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Effect of S-adenosyl-L-methionine and dilinoleoylphosphatidylcholine on liver lipid composition and ethanol hepatotoxicity in isolated perfused rat liver.

We investigated whether S-adenosyl-L-methionine (SAMe), dilinoleoylphosphatidylcholine (DLPC), or SAMe + DLPC influence liver lipid composition as well as acute ethanol hepatotoxicity in the isolated perfused rat liver (IPRL). SAMe (25 mg/kg intramuscularly three times a day) was administered for five consecutive days, while DLPC was administered intraperitoneally for five days. The liver was then isolated, perfused with taurocholate to stabilize bile secretion, and exposed to 0.5% ethanol for 70 min. SAMe, without changing total phospholipid (PL) content, induced an increase in the phosphatidylcholine/phosphatidylethanolamine (PC/PE) molar ratio in both liver homogenate and microsomes and a significant enrichment of 16:0-20:4 and 18:0-20:4 PC molecular species. DLPC induced a significant enrichment of PL in liver homogenate and microsomes due to a contemporary increase in PC and PE. The PC enrichment specifically involved 16:0-20:4 and 18:0-20:4 PC molecular species besides the HPLC peak containing the administered 18:2-18:2 PC species. DLPC + SAMe increased the concentration of PC in liver homogenate and microsomes due to a specific enrichment of 16:0-22:6, 16:0-20:4, and 18:0-20:4 PC molecular species, and the HPLC peak containing the administered 18:2-18:2 PC species. Ethanol acute exposure in the control IPRLs for 70 min induced a depletion of cholesterol in both liver homogenate and microsomes without significant changes in the composition of PL classes and PC molecular species. SAMe, DLPC, or SAMe + DLPC counteracted the cholesterol depletion induced by ethanol, indicating that phospholipid changes promoted by these treatments all induce a major resistance of liver membranes to the effect of ethanol. Ethanol administration in control IPRLs induced a fivefold increase of AST and LDH release in the perfusate, depletion of glutathione in homogenates and mitochondria, decreased oxygen liver consumption, and inhibition of bile flow. These effects of ethanol were significantly antagonized by SAMe. In contrast, DLPC alone only minimally attenuated enzyme release in the perfusate and the inhibitory effect of ethanol on bile flow, but it failed to influence the depletion of total and mitochondrial glutathione or the depressed oxygen consumption induced by ethanol. DLPC, administered together with SAMe, added nothing to the protective effect of SAMe against ethanol hepatotoxicity and cholestasis. In conclusion, this study demonstrates that both SAMe and DLPC induced marked modifications in the lipid composition of liver membranes with a similar enrichment of polyunsaturated PC molecular species. Only SAMe, however, significantly protected against the hepatotoxic and cholestatic effect of acute ethanol administration, an effect associated with maintained normal glutathione mitochondrial levels and oxygen liver consumption. This indicates that the protective effect of SAMe against ethanol toxicity is linked to multiple mechanisms, the maintenance of glutathione levels probably being one of the most important.

Animals↗

Isolated perfused salamander proximal tubule: methods, electrophysiology, and transport.

Techniques are presented for the isolation and perfusion of renal proximal tubules from the neotenic salamander Ambystoma tigrinum. Methods are described for a determination of normal values for fluid transport and electrophysiological parameters. Stable cellular microelectrode recordings are reported that constitute the first intracellular measurements in an isolated perfused tubule preparation. With identical solutions in lumen and bath, fluid reabsorption averaged 0.28 nl.min-1.mm-1, transepithelial potential difference averaged -4.5 mV, transepithelial resistance was 52.1 omega.cm2, and the transepithelial chloride-to-sodium transference number ratio was 3.4. The basolateral cell membrane potential difference averaged -59.6 mV, and the ratio of apical-to-basolateral cell membrane resistance was between 3.9 and 5. Viability of the isolated perfused salamander proximal tubule preparation is demonstrated by a detailed comparison of the present data with results of in vivo micropuncture experiments on both Necturus and intact Ambystoma kidneys. In addition to being an advantageous preparation for long-term intracellular recordings, the Ambystoma kidney is unique in that proximal tubules can be studied both in isolation and by conventional micropuncture.

