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Enhanced endothelial tissue factor but normal thrombomodulin in endotoxin-treated rabbits.

Exposure of cultured endothelial cells to bacterial endotoxin induces an enhancement of cell procoagulant activity (PCA) and a simultaneous reduction of thrombomodulin activity (TM). We evaluated the effect of endotoxin on the expression of both endothelial PCA and TM in vivo, in rabbits. Animals were given a single i.v. injection of endotoxin (E. coli 0111:B4 LPS, W, 10-200 micrograms/kg); the thoracic aorta was harvested after 2 or 4 hours and placed in an ad hoc device to expose the endothelial surface only. Endotoxin treatment resulted in a dose-dependent increase of endothelial PCA (p < 0.001, at 100 micrograms/kg or more), which was totally dependent on factor VII and thus identified as tissue factor. In contrast, endothelial TM activity, as measured by the rate of thrombin-induced protein C activation, was similar in control and endotoxemic rabbits, even when the animals were given two injections (50 micrograms/kg, 24 h apart), or a continuous infusion (40 micrograms/kg/h during 4 hours) of endotoxin. To explore the effect of endotoxin on TM activity at the microcirculation level, we measured the extent of protein C activation in vivo, induced by a continuous infusion of low doses of thrombin (1 NIH U/kg/min for 60 min). Again, endotoxin administration was not associated with significant changes in TM-dependent protein C activation, as assessed by the anticoagulant activity present in a barium citrate plasma eluate obtained at the end of thrombin infusion. Although reduction of TM during persistent endotoxemia cannot be definitively excluded, our data support a major role of endothelial PCA in LPS-induced coagulative changes.

Animals↗

Antithrombotic effect of recombinant human soluble thrombomodulin on endotoxin-induced disseminated intravascular coagulation in rats.

Thrombomodulin (TM) is an endothelial cell membrane glycoprotein which neutralizes thrombin procoagulant activity and accelerates the thrombin-catalyzed activation of protein C. We expressed recombinant human soluble TM (rhs-TM) in Chinese hamster ovary cells and compared the effects of rhs-TM and heparin on endotoxin-induced experimental disseminated intravascular coagulation (DIC) in rats. Experimental DIC was induced by a continuous intravenous infusion of endotoxin for four hours. rhs-TM or heparin was infused simultaneously with endotoxin. Treatment with rhs-TM significantly reversed the endotoxin-induced changes in significantly reversed the endotoxin-induced changes in following parameters: platelet count, fibrinogen level and fibrinogen and fibrin degradation products. Furthermore, glomerular fibrin deposits elevated by endotoxin treatment were reduced by the rhs-TM administration. Heparin showed the similar effects to rhs-TM. Activated partial thromboplastin time (APTT) in rats receiving rhs-TM were slightly longer than APTT in endotoxin-treated rats, but rats receiving heparin had much more prolonged APTT. From these results, we concluded that rhs-TM may be useful for the clinical treatment of DIC while having only minor adverse effects on APTT.

Animals↗

Effects of ONO-6240, a platelet-activating factor antagonist, on endotoxin shock in unanesthetized sheep.

To determine the role of platelet-activating factor (PAF) in endotoxin shock, we studied the effects of ONO-6240, a PAF antagonist, on endotoxin shock in unanesthetized sheep. Changes in hemodynamics, lung lymph balance, leukocyte and platelet counts, and arterial blood gas tensions were measured in four groups; endotoxin alone; endotoxin plus ONO-6240; ONO-6240 alone; vehicle control. Pretreatment with ONO-6240 in sheep given endotoxin significantly prevented the decreases in systemic arterial pressure, left atrial pressure and cardiac output observed in sheep given endotoxin alone. A partial effect on diminishing the magnitude of peripheral leukopenia was also noted. However, pretreatment with ONO-6240 had little effect on pulmonary hypertension and lung lymph balance. We conclude that endotoxin causes two different effects: vascular collapse and direct lung injury; and that PAF is involved only in the circulatory manifestations.

Animals↗

Role of platelet-activating factor (PAF) and prostaglandins in colonic motor and secretory disturbances induced by Escherichia coli endotoxin in conscious rats.

