Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “ISOLATION PERFUSION”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 199 records · Page 11Linked to original sources

Glucose, beta adrenergic effects, and pancreatic endocrine function in the isolated perfused duck pancreas.

Duck isolated perfused pancreas was used to assess glucose, adrenergic mediated effects and pancreatic function interrelationships. A moderate physiological 50% increase in glucose level, corresponding closely to the difference observed between 24-h-fasted and fed animals, induced a significant decrease of pancreatic glucagon not due to a rise in somatostatin secretion. The great responsiveness of the A cell was still found after glucagon stimulation by catecholamines or beta adrenergic agonism. Insulin was irresponsive to the glucose load we used, suggesting that glucose-induced glucagon suppression was also insulin independent. As far as the D cell was concerned, glucose had no effect on pancreatic somatostatin output; however, an interesting finding was that beta adrenergic agonism has a permissive effect on D cell responsiveness to the nutriment.

Animals↗

Comparison of the effects of parathyroid hormone (PTH) and recombinant PTH-related protein on bicarbonate excretion by the isolated perfused rat kidney.

The isolated perfused rat kidney was used to study the effects of amino-terminal fragments of human parathyroid hormone, hPTH(1-34), bovine parathyroid hormone, bPTH(1-84) and of PTH-related proteins, PTHrP(1-34), PTHrP(1-84), PTHrP(1-108) and PTHrP(1-141) on urinary bicarbonate excretion. PTHrP(1-34) (7 nmol/l), bPTH(1-84) (5.5 nmol/l) and hPTH(1-34) (7 nmol/l) had similar effects in increasing bicarbonate excretion with respect to the control. At lower concentrations (0.7 nmol/l) all PTHrP components, but not hPTH(1-34) or bPTH(1-84) increased bicarbonate excretion significantly. Infusions of PTHrP(1-108) and PTHrP(1-141) at 0.7 nmol/l, while associated with a rise in urinary bicarbonate concentration and excretion during the early stages of perfusion, produced a sharp decline in bicarbonate concentration and excretion in the latter part of perfusion. The different peptides produced no significant differences in glomerular filtration rate, fractional excretion of sodium or urine volume. The absence of substantial differences between the effects of hPTH(1-34) and PTHrP(1-34) are as noted in previous studies. The differences between PTHrP(1-108)/PTHrP(1-141) and PTHrP(1-34) demonstrated here are consistent with (1) the clinical manifestations of acidosis in hyperparathyroidism and alkalosis in humoral hypercalcaemia of malignancy, and (2) an independent action of a component of PTHrP beyond amino acids 1-34.

Animals↗

Effects of cyclosporine and its metabolites in the isolated perfused rat kidney.

The isolated perfused rat kidney (IPK) was used to study the acute effects of cyclosporin A (CsA) and its metabolites (M1, M17, M18, M21 and M-COOH). GFR, renal vascular resistance, and sodium, potassium and water reabsorption were measured before and after the addition of CsA/metabolites/vehicles. There was no difference in CsA effect (mild decrease in GFR and increase in renal vascular resistance with the inclusion of plasma (10 mL) or whole blood (20 mL) in the albumin perfusate (120 mL). Intralipid was used as the vehicle for CsA and the metabolites because methanol, ethanol, and Cremophor had significant effects on GFR. Intralipid enhanced the effect of CsA 25-fold, giving CsA dose responses comparable to those of human kidneys. This enhanced effect with intralipid was due to vasoconstriction, not vascular obstruction, and was apparently specific to CsA (no enhancement of norepinephrine with Intralipid). The primary metabolites (M1, M17, and M21) caused decreases in GFR comparable to or slightly less than those caused by CsA. The secondary metabolites (M18 and M-COOH) caused more modest declines in GFR. Cyclosporine metabolite levels in patient blood often greatly exceed levels of the parent drug; these studies suggest that the metabolites may contribute significantly to CsA nephrotoxicity in patients.

Animals↗

Neurotransmitters and glucagon release from the isolated, perfused canine stomach.