Ambystoma↗

Comparison of sulfobromophthalein (BSP) and sulfobromophthalein glutathione (BSP-GSH) disposition under conditions of altered liver function and in the isolated perfused rat liver.

Disposition of sulfobromophthalein (BSP) and sulfobromophthalein glutathione (BSP-GSH) was compared in control, phenobarbital, or alpha-naphthylisothiocyanate-(ANIT)-treated rats, and in the isolated perfused rat liver preparation. After dye administration, BSP-GSH was found to have a more rapid early plasma disappearance rate, a more rapid appearance in the liver, and a greater rate of biliary excretion both in vivo and in the isolated perfused liver, than that of BSP. In considering these observations, it is concluded that hepatic uptake as well as biliary excretion of BSP-GSH is faster than that of BSP. Comparing BSP and phenobarbital, augmentation or reduction in plasma dye concentration, mean plasma half-life (2 to 30 minutes), hepatic dye content, and bile dye concentration, were of the same order of magnitude for both dyes. However, with dye infusion of 3.6 mumoles per kilogram per minute, phenobarbital significantly enhanced the rate of biliary excretion of BSP but not BSP-GSH and ANIT treatment had a greater inhibitory effect on biliary excretion of BSP-GSH than BSP.

1-Naphthylisothiocyanate↗

Absorption of 14C-clanobutin-Na isolated perfused intestinal segments in vitro of rats.

1. The absorption of 14C-labelled 4-[4-chloro-N-(4-methoxyphenyl)-benzamido]-butyric acid (clanobutin) was investigated on isolated perfused jejunal segments of rats in vitro according to the method of Fisher and Parsons and using everted (Wilson and Wiseman) and non-everted sac preparations. 2. Transfer to and content of the mucosal tissue of 14C-clanobutin in isolated perfused jejunal segments is proportional to the concentration administered on the mucosal side in the range of 1-100 mumol/l. 3. The concentration of 14C-clanobutin in the absorbate is 1.5 times higher than in the perfusion fluid. As compared on the basis nmol/ml perfusion fluid versus nmol/g wet weight the concentration of 14C-clanobutin in the tissue is twice that in the perfusion fluid. 4. No detectable metabolic alteration of 14C-clanobutin could be demonstrated during the passage across the jejunal epithelium. 5. The transfer of 14C-clanobutin in everted sac preparations from the mucosal to the serosal side (M leads to S) is about 3.7 times higher than in the reverse direction (S leads to M). 6. In the intestinal tissue the concentration of 14C-clanobutin is 1.7 times higher than that in the incubation medium; this calculation was made on the basis nmol/ml fluid versus nmol/g tissue wet weight. 7. When having administered 14C-clanobutin on both sides, on the serosal side the 14C-clanobutin concentration increases slightly whereas on the mucosal side due to uptake into the intestinal a slight decrease of the 14C-clanobutin concentration was observed.

Animals↗

Studies on the effect of tobacco smoke on the biotransformation of vasoactive substances in the isolated perfused rabbit lung. I. Prostaglandin F2alpha.

Cigarette smoke administration was previously found to have a pronounced inhibitory effect on metabolism of nicotine and benzo[a]pyrene in the isolated perfused rabbit lung. These observations suggest the possibility of tobacco smoke inhibition of biotransformations associated with non-ventilatory pulmonary functions such as metabolic clearance of endogenous vasoactive substances. However, studies of the effect of smoke on uptake and metabolism of PGF2alpha in isolated perfused rabbit lungs provide no evidence of inhibition of these processes.

Animals↗

Hypoxic damage generates reactive oxygen species in isolated perfused rat liver.