The involvement of prostaglandins (PGs) and platelet-activating factor (PAF) in the effects of Escherichia coli endotoxin on colonic motility, transit time, and fecal dry matter (DM) in rats were evaluated in this study. Myoelectric activity was investigated in a first group of male Wistar rats chronically implanted with intraparietal nichrome electrodes in the proximal colon. A second group of animals was chronically fitted with an intracolonic catheter (+2 cm from the cecocolonic junction); colonic transit time was then calculated as the Mean Retention Time (MRT) of 51Cr chromate sodium (1 microCi 0.1ml) administered through the intracolonic catheter and determined in the faeces collected at 1 hour interval on a conveyor belt. Fecal DM was measured after 24h dessication at 103 degrees C. E. coli endotoxin (50 micrograms/kg ip) increased the frequency of colonic contractions and decreased both colonic MRT and fecal DM. PAF (25 micrograms/kg ip) also decreased colonic MRT and fecal DM, and increased the frequency of colonic contractions. BN 50730 (10 mg/kg ip), a specific PAF receptor antagonist, blocked the effects of PAF and reduced those of endotoxin on colonic motility and transit time, but did not affect either the endotoxin- or the PAF-induced fecal DM decrease. Indomethacin (10 mg/kg ip) and SC 19220 (5 mg/kg ip) reduced the increased frequency of colonic contractions induced by endotoxin and PAF, and antagonized their effects on MRT and fecal DM. These results indicate that 1) E. coli endotoxin increases both colonic motility and transit, and decreases fecal DM, 2) PAF displays similar effects, 3) the action of endotoxin on colonic motility and transit is partly mediated by PAF and PGs while its secretory effects only depend upon PGs generation.

Animals↗

Endotoxin induced intraplacental thrombotic tendency and decreased vascular ADPase in the pregnant rat.

The mechanism underlying increased sensitivity for endotoxin in pregnancy, as reflected by intravascular thrombus formation in various organs i.e. the placenta, is unknown. We studied the influence of endotoxin infusion at day 14 upon the vascular antithrombotic ADPase present in the labyrinth of the rat placenta just before term (day 21). Pregnant Wistar rats were infused with either endotoxin (1 microgram/kg body weight) or saline through permanent vena jugularis catheters and their placenta and kidneys were examined at day 21 using light electron microscopy and enzyme cytochemistry at the ultrastructural level. Also, placenta perfusion ex vivo was done using platelets and ADP to test the thrombotic tendency of placental vessels in endotoxin treated and control rats. The results show in both maternal as well as the fetal vessels of the placental labyrinth vascular occlusions and decreased membrane ADPase activity exclusively in endotoxin treated and not in saline infused pregnant animals. Alternate placenta and kidney perfusion ex vivo resulted in intraplacental and intraglomerular platelet aggregation again exclusively in endotoxin-treated rats. It is concluded that vascular ADPase may be affected by endotoxin due to the pregnant condition, resulting in a functional defect in antithrombotic potention which may promote intravascular formation of microthrombi in situ.

Animals↗

Endotoxin depression of hepatic mixed function oxidase system in C3H/HeJ and C3H/HeN mice.

The effect of endotoxin to depress the hepatic drug-metabolizing enzyme activity has been studied in the C3H/HeJ and C3H/HeN strains of mice. The C3H/HeJ mouse strain is generally considered to be unresponsive to the biological effects of endotoxin. However, injection of these mice with 0.5 mg/kg body weight of E.coli endotoxin (Westphal extracted) produced a decrease in the rate of N-demethylation of ethylmorphine and in the levels of cytochrome P-450 and cytochrome b5 comparable to that observed in the endotoxin-sensitive C3H/HeJ mouse strain. Although the mechanism of endotoxin action to decrease hepatic microsomal drug-metabolizing activity is presently unknown, the results suggest that: 1) the C3H/HeJ mouse stain is responsive to this endotoxin effect, and 2)that cellular constituents other than B-cells or macrophages are probably involved in eliciting the response, since these cells of the C3H/HeJ mouse are unresponsive to endotoxin.

Animals↗

Effect of adrenoceptor blockade on hemorrhagic necrosis of meth A sarcomata induced by endotoxin or tumor necrosis serum.