The isolated, perfused, canine stomach was used to investigate the effect of three neurotransmitters--norepinephrine, acetylcholine (or its analogue carbamylcholine), and VIP (vasoactive intestinal peptide)--on gastric glucagon release. Norepinephrine at the two concentrations tested (3.10-8 and 7.10-7 M) did not influence gastric glucagon release. In contrast, acetylcholine or carbamylcholine (5.10-6 M) as well as VIP (46-60 ng/ml) unequivocally stimulated gastric glucagon release, an effect apparently independent of the changes in blood flow. These results are in sharp contrast with the previously reported lack of effect of an electric stimulation of the vagus nerves on the release of glucagon from the dog stomach. An absence of innervation of the canine gastric A-cell would probably best explain this situation.

Acetylcholine↗

Serum antitrypsin synthesis by the isolated perfused rat liver.

The isolated perfused rat liver synthesizes antitrypsin activity in a linear fashion as long as 24 hr. The rate of synthesis may be ten times the rate necessary for physiologic levels in vivo. These data are compatible with the liver as the principal site of synthesis of serum antitryptic activity in the rat. The antitrypsin activity of the rat perfusate resembles that of normal human plasma in liability to heat (56 degrees) and to acid (below pH 6) and in apparent molecular size (elution from Sephadex G-200).

Animals↗

Evaluation of the components of the chylomicron remnant removal mechanism by use of the isolated perfused mouse liver.

The isolated perfused mouse liver was utilized to evaluate the relative contribution of various molecules believed to participate in the removal of chylomicron remnants by the liver. Sixty percent of asialofetuin was removed from the perfusate per pass; bovine serum albumin was not removed. Normal mouse livers removed chylomicron remnants more efficiently (40-50%/pass) than nascent chylomicrons (10-20%/pass). The fractional removal rate of remnants decreased as their concentration in the perfusate increased demonstrating saturability. Remnant removal by livers of low density lipoprotein receptor-deficient (LDLRD) mice paralleled that of normal mice at low remnant concentrations (0.05, 0.2 microg protein/ml); as concentration increased (4-16 microg protein/ml), removal by LDLRD livers was reduced. About 50% of the capacity to remove remnants was due to the LDL receptor. The role of the LDLR-related protein (LRP) was estimated using the receptor-associated protein (RAP). Four microg/ml of RAP inhibited only LRP; it reduced the removal of remnants by 30-40% in normal livers. When RAP was included in the perfusate of LDLRD livers, remnant removal persisted but was diminished, particularly late in the perfusion; the capacity was approximately 30% of controls. The present study has established that there is more than one mechanism operating for the removal of chylomicron remnants by the liver, provides estimates of the concentration of each to the removal of remnants, and indicates a method for further studies. It is concluded that in normal livers, the LDL receptor has the greatest capacity for removing chylomicron remnants. The LRP contributes to the process as well and a third component, perhaps "sequestration," accounts for up to 30% of the capacity for the initial removal of chylomicron remnants.

Animals↗

Effect of H2 antagonists on the differential secretion of triamterene and its sulfate conjugate metabolite by the isolated perfused rat kidney.

The isolated perfused rat kidney model was used to examine the effect of the histamine H2 antagonists cimetidine, ranitidine, and famotidine and the organic anion inhibitor probenecid on the differential renal handling of triamterene and its active metabolite p-hydroxytriamterene sulfate. The kidneys were perfused with a Krebs-Henseleit buffer containing albumin, glucose, and amino acids to pH 7.4, and drug concentrations were measured by HPLC. At an initial triamterene concentration of 0.5 mg/liter, the unbound renal clearance to glomerular filtration rate (GFR) ratio was 11.0 +/- 2.5 (mean +/- SD): 1, indicating substantial tubular secretion of the drug. Cimetidine and ranitidine reduced the tubular secretion by about 80% (p less than 0.01), famotidine by between 35 and 60% (p = 0.05), whereas probenecid had no inhibitory effect. For p-hydroxytriamterene sulfate, its unbound renal clearance to GFR ratio was 41 +/- 25:1; this was not affected by cimetidine, ranitidine, or famotidine, whereas probenecid significantly (p less than 0.01) reduced the rate of tubular secretion by 80%. These data indicate that the renal tubular secretion of triamterene is mediated by the organic cation system, whereas for p-hydroxytriamterene sulfate its tubular secretion is via the organic anion system. Famotidine is a weaker inhibitor of the organic cation system compared with cimetidine and ranitidine. These results have implications for drug-drug interaction studies involving renal elimination pathways.

