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Exercise training attenuates the myocardial dysfunction induced by endotoxin.

The purpose of this study was to determine whether exercise training protected against endotoxin-induced myocardial dysfunction. After a 12-wk treadmill training period, carotid catheters were implanted 24 h before saline or endotoxin administration into four groups of animals: trained saline-injected (TS), trained endotoxin-injected (TE), sedentary saline-injected (SS), and sedentary endotoxin-injected (SE). Heart rate and mean arterial pressure were monitored 4 h after in vivo endotoxin or saline injection. Mean arterial pressure decreased an average of 32 +/- 3 mmHg 1 h after endotoxin administration but was normal (109 +/- 6 mmHg) 2 h later. Plasma catecholamines, in vitro myocardial performance, and isolated myocyte adenosine 3',5'-cyclic monophosphate (cAMP) production in response to isoproterenol were assessed 4 h after endotoxin injection. Plasma catecholamine levels were 5- to 15-fold higher in SE compared with the other groups. These data suggest that myocardial protection may be related to the lowered catecholamine levels elicited in TE compared with SE in response to endotoxin administration. The product of cardiac output and peak systolic pressure, an index of cardiac work, was 24-32% greater in TS compared with SS. Cardiac work was decreased 32% in TE compared with a 45% decrease in SE. cAMP was reduced in myocytes from SE in response to isoproterenol (-28%) and to forskolin (-44%) but not in myocytes from TE, compared with TS and SS. The difference in cAMP accumulation suggests that training maintains the integrity of the beta-adrenergic receptor adenylate cyclase system, which can be depressed by in vivo endotoxin administration.

Animals↗

The extrinsic caspase pathway modulates endotoxin-induced diaphragm contractile dysfunction.

The mechanisms by which infections induce diaphragm dysfunction remain poorly understood. The purpose of this study was to determine which caspase pathways (i.e., the extrinsic, death receptor-linked caspase-8 pathway, and/or the intrinsic, mitochondrial-related caspase-9 pathway) are responsible for endotoxin-induced diaphragm contractile dysfunction. We determined 1) whether endotoxin administration (12 mg/kg IP) to mice induces caspase-8 or -9 activation in the diaphragm; 2) whether administration of a caspase-8 inhibitor (N-acetyl-Ile-Glu-Thr-Asp-CHO, 3 mg/kg iv) or a caspase-9 inhibitor (N-acetyl-Leu-Glu-His-Asp-CHO, 3 mg/kg iv) blocks endotoxin-induced diaphragmatic weakness and caspase-3 activation; 3) whether TNF receptor 1-deficient mice have reduced caspase activation and diaphragm dysfunction following endotoxin; and 4) whether cytokines (TNF-alpha or cytomix, a mixture of TNF-alpha, interleukin-1beta, interferon-gamma, and endotoxin) evoke caspase activation in C(2)C(12) myotubes. Endotoxin markedly reduced diaphragm force generation (P < 0.001) and induced increases in caspase-3 and caspase-8 activity (P < 0.03), but failed to increase caspase-9. Inhibitors of caspase-8, but not of caspase-9, prevented endotoxin-induced reductions in diaphragm force and caspase-3 activation (P < 0.01). Mice deficient in TNF receptor 1 also had reduced caspase-8 activation (P < 0.001) and less contractile dysfunction (P < 0.01) after endotoxin. Furthermore, incubation of C(2)C(12) cells with either TNF-alpha or cytomix elicited significant caspase-8 activation. The caspase-8 pathway is strongly activated in the diaphragm following endotoxin and is responsible for caspase-3 activation and diaphragm weakness.

Animals↗

Endotoxin-free dialysate improves response to erythropoietin in hemodialysis patients.

BACKGROUND/AIMS: Inflammatory process induced by endotoxin is one of the causes of resistance to recombinant human erythropoietin (rHuEPO) in hemodialysis patients. Thus dialysate contaminated with endotoxin may diminish response to rHuEPO. We investigated whether dose of rHuEPO could be reduced with endotoxin-free ultrafiltered dialysate. METHODS: Twenty-seven chronic hemodialysis patients receiving rHuEPO were studied. The patients did not have known causes of anemia other than chronic renal failure. An endotoxin-cut polyethylene ultrafilter was installed into the dialysate fluid circuit. Hematocrit and dose of rHuEPO were monitored before and after installation. Dose of rHuEPO was adjusted to keep hematocrit at about 30%. Endotoxin concentration of dialysate was measured by commercial limulus test (Endospecy. RESULTS: After installation of ultrafilter, dialysate endotoxin concentration decreased from >100 to <1.0 endotoxin units/liter (EU/l). Dose of rHuEPO decreased from 90.0 U/kg/week (median) to 57.3 U/kg/week (p < 0.05) and hematocrit increased from 30.3% (median) to 32.2% (p = 0.03) after 5 months of installation of ultrafilter. The running cost of the ultrafilter corresponded to only 4% of the cost of spared rHuEPO. CONCLUSIONS: Ultrafiltered endotoxin-free dialysate caused significant reduction in dose of rHuEPO to keep target hematocrit level. Endotoxin-cut ultrafilter was beneficial to hemodialysis patients in medical and in economical aspects.