The aim of the present study was to investigate the possible role of reactive oxygen species in the pathogenesis of hypoxic damage in isolated perfused rat liver. One hour of hypoxia caused severe cell damage (lactate dehydrogenase release of greater than 12,000 mU/min/g liver wt) and total irreversible cholestasis which was accompanied by a loss of cellular ATP and a marked decrease in lactate efflux. Tissue glutathione disulfide (GSSG) content and GSSG efflux as a measure of hepatic reactive oxygen formation was less than 1% of total glutathione before and during hypoxia. Upon reoxygenation, however, hepatic GSSG content increased sharply to about twice the control values and GSSG efflux increased several-fold to around 3-4 nmol GSH-equivalents/min/g. The release of lactate dehydrogenase decreased upon reoxygenation and tissue ATP content recovered partially. When livers were reoxygenated at an earlier time interval than 1 hr of hypoxia, i.e., before the onset of damage, no enhanced GSSG formation was observed. The results demonstrate that hypoxic damage is a prerequisite to reactive oxygen formation during the subsequent reoxygenation period. Thus, reactive oxygen species appear unlikely to play a crucial role in the pathogenesis of hypoxic liver damage in the hemoglobin-free, isolated perfused liver model.

Adenosine Triphosphate↗

Myocardial stretch induced by increased left ventricular diastolic pressure preconditions isolated perfused hearts of normotensive and spontaneously hypertensive rats.

OBJECTIVE: The aim of our study was to determine whether myocardial stretch (non-ischemic stress) could precondition isolated perfused hearts of both normotensive Wister-Kyoto (WKY) rats and spontaneously hypertensive rats (SHR). METHODS: The perfused hearts in Langendorff mode were subjected to 30 min of global no-flow ischemia followed by 30 min of reperfusion. Left ventricular developed pressure (LVDP) and end-diastolic pressure (LVEDP) were measured. In the control group, LVEDP was set at 10 mmHg. In the stretch group, LVEDP was increased to 30 or 60 mmHg for 5 min before 30 min of ischemia. In the ischemic preconditioning group, the hearts were exposed to two cycles of a 5-min period of ischemia before 30 min of ischemia. Myocardial lactate contents were measured at the baseline and at the end of the 60 mmHg stretch. RESULTS: Hemodynamic parameters of LVDP and LVEDP at 30 min of reperfusion improved in the stretch group (LVEDP of 60 mmHg) and the ischemic preconditioning group. Coronary flow did not decrease during the stretch. Recovery of the coronary flow during reperfusion was better in the stretch and ischemic preconditioning groups. Postischemic contractile function was better in WKY rats than in SHR. Myocardial lactate contents at the end of 60 mmHg stretch were negligible. CONCLUSIONS: Myocardial stretch induced by increasing LVEDP preconditioned isolated perfused hearts of both WKY rats and SHR, via mechanisms not involving myocardial ischemia during stretch.

Animals↗

The synthesis of oxylate from hydroxypyruvate by isolated perfused rat liver. The mechanism of hyperoxaluria in L-glyceric aciduria.

Hydroxypyruvate and glycolate inhibited the oxidation of [U-14C]glyoxylate to [14C]oxalate in isolated perfused rat liver, but stimulated total oxalate and glycolate synthesis. [14C]Oxalate synthesis from [14C]glycine was similarly inhibited by hydroxypyruvate, but conversion of [14C1]glycolate to [14C]oxalate was increased three-fold. Pyruvate had no effect on the synthesis of [14C]-oxalate or total oxalate. The inhibition studies suggest that hydroxypyruvate is a precursor of glycolate and oxalate and that the conversion of glycolate to oxalate does not involve free glyoxylate as an intermediate. [14C35Hydroxypyruvate, but not [14C1]hydroxypyruvate, was oxidized to [14C]oxalate in isolated perfused rat liver. Isotope dilution studies indicate the major pathway involves the decarboxylation of hydroxypyruvate forming glycolaldehyde which is subsequently oxidized to oxalate via glycolate. The oxidation of serine which is subsequently oxidized to oxalate via glycolate. The oxidation of serine to oxalate appears to proceed predominantly via hydroxypyruvate rather than glycine or ethanolamine. The hyperoxaluria of L-glyceric aciduria, primary hyperoxaluria type II, is induced by the oxidation of the hydroxypyruvate, which accumulates because of the deficiency of D-glyceric dehydrogenase, to oxalate.