An intravenous injection of endotoxin into BALB/c mice bearing subcutaneous Meth A sarcomata caused hemorrhagic necrosis and reduced growth of the tumors. In a number of instances this was followed by regression. alpha-Adrenergic blockade with phentolamine prior to endotoxin did not influence tumor growth, but tended to reduce the incidence of regression when compared to mice merely treated with endotoxin. The frequency of hemorrhagic necrosis was not changed, although the extent of necrosis was somewhat reduced. The alpha-adrenoceptor blocking agent phenoxybenzamine nullified the growth retardation induced by endotoxin and reduced the frequency of regression. Moreover both incidence and extent of necrosis were diminished. Beta-adrenoceptor blockade with propranolol seems to potentiate the effect of endotoxin on tumor growth in the highest dose, but had no substantial effect on the necrotizing activities of endotoxin. Both alpha-blocking agents impaired induction of hemorrhagic necrosis and nullified tumor growth inhibition by tumor necrosis serum (TNS). beta-Adrenoceptor blockade decreased only the incidence of necrosis induced by TNS. Regressing tumors had considerably more hemorrhagic necrosis irrespective of pretreatment, excepted phenoxybenzamine. A single injection of the latter agent caused a dose-dependent stimulation of tumor growth, while the other agents exerted no effect. It is suggested that both normal and endotoxin-modified tumor growth are under alpha-adrenergic control and that induction of hemorrhagic necrosis is possibly mediated by release of adrenal catecholamines.

Animals↗

Investigation of adrenergic and prostaglandin influences in the endotoxin alteration of hepatic heme oxygenase, microsomal mixed-function oxidase, and glucocorticoid-induced tryptophan oxygenase activities.

The possible role for adrenergic influences or prostaglandins in the effects of endotoxin to inhibit the glucocorticoid induction of hepatic tryptophan oxygenase (TO) activity, to decrease the hepatic microsomal cytochrome P--450-dependent drug-metabolizing activity, and to induce heme oxygenase activity was examined. Administration of the alpha-adrenergic locking agents phenoxybenzamine or phentolamine attenuated the inhibitory effect of the bacterial lipopolysaccharide on the induction of TO activity by dexamethasone. Injection of a beta-adrenergic blocker, propranolol, or of indomethacin, an inhibitor of prostaglandin biosynthesis, accentuated the effect of endotoxin to inhibit TO induction. Neither phenoxybenzamine, propranolol, nor indomethacin altered the effect of endotoxin to decrease aniline hydroxylase activity, ethylmorphine N-demethylase activity, or the levels of cytochrome P--450. Also, dexamethasone administration did not significantly protect against the effects of endotoxin on the hepatic microsomal drug metabolizing enzyme system, and none of the pharmacological agents diminished the effects of endotoxin to induce hepatic heme oxygenase activity. Endotoxin administration was also shown to diminish, but not prevent, the induction of cytochrome P--450 and ethylmorphine N-demethylase activity produced by phenobarbital. The results indicate that alpha-adrenergic mechanisms are involved in the endotoxic inhibition of the glucocorticoid induction of TO activity and suggest that neither adrenergic influences nor prostaglandins play a significant role in the effect of endotoxin to decrease hepatic mixed-function oxidase activity.

Adrenergic alpha-Antagonists↗

Primed pentose cycle activity supports production and elimination of superoxide anion in Kupffer cells from rats treated with endotoxin in vivo.

Glucose use and pentose cycle activity were determined in freshly isolated rat Kupffer cells 3 h after an i.v. injection of Escherichia coli endotoxin (0.1 mg/kg body weight), by using [1-14C], [6-14C] and [2-3H]glucose. Endotoxin treatment in vivo caused a 5-fold increase in the basal glucose uptake in Kupffer cells. Pentose cycle activity was elevated from 8.7 to 13.6 nmol/h per 10(7) cells after endotoxin. In vitro treatment of the cells from saline- and endotoxin-treated animals with phorbol ester (10(-6) M) increased pentose cycle activity 2-fold and 8-fold, respectively. Phorbol ester caused a 50% increase in glucose uptake in both groups. t-Butyl hydroperoxide (0.5 mM) caused a similar increase in pentose cycle activity as phorbol ester. Glucose oxidation in the Krebs cycle was also doubled after endotoxin. KC from endotoxin-treated animals produced O2- spontaneously, and were primed to produce additional large amounts of O2- upon phorbol ester treatment. Addition of t-butyl hydroperoxide inhibited O2- production by Kupffer cells. Depletion of glutathione by N-ethylmaleimide (0.1 mM), or inhibition of NADPH oxidase by diphenyliodonium (0.1 mM) inhibited both the pentose cycle activity and the O2- production. Increasing the concentration of exogenous glucose in the cell medium elevated the glycolytic rate, while pentose cycle flux was not affected either under basal conditions or following subsequent challenges by phorbol ester or t-butyl hydroperoxide. Our data suggest that the endotoxin-induced elevated glucose use in Kupffer cells is accompanied by a primed state of the pentose cycle. This condition supports superoxide and macromolecule synthesis and could also represent a potentiated protective mechanism against oxidative cellular injury during bacterial infections.