Animals↗

Renal tubular transport of morphine, morphine-6-glucuronide, and morphine-3-glucuronide in the isolated perfused rat kidney.

The isolated perfused rat kidney was used to examine the renal handling of morphine and its inactive metabolite morphine-3-glucuronide (M3G), and active metabolite morphine-6-glucuronide (M6G). The kidneys were perfused with Krebs-Henseleit buffer (pH 7.4) containing albumin, glucose, and amino acids, and drug concentrations were measured by high performance liquid chromatography. There was no conversion of morphine to the glucuronides or deconjugation of M3G or M6G. At an initial morphine concentration of 100 ng/ml, the unbound renal clearance to glomerular filtration rate ratio (CLur/GFR) was 5.5 +/- 3.2 (mean +/- SD), indicating that net tubular secretion of morphine occurred. In the presence of M3G (2000 ng/ml) and M6G (500 ng/ml) this Clur/GFR ratio was elevated to 17.3 +/- 4.8 (p less than .001), which implicates an interaction between these compounds at an active reabsorption transport system. The CLur/GFR ratio for M3G at 2000 ng/ml was 0.90 +/- 0.04, indicating the possibility of a small component of tubular reabsorption, and this ratio was not significantly altered in the presence of morphine and M6G. M6G was reabsorbed, probably actively, to a greater extent than M3G, with an initial CLur/GFR ratio of 0.67 +/- 0.04, which was not affected when morphine and M3G were coadministered. These data demonstrate an unusual phenomenon in that the glucuronide metabolites, which are larger and less lipophilic than the parent drug morphine, undergo net tubular reabsorption. The renal handling of morphine is a complex combination of glomerular filtration, active tubular secretion, and possibly active reabsorption.

Animals↗

The role of ATP and free ADP in metabolic coupling during fuel-stimulated insulin release from islet beta-cells in the isolated perfused rat pancreas.

The isolated perfused rat pancreas was used to test the hypothesis that total cellular ATP or the ratio of ATP/free ADP plays the primary role in coupling intermediary metabolism to the biophysical events that are the basis of glucose-stimulated insulin release. The pancreas was preperfused for 20 min with 4.0 mM of a physiological mixture of 20 amino acids plus 4.2 mM glucose, and insulin release was then stimulated for 150 s by suddenly increasing the glucose to 8.3 mM. The pancreas was sampled at 24, 48, 72, and 150 s after the switch. The content of total ATP, ADP, AMP, Pi, phosphocreatine, and creatine were measured in beta-cell enriched cores of pancreatic islets microdissected from freeze-dried pancreas cryostat sections. Metabolites were measured by quantitative histochemical enzymatic cycling techniques. Modeling studies were carried out to assess the impact of biochemical analytical results on the membrane potential of the beta-cells. The level of free ADP was calculated using the creatine kinase equilibrium reaction and an intracellular pH of 7.2. First phase insulin release was stimulated at least 10-fold with the maximum reached 45 s after adding high glucose. The biochemical analytical data demonstrate that the total cellular level of the putative coupling factor ATP and of the ratios ATP/free ADP and ATP/free ADP x Pi are not significantly influenced by a glucose level change that causes a more than 10-fold surge of insulin release. The strength and limitations of the present experimental strategy and the implications of the results for our understanding of metabolic coupling in glucose-stimulated insulin release are discussed.

Adenosine Diphosphate↗

A study of the dynamics of imipramine accumulation in the isolated perfused rabbit lung.