Acetaldehyde↗

Pharmacological observations of plasminogen activator release caused by vasoactive agents in isolated perfused pig ears.

Influences of vasoactive agents on plasminogen activator release (PA release) and perfusion pressure (PP) were studied in isolated perfused pig ears. The pig ear was perfused with oxygenated Tyrode's solution, pH 7.4, at 37 degrees C via the main artery and the perfusate from the veins was collected at 2-min intervals. The drug was injected into a rubber tube connected in the front of arterial cannula, and the fibrinolytic activity in the collected perfusate was measured by the fibrin plate method. Acetylcholine, bradykinin, and histamine enhanced PA release in a dose-dependent fashion (0.1-3.0 micrograms). Purified human thrombin also enhanced PA release in a dose-dependent fashion (1.5-12 U). In coronary vasodilators, dilazep caused a dose-dependent increase of PA release (10-100 micrograms) and dipyridamole caused a slight increase at a dose of 300 micrograms. However, nitroglycerin, papaverine, diltiazem, and trapidil did not exert any effects on PA release and neither did adenosine and ATP. Vasoconstricting agents, namely, epinephrine, norepinephrine, phenylephrine, and serotonin exerted hypertensive effects in a dose-dependent fashion (0.1-3.0 micrograms); however, they did not cause measurable increases of PA release. These results suggest that vasodilating substances may be essential for the enhancement of PA release from vascular bed.

Animals↗

Effect of altered tissue binding on the disposition of barbital in the isolated perfused rat liver: application of the axial dispersion model.

To examine the dependence of hepatic dispersion on tissue binding, the distribution kinetics of barbital under varying conditions of barbiturate perfusate concentrations was studied in the isolated perfused rat liver preparation (n = 5). The in situ liver was perfused in a single-pass mode with protein-free Krebs bicarbonate medium (15 mL/min). During steady-state infusion with various barbiturate concentrations (barbital, 1 g/L; butethal, 0.1, 1 g/L), a bolus containing [3H]water (cellular space marker) and [14C]barbital was injected into the portal vein. The recoveries of [3H]water and [14C]barbital were complete. The mean transit time and hence the volume of distribution for barbital in the absence of bulk barbiturate concentration (56 s and 1.24 mL/g) were about 2-fold higher than those for water (29 s and 0.58 mL/g), and they decreased progressively as the perfusate barbiturate concentration increased, indicating a decrease in tissue binding. However, the relative dispersion values (CV2H) of water (0.60) and barbital (0.66) were about the same magnitude and independent of the bulk concentration of barbiturate. The one-compartment dispersion model adequately described the data of barbital with a constant DN (dispersion number) value of 0.35. The results indicate that varying the tissue binding of barbital does not change the magnitude of DN; as such it offers a new experimental approach to examine the hepatic dispersion of solutes with a large distribution volume.

Animals↗

Renal vascular responses to high and low ionized calcium: influence of norepinephrine in the isolated perfused rat kidney.

