating-heart cells and isolated perfused rat heart from starved animals by using [14C]triacylglycerol fatty acid-labelled VLD lipoprotein prepared from rats previously injected with [1-14C]palmitate. 2. 14C-labelled VLD lipoprotein was metabolized by the isolated perfused heart, but was only minimally metabolized by the heart cells unless an exogenous source of lipoprotein lipase was added. 3. Measurements of lipoprotein lipase at pH 7.4 with the natural substrate 14C-labelled VLD lipoprotein indicated that during collagenase perfusion of the heart the enzyme was released into the perfusate, the activity released being proportional to the concentration of collagenase used. Lipoprotein lipase activity in homogenates of hearts that had been perfused with collagenase showed a corresponding loss of activity. 4. At high perfusate concentrations of collagenase, inactivation of the released lipoprotein lipase occurred. 5. Lipoprotein lipase activity was largely undetectable in the homogenate of the isolated heart cells. 6. It is concluded that the lipoprotein lipase responsible for the hydrolysis of VLD lipoprotein triacylglycerol is predominantly located externally to the heart muscle cells and that its release can be facilitated by perfusion of the heart with bacterial collagenase.

Animals↗

Quantitative prediction of transdermal iontophoretic delivery of arbutamine in humans with the in vitro isolated perfused porcine skin flap.

The use of the isolated perfused porcine skin flap (IPPSF), an alternative in vitro animal model, to predict the profile of the concentration of arbutamine in plasma samples from humans after transdermal iontophoretic administration of this novel catecholamine is described. The strategy involved administering the drug in the IPPSF (n = 8) and assaying concentrations of drug in the venous efflux versus time (IPPSF venous efflux profile). Intravenous infusion (n = 7) and transdermal studies (n = 32) were also conducted in humans. The IPPSF profile was then used as an input into an intravenous pharmacokinetic model obtained from the human experiments to predict the profile of concentration of drug in plasma versus time (plasma concentration-time profile) seen after iontophoretic administration. The IPPSF profiles were denormalized according to the parameters used in the human studies (i.e., multiplied by in vivo concentration, electrode area, current, and dosing time). For two different sets of iontophoretic dosing conditions, the concentration-time profiles that were predicted on the basis of the IPPSF study were compared with those seen after delivery to humans.

Administration, Cutaneous↗

Product inhibition and dose-dependent bioavailability of propranolol in the isolated perfused rat liver preparation.

We investigated in the isolated perfused rat liver (IPRL) whether product inhibition of metabolism contributes to the dose-dependent bioavailability of propranolol, a drug with a high, but saturable, hepatic first-pass effect. (+/-)-Propranolol was infused in the IPRL, using a recirculating design, for three 36-min periods (n = 9). Mean steady-state reservoir, i.e. hepatic inflow concentrations (Cin), were 4.97, 10.4, and 20.4 microM, respectively. Mean reservoir concentrations of the metabolites 4'-hydroxypropranolol, 5'-hydroxypropranolol, N-desisopropylpropranolol, and naphthoxylactic acid (NLA), a major side-chain-oxidation metabolite, increased disproportionately with propranolol dose, but their production rate did not reach steady state. In separate experiments (n = 4), perfusate containing 7.1, 12.8, and 21.6 microM (+/-)-propranolol, corresponding to administration rates of 114, 205, and 346 nmol/min, respectively, was passed through the liver for 30 min each using a single-pass design. The bioavailability (hepatic outflow concentration/Cin) of propranolol increased with Cin from 0.012 to 0.150 to 0.288 in the recirculating IPRL. In the single-pass IPRL the increase (0.0077 in 0.0669 to 0.136) was significantly less (P < 0.001). The greater bioavailability of propranolol in recirculating experiments was attributed to product inhibition since metabolites do not accumulate with the single-pass design. NLA did not appear to be the inhibiting metabolite because in further single-pass experiments with propranolol Cin of 21.6 microM the presence of NLA (21.6 microM) in perfusate had no effect on propranolol bioavailability (n = 7) compared with control experiments (n = 5).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