An isolated perfused rabbit lung preparation (IPL) was used to study the uptake, accumulation, and efflux of the tricyclic amine imipramine (IMIP). The rate of IMIP uptake into the IPL was resolved into two exponential components (rates 1 and 2 of uptake). The initial velocities for these uptake components were linearly related to the concentration of IMIP in the perfusate (Cp). This linear relationship indicates that IMIP accumulated in the IPL by diffusion and/or binding. The steady-state accumulation of IMIP was obtained by integration of the exponential expression relating the rate of IMIP uptake to time. The amount of IMIP accumulated at steady state by rate 1 was linearly related to Cp, whereas the amount of IMIP accumulated at steady state by rate 2 was saturable with respect to Cp. These steady-state data are in agreement with the steady-state accumulation data previously reported from experiments with the recirculating blood-perfused rabbit lung. In the absence of IMIP in the perfusate. IMIP that had previously accumulated in the IPL effluxed from the lung at three rates (t1/2 = 18 sec, 58 sec, and 8.25 min), which indicates that accumulated IMIP was in at least three pools in the lung. In addition, a noneffluxable pool was detected which was not the result of irreversible binding to tissue.ated in pools 1 and 2 by rate 1 of uptake. The IMIP in pool 3 and in the noneffluxable pool was accumulated in the IPL by rate 2 of uptake. Efflux pool 3 and the IMIP accumulated at a steady state by rate 2 of uptake were resolved by a Hofstee plot into a biphasic curve indicating two types of binding sites. The noneffluxable pool of IMIP in the IPL was saturable with increasing Cp and represented approximately 30% of the IMIP accumulated by rate 2 into pool 3. Rate 2 of uptake, pool 3, and particularly the noneffluxable pool of IMIP in the IPL are possibly responsible for the accumulation and persistence of Imip in the lung as seen in whole body distribution studies. The physicochemical properties of IMIP and other compounds known to be accumulated in lung tissue are discussed in relation to the possible involvement of lung phospholipids and the compartmentalization of IMIP in the concentric lamellar organelles of the lung.

Animals↗

Effect of ethanol on the renal excretion and metabolism of choline in the isolated perfused rat kidney.

The isolated perfused rat kidney was used to investigate the effect of ethanol on the renal excretion and metabolism of choline. Choline at an initial perfusate concentration of 2.8 mM, with tracer amounts of [methyl-14C]choline, was recirculated through kidneys and radioactivity measured in perfusate, urine, and kidney. 14C-Choline and its metabolites were identified by chromatographic and electrophoretic procedures. Tubular excretion of choline was demonstrated and a transport maximum (Tm) of 1.6 mumol/kidney/min was reached at a choline perfusate concentration of 1.2 mM. Addition of 50 mM ethanol resulted in a 56% increase in the choline Tm and 100 mM ethanol decreased the choline Tm by 25%. The rate of loss of 14C-choline from the perfusate was increased by the lower ethanol concentration and decreased by the higher ethanol concentration. Ethanol at both concentrations diminished the amount of 14C remaining in the kidney. 14C-Betaine was the major choline metabolite and the only 14C-metabolite present in perfusate or urine. Addition of either 50 or 100 mM ethanol increased both glomerular filtration rate and urine volume.

Animals↗

Prednisolone metabolism and excretion in the isolated perfused rat kidney.

The isolated perfused rat kidney was used to identify factors responsible for the renal elimination of prednisolone (Pn). Pn was recirculated at initial concentrations varying from 100 to 1000 ng/ml for 90 min. Perfusate and urine samples were assayed for Pn and prednisone by HPLC. Protein binding of Pn was measured by using 3H-Pn and equilibrium dialysis at 37 degrees C. There were no significant differences in perfusate flow, glomerular filtration rate, urine flow, or sodium excretion between control and steroid experiments. Partial metabolism of Pn to prednisone occurred in all studies. The total kidney clearance (CIT) of Pn ranged from 0.39 to 1.24 ml/min/100 g of rat body weight with approximately half of the Pn dose unaccountable for as either Pn or prednisone. The apparent percentage of the Pn dose excreted unchanged in the urine ranged from 1.9 to 6.4% and was not related to Pn dose. The apparent urinary clearances of Pn and its metabolite, prednisone, normalized for inulin clearance (fractional excretion) were variable with means of 0.068 and 0.095, respectively. The fractional excretions of Pn and prednisone were related to the fraction of filtered water excreted but not to perfusate concentration. Thus, the extent of urinary clearance of these corticosteroids is related to glomerular filtration and passive tubular reabsorption. The perfused rat kidney reflects the urinary and renal metabolic clearance of Pn without the complication of dose-dependent disposition.