Animals↗

A comparative evaluation of particulate and soluble glucan in an endotoxin model.

Particulate glucan (P) but not soluble glucan (F) has been shown to sensitize rats to endotoxins. This phenomenon is believed to be mediated by the reticuloendothelial system (RES). The effect of glucan-P and -F on the RES, and the response of glucan-treated rats to nonlethal doses of endotoxin were investigated. Rats were injected for 5 days with 10 mg/kg of glucan-P, -F or saline. Three days later rats were either (1) injected with colloidal carbon for clearance studies, (2) sacrificed for organ histology and determination of serum glucose, plasma thromboxane (Tx) B2, and plasma 6-keto-prostaglandin (PG) F1 alpha concentrations, or (3) challenged with a nonlethal dose of endotoxin. The latter were further subdivided into groups for either 30-day survival or for sacrifice at 30 min or 4 h post-endotoxin infusion to obtain blood samples for glucose, TxB2, and 6-keto-PGE1 alpha determinations. Glucan-P induced hepatosplenomegaly and granulomatous changes within the liver and spleen. The carbon clearance halftime was markedly decreased in these animals. In glucan-P-treated rats challenged with endotoxin, elevated concentrations of both plasma prostanoids were observed as well as alterations in serum glucose levels. These changes were less pronounced in glucan-F- or saline- treated rats. Following endotoxin challenge, only 40% of glucan-P-treated rats survived 30 days whereas 100% of both the glucan-F and saline-treated rats survived. We conclude that glucan-P, in contrast to glucan-F, significantly heightens RES function and that this effect likely accounts for the endotoxin sensitivity.

Animals↗

Hepatic arachidonic acid metabolism following in vitro perfusion and endotoxin administration.

Bacterial endotoxins have been shown to stimulate prostanoid production in vivo. This study compares the effect of endotoxin administered in vivo and in vitro on hepatic 14C arachidonic acid (AA) metabolism. Livers were perfused with either buffer, buffer containing endotoxin, or buffer containing endotoxin plus meclofenamate. Liver slices were then incubated with 14C AA, extracted, and chromatographed. In buffer perfused livers, 72 +/- 8 percent of the 14C label post incubation was associated with arachidonic acid. This was in contrast to nonperfused, fresh liver slices where 98 +/- 1 percent of the 14C label remained as arachidonic acid. Slices taken from perfused livers which received endotoxin in vitro had 72 +/- 9% of the label associated with AA. Meclofenamate treatment increased this percentage to 97 +/- 1%. Fresh liver slices incubated with endotoxin in vitro for 10 minutes demonstrated no significant increase in AA metabolism when compared to fresh slices. These data demonstrate that fresh liver slices metabolize very little exogenous AA. In contrast, the perfusion procedure alone is a significant stimulus for enhancing arachidonic acid metabolism. Subjecting liver tissue to endotoxin in vitro or in vivo for a one hour period is not a significant stimulus for enhanced AA metabolism.

Animals↗

Urinary DNA as an indicator of nephrotoxicity caused by endotoxin and gentamicin in mice.

Extracellular DNA is a non-specific marker of cell death. Urinary DNA, as an indicator of nephrotoxicity, was investigated in endotoxin/gentamicin-injected mice. In mice injected both with endotoxin (15 mg/kg) and gentamicin (80 mg/kg), urinary DNA concentration was markedly increased for several days; in contrast, there was at most a slight and transient excretion of DNA in mice receiving gentamicin or endotoxin alone. Plasma DNA concentrations increased for 24-48 h in endotoxin-injected mice, then decreased rapidly. Mice injected with gentamicin and endotoxin showed widespread and severe kidney lesions with tubular cell necrosis and intraluminal casts while mice receiving gentamicin or endotoxin alone showed at most few and mild lesions. In mice receiving lower doses of endotoxin (5-10 mg/kg) and 80 mg/kg gentamicin, urinary DNA peaked at 72-96 h, at a time when plasma DNA had returned to normal concentrations. Maximal urinary DNA concentrations depended upon endotoxin dose. In conclusion, urinary DNA is a marker of definite cell death occurring in the urinary tract and could represent a new indicator of nephrotoxicity in clinical and experimental situations.