Adult↗

Immunohistochemical staining for endotoxin using horseshoe crab factor C in fecal peritonitis.

The object of the present study was to apply a new immunohistochemical staining method to the in vivo determination of endotoxin localization. The immunohistochemical staining method requires factor C (an initiation factor in the Limulus clotting system which is mediated by endotoxin) as a specific ligand of endotoxin, and a newly developed murine monoclonal antibody to factor C. The blood endotoxin level and endotoxin localization in the rat were determined before and at 6, 12 and 24 h after intraperitoneal injection of 0.25 g/kg of fresh rat feces. The greatest blood endotoxin level was achieved at 12 h after the injection, and uptake of endotoxin was evident in Kupffer cells in the liver at 24 h after the injection. There has been no report on determining endotoxin localization in cases of endotoxemia attributed to fecal peritonitis. This new immunohistochemical staining method for determining endotoxin localization will contribute to the histopathological diagnosis of endotoxemia in humans.

Animals↗

Endotoxin-induced lung maturation in preterm lambs is not mediated by cortisol.

Antenatal exposure to glucocorticoids, amnionitis, intraamniotic interleukin (IL)-1alpha, or endotoxin can improve postnatal lung function after preterm delivery. The relationship between early lung maturation and the dose and duration of a proinflammatory stimulus has not been evaluated. The effects of proinflammatory stimuli on fetal plasma cortisol also have not been evaluated. We hypothesized that intraamniotic endotoxin would induce early lung maturation in fetal sheep without increasing fetal cortisol. Intraamniotic injections of 1, 4, 20, or 100 mg of Escherichia coli 055:beta5 endotoxin caused 2-fold increases in compliance, 4- to 5-fold increases in lung gas volumes, and 20-fold increases in alveolar saturated phosphatidylcholine (Sat PC) when given 7 d before preterm delivery at 125 d gestation. Animals treated with 20 mg endotoxin for treatment to delivery intervals of 5 h to 15 d had no significant elevations in cord plasma cortisol levels. Increases in Sat PC in lung tissue and alveolar washes were detected 2 d after endotoxin treatment and lung function improved 4 d after endotoxin treatment. Two doses of endotoxin given 3 and 7 d or 7 and 15 d before treatment resulted in lung maturation responses equivalent to single dose comparison groups without elevations in cortisol. Early lung maturation induced by intraamniotic endotoxin in fetal sheep occurred without an increase in fetal plasma cortisol, indicating that endotoxin promoted lung maturation by a mechanism independent of cortisol.

Amnion↗

Effect of catalase on endotoxin-induced acute lung injury in unanesthetized sheep.

Administration of endotoxin intravenously to unanesthetized sheep causes an acute lung injury characterized by increased microvascular barrier permeability and subsequent pulmonary edema. Endotoxin-induced sheep lung injury can be attenuated by leukocyte depletion, and may be mediated by toxic metabolites of oxygen. We studied effects of administering catalase, which catalyzes conversion of hydrogen peroxide to oxygen and water, to sheep subsequently infused with endotoxin to test the hypothesis that hydrogen peroxide plays a role in the pathogenesis of lung injury. We found that infusions of endotoxin (1 microgram/kg) into untreated sheep caused the expected biphasic response, a transient, early, marked pulmonary arterial hypertension followed by a prolonged increase in protein-rich lung lymph flow characteristic of increased microvascular permeability filtration in the lungs. Intraperitoneal injections of catalase (50 mg/kg) prior to infusing endotoxin in these same sheep resulted in substantial catalase activity in plasma and in lung lymph, and attenuated the expected changes in pulmonary arterial pressure, lung lymph flow, and arterial leukocyte counts and oxygen tension after endotoxin infusions. Furthermore, mechanical elevation of hydrostatic pressure in the lungs of a catalase-treated sheep infused with endotoxin resulted in increased lung lymph flow with a decreased protein concentration, indicating that the microvascular barrier to fluid and protein was functionally intact. Administration of catalase that was inactivated by reaction with hydrogen peroxide in the presence of aminotriazole or administration of the catalase vehicle, thymol, had no effects on the sheep responses to endotoxin. We conclude that hydrogen peroxide plays a role in the pathogenesis of endotoxin-induced acute lung injury in sheep.