OBJECTIVE AND DESIGN: The aim of this study was to examine the influence of norepinephrine (NE) on renal vascular responses to high (1.88 mmol/L) and low (0.56 mmol/L) perfusate-ionized calcium ([Ca2+]) in the isolated perfused kidney of the rat. High and low [Ca2+] encompassed the clinical concentration range in this multiexperiment, randomized trial. MATERIALS AND METHODS: Rats (n = 25), ranging in age from 3 to 4 months, were anesthetized and the ureter and renal artery were cannulated. The right kidney was perfused with oxygenated, warmed albumin (67 g/L) containing Krebs-Henseleit buffer and placed in a thermostated chamber without interruption of flow. In protocol A (n = 7), steady-state high [Ca2+] (1.88 mmol/L) and low [Ca2+] (0.56 mmol/L) were instituted in randomized order in each experiment under basal conditions. In protocol B (n = 9), the same interventions were instituted during constant rate NE infusion. Changes in renal flow were measured at constant perfusion pressure (110 mm Hg), and renal vascular resistance (RVR) was calculated. Renal function was assessed by clearance of [14C]inulin and by fractional excretion of sodium. With NE-induced preconstriction, the increase in RVR observed during high [Ca2+] was +17.8 +/- 1.8% of control, and the decrease in RVR observed during low [Ca2+] was -35.9 +/- 8.2% of control. Both values were greater by a factor of 2 than corresponding results obtained under basal conditions (7 +/- 2.1% vs. -13.5 +/- 4.1% of control, respectively, p < 0.05). Whereas the decrease in glomerular filtration rate with high [Ca2+] was not significantly influenced by NE pretreatment (-9 +/- 1.8% of control with high [Ca2+] in combination with NE vs. 4.1 +/- 0.7% of control under basal conditions), the increase in glomerular filtration rate with low [Ca2+] was significantly greater in the presence of NE (12 +/- 0.7 vs. 102 +/- 8.5% of control, p < 0.01). CONCLUSIONS: Whereas under basal conditions renal vascular effects of high and low [Ca2+] (varied within the clinical concentration range) are small, the changes recorded with the same interventions after NE pretreatment are increased by a factor of > 2. Hypercalcemia-induced renovascular constriction and decreased function are unfavorable, especially in patients who are at risk for renal dysfunction from other causes.

Animals↗

The pulmonary vascular response to propofol in the isolated perfused rat lung.

This study investigated the effect of propofol on the pulmonary vascular bed of the rat. Propofol (5 x 10(-6) to 5 x 10(-4) M) did not alter the basal perfusion pressure in isolated rat lungs perfused at a constant flow (0.03 mL g body wt-1 min-1) with Krebs-Henseleit solution. When perfusion pressure was elevated by raising the K+ concentration to 30 mM (depolarizing Krebs-Henseleit solution), propofol decreased it in a concentration-dependent manner. Indomethacin (3 x 10(-6) M) and NG-nitro-L-arginine methyl ester (10(-4) M) did not affect the response to propofol, which excluded the role of cyclo-oxygenase metabolites and nitric oxide, respectively. The ATP-sensitive K+ (K+ATP) channel blocker glibenclamide (3 x 10(-6) and 10(-5) M) inhibited the vasodilator effect of propofol. When lungs were perfused with Ca(2+)-free depolarizing Krebs-Henseleit solution, 0.1-2.5 mM Ca+2 produced a concentration-dependent pressor response. Propofol (5 x 10(-5) M) attenuated the vasopressor response to Ca2+ significantly. In conclusion, the activation of K+ATP channels is probably the major mechanism of the vasodilator effect of propofol, at clinically relevant concentrations, in the rat lung. The Ca2+ antagonistic property of propofol is evident only at higher concentrations.

Anesthetics, Intravenous↗

Decreased glycolytic flux rate in the isolated perfused rat brain after pretreatment with 6-aminonicotinamide.

Cerebral energy metabolism was studied in the isolated perfused rat brain after 6-aminonicotinamide (6-AN; 35 mg/kg i.p.) administered to the intact animals 7 hrs before perfusion was started. The metabolic alterations in the isolated rat brains were such as reported for rat and mouse brain in vivo: Inhibition of 6-phosphogluconate dehydrogenase was followed by an accumulation of 6-phosphogluconate, leading to a decreased activity of glucosephosphate isomerse. This was reflected by increased levels of glucose and glucose 6-phosphate and decreased levels of fructose 6-phosphate, pyruvate and lactate. Since the concentration of lactate in the perfusate of the isolated brain was also lowered, 6-AN must have reduced the glycolytic flux rate.

6-Aminonicotinamide↗

Contributions of liver perfusion flow rate and enzyme inhibition to altered verapamil clearance with halothane: a study in the isolated perfused rat liver.