Animals↗

Blood rheology in the endotoxin-administered rabbits.

The effects of endotoxin on blood rheology were studied in rabbits. Non-treated six rabbits (Group A) were used to obtain control data. Thirteen rabbits who were administered 0.1 mg of endotoxin three times at intervals of 3 days were divided into two groups; seven rabbits (Group B) were injected with 1 ml saline solution as the vehicle for endotoxin at 7 days after the final administration of endotoxin, while the remaining six rabbits (Group C) were administered endotoxin at 0.2 mg/kg on the same day. Blood was sampled from the femoral artery 120 min after the final treatment. Blood viscosity was measured at a shear rate of 150 s-1 at 37 degrees C using a cone-plate viscometer. The passage time for a 5% red blood cell suspension and that for plasma were determined by filtration; the former represents erythrocyte deformability while the latter is related to plasma fluidity. The hematocrit, whole blood viscosity and erythrocyte deformability did not show significant differences among these three groups. The ratio of hematocrit to whole blood viscosity is considered to be an index of oxygen delivery from the hemorheologic point. This index did not show significant difference either. A good correlation was observed between whole blood viscosity and hematocrit in Group A, but not in the endotoxin-treated groups. The plasma fluidity was lower in Groups B and C than in Group A. These data indicate that plasma fluidity and the hematocrit-viscosity relationship are affected in endotoxin-treated rabbits, although blood viscosity, erythrocyte deformability and oxygen delivery hardly changed.

Animals↗

The effect of hydrophobic interaction on endotoxin adsorption by polymeric affinity matrix.

Endotoxin, a major pyrogen of concern to the biological industry, is a lipopolysaccharide containing a highly hydrophobic region, lipid A, in its structure. The effect of hydrophobic interaction on endotoxin adsorption from an aqueous solution was studied by covalently bonding aminoalkyl groups with varying hydrocarbon lengths to a cellulose and acrylic composite matrix. The amount of endotoxin adsorbed on the matrix increased with the increasing length of alkyl groups, demonstrating the contribution of hydrophobic interaction between endotoxin and the solid matrix. Both the hydrophobic and the charge interaction prove to be effective for endotoxin adsorption, and a synergistic effect from the dual chemical forces is achievable under specified conditions. The effect of solvent, pH and salts on endotoxin adsorption provides further evidence for the importance of hydrophobic force as a means of removing endotoxin from aqueous solutions.

Adsorption↗

Endotoxin-induced appearance of immunoreactive interleukin-1 beta in ramified microglia in rat brain: a light and electron microscopic study.

Interleukin-1 plays an important role as mediator of endotoxin-induced responses in the brain such as fever, sleep, anorexia, behavioural and neuroendocrine changes. In the present study, interleukin-1 beta immunocytochemistry has been performed at the light and electron microscopic level to study the cellular and subcellular localization of interleukin-1 beta in the brains of rats given endotoxin or saline. Light microscopic analysis of rats killed 4, 8 or 24h after endotoxin (2.5 mg/kg) given intraperitoneally or intravenously revealed a region-specific localization of immunoreactive interleukin-1 beta in macrophages and microglial cells. After saline treatment, no induction of interleukin-1 beta immunoreactivity occurred in the brain. After administration of endotoxin, many interleukin-1 beta-positive cells were found in the meninges, choroid plexus, circumventricular organs, cerebral cortex and hypothalamus. The number of interleukin-1 beta-positive microglial cells reached a maximum 8 h after administration of endotoxin, irrespective of the route of administration. In general, more interleukin-1 beta-positive microglial cells were found after intravenous than after intraperitoneal administration of endotoxin. Interleukin-1 beta-positive microglial cells were often grouped in patches in the vicinity of blood vessels. At the surface of the cerebral cortex, in the meninges, intermediate cell forms between interleukin-1 beta-positive macrophages and microglial cells were found. interleukin-1 beta-positive perivascular microglia were localized at the brain side of the basal lamina. Immunoreactive interleukin-1 beta was found at the luminal side of the endothelial cells lining the venules. Furthermore, microglial cells that extended their processes into the ependymal layer of the third ventricle were observed. Results of the electron microscopic studies revealed immunoreactive interleukin-1 beta in many cells with the cellular characteristics of microglial cells, but also, in some cells, identified as astrocytes. In microglial cells, immunoreactive interleukin-1 beta was found in the cytoplasm but not in the endoplasmatic reticulum or Golgi apparatus. These results show that after peripheral administration of endotoxin, immunoreactive interleukin-1 beta is induced in macrophages in the meninges and in the choroid plexus, as well as in microglial cells in parenchyma. Interleukin-1 beta produced by these cells may serve as a signal for adjacent or more distant targets (neurons, endothelial cells, microglial cells) to play a role in the induction of non-specific symptoms of sickness.