Acute Disease↗

Endotoxin in vivo impairs endothelium-dependent relaxation of canine arteries in vitro.

We studied the effect of endotoxin administration in vivo on arterial smooth muscle responses in vitro, testing the hypotheses that endotoxin augments adrenergic vasoconstriction and impairs endothelium-dependent vascular relaxation. Ten mongrel dogs were anesthetized and mechanically ventilated. Five received a bolus infusion of Escherichia coli endotoxin (5 mg/kg), and the remainder received a sham infusion. After 4 to 5 h, the anesthetized dogs were rapidly exsanguinated, and femoral, renal, and superior mesenteric arteries were removed. Arterial rings were mounted on force transducers in organ baths; contraction to phenylephrine or potassium-substituted Krebs-Henseleit solution (KCl), and relaxation to nitroprusside or acetylcholine were studied. Smooth muscle contractions to phenylephrine or KCl were similar between sham and endotoxin for each agonist. Also, nitroprusside-elicited relaxation from half-maximal phenylephrine-elicited contraction was similar. However, relaxation elicited by acetylcholine was markedly impaired in vessels from endotoxin-treated dogs. The negative log molar concentration of acetylcholine producing 50% relaxation for femoral arteries was 7.38 +/- 0.11 (endotoxin) versus 8.09 +/- 0.12 (control, p = 0.002), for renal arteries it was 6.71 +/- 0.33 (endotoxin) versus 7.81 +/- 0.18 (control, p = 0.019), and for mesenteric arteries it was 7.27 +/- 0.03 (endotoxin) versus 7.95 +/- 0.15 (control, p = 0.002). These results demonstrate that endotoxin treatment impairs endothelium-dependent relaxation of canine arteries in vitro. The data suggest that vascular changes in endotoxemia are accompanied by alteration in endothelial cell function, perhaps through altered endothelial production of vasodilatory mediators.

Acetylcholine↗

Granulocyte colony-stimulating factor does not enhance endotoxin-induced acute lung injury in guinea pigs.

We studied recombinant human granulocyte colony-stimulating factor (G-CSF) in terms of its hematopoietic and neutrophil-activating effects on acute lung injury induced by endotoxin. Guinea pigs were divided into four groups: (1) saline control animals, (2) endotoxin alone, (3) cyclophosphamide (CPA)+endotoxin, and (4) G-CSF+endotoxin. A G-CSF dose of 20 micrograms/kg was given subcutaneously twice a day for 5 days. Animals were observed for 4 h after intravenously administered endotoxin (0.02 and 2.0 mg/kg) with serial measurements of complete blood counts and hemodynamics. Lung extravascular water, [125I]albumin leakage in lung tissue, and histopathologic features were examined at death. The endotoxin-alone group showed peripheral leukopenia, transient hypotension, excess lung water, increased albumin leakage, PMN accumulation in lung tissue, and gross histopathologic edema. G-CSF-treated animals showed attenuated responses in peripheral leukopenia, excess lung water, and albumin leakage in comparison with the endotoxin-alone group. No augmented responses were seen in the G-CSF group. The CPA+endotoxin group also had attenuated lung injury, which was similar to that in the G-CSF group. In conclusion, pretreatment with G-CSF tended to attenuate rather than enhance neutrophil-dependent acute lung responses to endotoxin.

Animals↗

Effect of PEG-superoxide dismutase on the diaphragmatic response to endotoxin.

Although it is known that endotoxin can induce diaphragmatic dysfunction, the mechanism of this effect is not fully understood. However, because the effects of endotoxin on other tissues appear to be mediated in part by free radicals, the present study sought to determine if free radicals may also contribute to the diaphragmatic dysfunction induced by endotoxin administration. Studies were performed on four groups of hamsters. One group of animals received intraperitoneal injections of endotoxin on the first and second days of study (i.e., 10 and 20 mg/kg, respectively). The second group received saline rather than endotoxin, the third group received both endotoxin and a free radical scavenger, PEG-SOD (2,000 U/kg given intraperitoneally every 12 h on Days 1 and 2), and the fourth group received PEG-SOD alone. All groups were killed on the third study day (i.e., 48 h after the initial injections). Diaphragmatic contractile function was assessed in vitro using muscle strips excised from the costal diaphragms of freshly killed animals; diaphragm samples were also assayed for malondialdehyde (MDA), a commonly used index of free-radical-mediated lipid peroxidation. MDA levels were higher in diaphragms from endotoxin-treated animals than from saline-treated control animals, and the contractility of diaphragm strips from endotoxin-treated animals was reduced when compared with strips from saline-treated control animals. Administration of PEG-SOD prevented MDA formation and contractile dysfunction in endotoxin-treated animals. Diaphragm contractility and MDA levels for animals given PEG-SOD alone were similar to those for saline-treated control animals.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Late effects of endotoxin on the accumulation and function of monocytes in rabbit lungs.