Verapamil clearance is reduced during halothane administration. This study evaluated relative contributions of reduced hepatic flow rate and hepatic metabolizing enzyme inhibition by halothane as a cause of reduced verapamil clearance. An isolated perfused rat liver model was utilized in which flow rate could be fixed during halothane administration. Perfusions were performed on five to six livers under each of the following conditions: (a) control--40 mL/min flow rate with no anesthetic exposure; (b) 1.5% halothane--40 mL/min; (c) 2.25% halothane--40 mL/min; (d) reduced flow--20 mL/min with no anesthetic exposure; and (e) reduced flow with 1.5% halothane--20 mL/min. Halothane caused dose-dependent decreases in both total hepatic and intrinsic clearance rates (P less than 0.05). With no anesthetic exposure, a flow reduction of 50% (20 mL/min) also gave a large reduction (P less than 0.05) in hepatic clearance of verapamil compared with the control condition (40 mL/min). The addition of 1.5% halothane to the reduced flow condition was not associated with further reduction in hepatic clearance rate. Results of this study suggest that although both reduced hepatic perfusion and hepatic enzymatic inhibition by halothane administration are associated with decreased verapamil clearance, a greater proportion of this decrease appears to be due to reductions in hepatic flow. The present results may apply to other drugs used in anesthesia that have high hepatic extraction ratios; thus, clearance of these drugs may be more dependent on hepatic blood flow than on hepatic enzyme activity.

Animals↗

The effect of endotoxin on sympathetic responses in the rat isolated perfused mesenteric bed; involvement of nitric oxide and cyclo-oxygenase products.

1. The effects of endotoxin on the vasoconstrictor responses to sympathetic nerve stimulation (SNS) were investigated in the rat isolated perfused mesenteric bed. 2. Rats received either saline (0.1 ml h-1) or endotoxin (2.5 mg kg-1 h-1) intravenously for 4 h; the mesenteric beds were then isolated, perfused with Krebs and prepared for SNS (50 V, 3 ms, 7-40 Hz). 3. SNS caused a frequency-dependent vasoconstrictor response which was abolished by either tetrodotoxin (10(-7) M), prazosin (2.4 x 10(-7) M) or guanethidine (2.4 x 10(-7) M). 4. In mesenteric vascular beds removed from rats infused with endotoxin, there were markedly impaired vasoconstrictor responses to SNS, although responses to noradrenaline were not modified. 5. Removal of the endothelium with distilled water prevented endotoxin-induced impairment of vasoconstrictor responses to SNS, without modifying these responses in preparations from control rats. 6. Pretreatment with dexamethasone (3 mg kg-1 i.p. 1h before commencing endotoxin or saline infusions) did not modify responses to SNS in control rats but prevented the effects of endotoxin. 7. Both L-NAME (10(-3) M) and indomethacin (10(-5) M) restored responses to SNS in preparations from endotoxin-treated rats without modifying these responses in control preparations. However, co-administration of L-NAME and indomethacin markedly augmented responses in both control and endotoxin-treated preparations. 8. The effects of L-NAME were reversed by addition of L-arginine (10(-3) M). 9. The data suggest that endotoxin impairs the release of noradrenaline and that this effect is secondary to increased production of nitric oxide and prostanoids, possibly by the endothelium.

Animals↗

Localization of c-myc protooncogene expression in the rat heart in vivo and in the isolated, perfused heart following treatment with norepinephrine.

We have investigated the expression of the protooncogene c-myc in rat hearts following exposure to norepinephrine, both in vivo and in isolated perfused preparations. Both chronic and acute norepinephrine treatment produced a rapid, transient elevation of c-myc mRNA in adult rat hearts, but chronic infusion produced a second, larger increase. This expression profile was characteristic for c-myc since it was not found for four other protooncogenes. In the isolated, perfused heart, addition of norepinephrine to the perfusion buffer and elevation of perfusion pressure separately increase c-myc mRNA suggesting both direct hormonal and hemodynamic factors might be important in vivo. Immunocytochemistry showed that Myc protein accumulated predominantly in the nuclei of non-myocyte cells following norepinephrine treatment indicating that expression at the mRNA level culminated in protein synthesis. These findings suggest that the c-myc expression observed in the hypertrophying adult heart following exposure to norepinephrine may be associated with proliferating cells like fibroblasts rather than cardiomyocytes.

Animals↗