Animals↗

Endotoxin levels in milk and plasma of mastitis-affected cows measured with a chromogenic limulus test.

A chromogenic limulus test ("Toxicolor") was applied to cow's milk and plasma after treatment with perchloric acid to remove interfering factors. The endotoxin levels in normal cow's milk and plasma were all less than 10 pg ml-1. In acute mastitis, the milk endotoxin level averaged (1.1 +/- 0.7) X 10(3) pg ml-1 in the cases where Gram-negative bacteria were isolated, while the plasma endotoxin concentration was normal. The endotoxin levels in the quarters infected with Gram-positive bacteria were all normal, both in milk and plasma. In gangrenous mastitis due to Gram-negative bacteria, the endotoxin concentration was very high in both milk [(9.3 +/- 5.3) X 10(6) pg ml-1] and plasma (85.2 +/- 68.2 pg ml-1). In similar cases due to Gram-positive bacteria, endotoxin levels were all normal, both in milk and plasma, resembling the acute mastitis due to Gram-positive bacteria. The test was considered suitable for the diagnosis of mastitis due to Gram-negative organisms and the levels of endotoxin detected would aid in assessing the prognosis.

Animals↗

Effect of antibiotics on endotoxin release from gram-negative bacteria.

Antibiotics may inhibit bacterial growth or may kill bacteria by inhibiting cell wall synthesis or protein synthesis. The amount of endotoxin released during antibiotic action has been found to be clinically important. Nine antibiotics, representing seven classes, were studied for the amounts of endotoxin released during their action on susceptible strains of Escherichia coli, Klebsiella pneumoniae, Enterobacter cloacae, and Pseudomonas aeruginosa. Staphylococcus aureus, which produces no endotoxin, was used as a control organism. Aztreonam induced the highest release of endotoxin, whereas other antibiotics such as imipenem and the quinolones induced the lowest release of endotoxin. Although the quantities of endotoxin released are not easily explained from the established mechanisms of antibiotic action, our findings may have implications for therapy of the acutely ill, septic patient in whom release of large quantities of endotoxin may be catastrophic.

Anti-Bacterial Agents↗

Tissue differences in antioxidant enzyme gene expression in response to endotoxin.

The effect of endotoxin on antioxidant gene expression and antioxidant enzyme activity in homogenates of the heart, liver, and kidney from Sprague-Dawley rats was compared by quantitation of m-RNA and enzyme activities. Alterations in the message level for Cu-Zn superoxide dismutase (SOD), Mn SOD, and catalase varied with the tissue type, length of exposure to endotoxin, and dose of endotoxin. In general, endotoxin treatment reduced Cu-Zn SOD expression in the heart and liver, but had no noticeable effect in the kidney. Mn SOD message levels were increased in the heart and kidney but decreased in the liver. Catalase expression was reduced in the kidney and increased marginally in the heart and liver. With regard to enzyme activity, endotoxin treatment reduced Cu-Zn SOD activity in the heart, liver, and kidney. Mn SOD activity showed little change in the heart, but increased in the liver and, to a lesser extent, in the kidney. Catalase activity showed little change in the heart and kidney but was decreased at 12 h in the liver. The differing responses of tissues to the oxidant stress of endotoxin exposure should be considered when evaluating the effect of endotoxin on antioxidant enzymes.

Animals↗