Recent studies from our laboratory show that the lung contains a marginated pool of monocytes. The present study was designed to investigate monocyte accumulation in this pool 4 to 28 h after a single dose of endotoxin when the endotoxin had disappeared from the circulation. This was accomplished by administering a single intravenous dose of endotoxin (Escherichia coli, 50 micrograms/rabbit) to unanesthetized animals (n = 6) and saline to controls (n = 5) at time 0. Four hours after this dose of endotoxin, 111In-monocytes (93.5% pure) isolated from donors were injected intravenously, and, at 27 h, the rabbits were anesthetized and colloidal carbon (CC, 1 ml/kg body weight) was injected intraarterially to provide a phagocytic stimulus. The animals were sacrificed at 28 h, and the lungs were fixed in situ with glutaraldehyde. The data show that lungs from the endotoxin-treated rabbits contained 4.8 times more 111In-monocytes than controls, that 92% of these radiolabeled monocytes were in the alveolar capillaries, and that 72% of these labeled cells had phagocytosed CC. The histologic studies of unlabeled cells confirmed that this endotoxin treatment caused a 3-5-fold increase in unlabeled mononuclear cells and neutrophils (PMN) in the microvasculature and that many of the unlabeled monocytes in the endotoxin-treated group had also phagocytosed colloidal carbon. The behavior of the donor monocytes injected after the endotoxin had time to disappear from the circulation suggests that they accumulate in the lung in response to the indirect effects of endotoxin on endothelial cells.

Animals↗

Effect of sulfidopeptide leukotriene receptor antagonists on endotoxin-induced pulmonary dysfunction in awake sheep.

We studied the effects of two structurally unrelated sulfidopeptide leukotriene receptor antagonists on endotoxin-induced pulmonary dysfunction in chronically instrumented unanesthetized sheep. The agents employed were L-660,711 (MK-571) (Merck-Frosst, Canada) and SK&F 104,353 (Smith Kline and French, King of Prussia, PA). The efficacy and specificity of the agents were verified in sheep by administering boluses of exogenous leukotrienes (LTB4, LTC4, LTD4, and LTE4) in doses as great as 100 micrograms while monitoring lung mechanics and vascular pressures. The antagonists blocked the changes in lung mechanics and pulmonary hemodynamics induced by the sulfidopeptide leukotrienes (LTC4, LTD4, and LTE4) while having no effect on the animals' responses to LTB4. The endotoxin studies were performed by administering endotoxin alone (Escherichia coli endotoxin 0.75 microgram/kg) or endotoxin after pretreatment with one of the sulfidopeptide leukotriene receptor antagonists. In control studies, each animal received a continuous infusion of one of the receptor antagonists for a duration identical to that of the endotoxin studies. Neither L-660,711 nor SK&F 104,353 significantly altered the endotoxin-induced changes in pulmonary hemodynamics, lung mechanics, lung fluid and solute exchange, oxygenation, or leukopenia. Peak lung lymph thromboxane B2 levels were significantly lower in sheep pretreated with L-660,711. When the antagonists were given alone, no effects were seen. We conclude that (1) sulfidopeptide leukotrienes do not measurably contribute to endotoxin-induced pulmonary dysfunction in chronically instrumented sheep; (2) sulfidopeptide leukotrienes may contribute to thromboxane release after endotoxin.

Animals↗

Endotoxin primes perfused rabbit lungs for enhanced vasoconstrictor response to staphylococcal alpha-toxin.