Animals↗

Relationship between renal clearance, protein binding and urine flow for digitoxin, a compound of low clearance in the isolated perfused rat kidney.

An isolated perfused rat kidney preparation is described which allows the relationship between protein binding and renal clearance to be studied in a quantitative manner. The influence of unbound fraction of drug in the perfusate, urine pH and urine flow upon the renal clearance of digitoxin is examined. Renal clearance and unbound fraction were found to be related linearly. Urine pH did not influence digitoxin renal clearance but urine flow did, in a nonlinear manner. A simple physiologically based model of renal clearance is developed which predicts the influence of urine flow and protein binding upon digitoxin clearance in this preparation.

Animals↗

Disposition of L-carnitine and acetyl-L-carnitine in the isolated perfused rat kidney.

The isolated perfused rat kidney was used to investigate the regulation, specificity and concentration-dependence of the renal tubular disposition of L-carnitine (LC) and its ester, acetyl-L-carnitine (ALC). Tritiated markers were used to study the renal disposition of LC and ALC and HPLC was used to purify 3H-LC and 3H-ALC before radiochemical analysis. At perfusate concentrations comparable to those found in plasma in vivo (50 microM for LC and 5 microM for ALC), the renal clearance of both analogues was substantially less than GFR (P < .05) which, in view of their negligible binding to perfusate proteins, is indicative of extensive reabsorption. During the first 20 min of perfusion, the percent tubular reabsorption (%TR) of LC and ALC was 94 +/- (SD) 2.6% and 97 +/- 0.6%, respectively. The extent of 3H-ALC and 3H-LC enrichment of perfusate in experiments with 3H-LC and 3H-ALC, respectively, provided evidence for the capability of the rat kidney to acetylate LC and deacetylate ALC. In addition, a portion of renally generated 3H-ALC and 3H-LC was found to undergo leakage into renal tubules and escape subsequent reabsorption. It was also found that the %TR of both compounds decreased substantially when the perfusate concentration was increased above endogenous levels; each compound was capable of decreasing the %TR of the other; and trimethylamine-N-oxide, a metabolite of LC, had no significant effect on the renal handling of the carnitine derivatives.

Acetylcarnitine↗

Concentration-dependent tubular secretion of acetazolamide and its inhibition by salicylic acid in the isolated perfused rat kidney.

An isolated perfused rat kidney (IPK) technique was used to study the effect of salicylic acid (SA) on the excretion of acetazolamide (AZ). Initial experiments were conducted in the absence of interactants at three nominal AZ concentrations (50, 100, and 250 micrograms/ml). Over the concentration range studied, AZ demonstrated net tubular secretion in the IPK. Significant decreases in excretion ratio (4.97 +/- 0.79-2.66 +/- 1.1) and secretory clearance (0.809 +/- 0.23-0.541 +/- 0.28) were observed with increasing AZ concentration, consistent with saturation of tubular secretion. Using a facilitated model for renal secretion, values of tubular transport parameters were obtained from a plot of excretion ratio vs. unbound AZ concentration: tmax = 118 +/- 29.4 micrograms/min, KM = 53.4 +/- 22.4 micrograms/ml, and tmax(A) = 6.31 +/- 2.82 micrograms/min. In the presence of SA (200 micrograms/ml), renal secretion of AZ was inhibited, as demonstrated by significant decreases in renal clearance (0.731 +/- 0.21-0.147 +/- 0.03) and excretion ratio (3.77 +/- 0.82-0.378 +/- 0.07). Although these findings were indicative of a reabsorption component to AZ excretion in the IPK that had not been previously proposed, the results were consistent with a previous investigation of concomitant administration of AZ and SA in humans (Br. J. Clin. Pharmacol. 27, 866, 1989), thereby endorsing utilization of the IPK as a screening tool for renal clearance mechanisms in humans.

Acetazolamide↗

Physiological evaluation of the isolated perfused rat kidney.

A critical evaluation of the functional properties of the isolated perfused rat kidney is necessary to assess the usefulness of the preparation for renal function studies. Clearance and micropuncture experiments in isolated perfused rat kidneys perfused with a plasmalike medium containing 7.5 g/100 ml albumin, glucose, and amino acids show that proximal convoluted tubule functions are well preserved. Proximal convoluted tubule reabsorption of organic substances, electrolytes, and fluid is near normal, the latter being directly related to the peritubular oncotic pressure. Superficial single nephron glomular filtration rate and glomerular permselectivity are also preserved. However, abnormalities in renal hemodynamics, urinary concentration-dilution, and excretion of fluid and electrolytes persist even in the best preparations. High renal perfusate flow, due mainly to the low viscosity of the perfusate, and altered distal nephron functions explain at least in part these abnormalities. Therefore, the isolated perfused rat kidney is a useful preparation to particularly study glomerular and proximal convoluted tubule functions. Recent development of a nonfiltering isolated perfused rat kidney model, with preserved renal perfusate flow and cellular integrity, also permits the study of transport and metabolic functions of proximal tubular cells independently of luminal events.

Animals↗

The interaction between cyclosporin A and erythromycin studied by means of an isolated perfused rat liver model.

The isolated perfused rat liver model was successfully used to study the clinical interaction observed between cyclosporin A (CsA) and erythromycin (ER). Three experimental studies were performed. In a "Control group", isolated rat livers were perfused with 60 micrograms 3H-CsA for 20 min. In an "ER group", isolated rat livers were simultaneously perfused with 60 micrograms 3H-CsA and 6.0 mg ER. In an "ER ind group", rats were treated with ER for 5 days, conditions under which the P450IIIA gene subfamily, principally involved in CsA metabolism, was specifically induced, and isolated rat livers were perfused with 60 micrograms 3H-CsA for 20 min. Biological parameters of the liver model such as biliary flow, oxygen consumption and pH were similar whatever group of animals. Biliary excretion of total radiolabel (sum of CsA and all the metabolites = CsAT) was similar in both the "Control" and "ER" groups but significantly higher in the "ER ind" group with respectively 8.05 +/- 0.81%, 8.45 +/- 1.93% and 14.54 +/- 2.12% of the entire amount of infused drug excreted during 2 hr. Using a high performance liquid chromatography method which specifically resolves unchanged CsA from its metabolites, we demonstrated that, although similar amounts of radiolabelled material were excreted in both the "Control" and "ER" groups, the CsA/metabolite ratio was lower than 1.0 in the "Control group" and higher than 1.0 in the "ER group", suggesting an inhibition of CsA metabolism by ER in the "ER group". These data could explain the increase in CsA blood levels observed in the clinic following administration of high ER doses and the reversing effect when ER administration is stopped.

Animals↗

Hexamethylene diisocyanate (HDI)-induced lung impairment: studies in isolated perfused and ventilated guinea pig lungs.

Isolated, perfused and ventilated guinea pig lungs were exposed to hexamethylene diisocyanate via the air passages. Two air concentrations of hexamethylene diisocyanate were studied (3.5 and 11 mg/m3). There was a statistically significant (P < 0.05-0.001) dose-related reduction in both conductance and compliance but no effects were noted on the pulmonary circulation. With 3.5 mg/m3 hexamethylene diisocyanate the conductance capacity was reduced with 38% and compliance with 30% after 60 min. exposure. Eleven mg/m3 hexamethylene diisocyanate reduced the conductance and compliance capacity with 86 and 69%, respectively, on an average. The reduction in lung function (with 11 mg/m3) was abolished when 100 microM diclofenac, a cyclooxygenase inhibitor, was added to the perfusate (P < 0.01). The thromboxane A2 antagonist L-670, 596 (20 microM) exerted a partial protective effect. The capacity of conductance and compliance decreased with 46 and 32%, respectively, on an average, after preperfusion with L-670, 596 and a following exposure of 11 mg/m3 hexamethylene diisocyanate for 60 min. Statistically significant protection (P < 0.05) was obtained on compliance and the P-value was < 0.1 for conductance. Thus, these data indicate that hexamethylene diisocyanate-induced bronchoconstriction is mediated via arachidonic acid release and thromboxane formation, in isolated, perfused and ventilated guinea pig lungs.

Animals↗