The major pore-forming exotoxin of Staphylococcus aureus, staphylococcal alpha-toxin, causes thromboxane-mediated pulmonary hypertension and prostanoid-independent protracted vascular leakage in perfused rabbit lungs. We asked whether lung responsiveness to the staphylococcal agent would be altered by a preceding period of endotoxin priming. Isolated rabbit lungs were perfused with Krebs-Henseleit buffer in the presence or absence of 100 ng/ml Salmonella abortus equii endotoxin for up to 5 h. The lipopolysaccharide exposure evoked the release of large quantities of tumor necrosis factor into the vascular and alveolar spaces but did not significantly alter pulmonary artery pressure, organ weight, or the repeatedly assessed capillary filtration coefficient (Kfc). Two and 4 h after endotoxin administration, alpha-toxin (10 to 30 ng/ml) was bolus-injected into the pulmonary artery. Toxin-evoked prostanoid generation (TxB2, 6-keto-PGF1 alpha) and pressor responses were markedly accelerated and enhanced in endotoxin-primed lungs, both for the 2 h and the 4 h priming period. No significant influence of endotoxin was noted when applied simultaneously with alpha-toxin. Cyclooxygenase inhibition suppressed the alpha-toxin-evoked pressure rise in both endotoxin-primed and nonprimed lungs. Endotoxin priming did not influence the alpha-toxin-induced protracted increase in Kfc values, assessed in the presence of cyclooxygenase inhibition. We conclude that endotoxin primes rabbit lungs for enhanced prostanoid generation and pulmonary hypertension in response to S. aureus alpha-toxin. Such cooperativity of endotoxin priming and exotoxin triggering may be relevant in critically ill patients suffering from both endotoxemia and gram-positive sepsis.

6-Ketoprostaglandin F1 alpha↗

Effect of free radical scavengers on endotoxin-induced respiratory muscle dysfunction.

Recent studies have suggested that free radicals contribute to the diaphragmatic dysfunction observed in sepsis. However, previous work has not determined which species of free radicals are responsible for producing these effects or whether the intercostal muscles are affected similarly during sepsis. The purpose of this study was to examine these issues using a hamster model of endotoxin-mediated sepsis in which diaphragm and intercostal muscle function was assessed on muscle strips excised from these animals after killing. Several groups of animals were studied, including animals injected with (1) saline, (2) endotoxin, (3) endotoxin plus active PEG-SOD, a superoxide scavenger, (4) endotoxin plus active PEG-catalase, a hydrogen peroxide scavenger, (5) endotoxin plus DMSO, a hydroxyl scavenger, and (6) endotoxin plus denatured PEG-SOD. We found that endotoxin administration elicited significant reductions in diaphragm and intercostal muscle contractility. In each of the three groups of animals to which active free radical scavengers were administered, the effects of endotoxin were attenuated. Denatured PEG-SOD did not protect the respiratory muscles from endotoxin-mediated dysfunction, however. These data indicate that both the diaphragm and intercostal muscles are affected similarly by sepsis; moreover, several free radical species (superoxide ions, hydrogen peroxide, and hydroxyl ions) play a role in mediating this type of injury.

Animals↗

Polyethylene glycol-superoxide dismutase prevents endotoxin-induced cardiac dysfunction.

RATIONALE: Sepsis produces significant mitochondrial and contractile dysfunction in the heart, but the role of superoxide-derived free radicals in the genesis of these abnormalities is not completely understood. OBJECTIVES: The study was designed to test the hypothesis that superoxide scavenger administration prevents endotoxin-induced cardiac mitochondrial and contractile dysfunction. METHODS: Four groups of rats were studied, and animals were injected with either saline, endotoxin, endotoxin plus polyethylene glycol-adsorbed-superoxide dismutase (PEG-SOD; a free-radical scavenger), or PEG-SOD alone. Animals were killed 48 h after injections. We then measured cardiac mitochondrial generation of reactive oxygen species (ROS), formation of free-radical reaction products (protein carbonyls, lipid aldehydes, nitrotyrosine), mitochondrial function, and cardiac contractile function. MEASUREMENTS AND MAIN RESULTS: Endotoxin elicited increases in cardiac mitochondrial ROS formation (p < 0.001), increases in cardiac levels of free-radical reaction products, reductions in mitochondrial ATP generation (p < 0.001), and decrements in cardiac pressure-generating capacity (p < 0.01). Administration of PEG-SOD blocked formation of free-radical reaction products, prevented mitochondrial dysfunction, and preserved cardiac contractility. For example, mitochondrial ATP generation was 923 +/- 50, 392 +/- 32, 753 +/- 25, and 763 +/- 36 nmol/min/mg, respectively, for control, endotoxin, endotoxin + PEG-SOD, and PEG-SOD groups (p < 0.001). In addition, cardiac systolic pressure generation at a diastolic pressure of 15 mm Hg averaged 110 +/- 11, 66 +/- 7, 129 +/- 10 and 124 +/- 5 mm Hg, respectively, for control, endotoxin, endotoxin + PEG-SOD, and PEG-SOD groups (p < 0.01). CONCLUSION: These data indicate that superoxide-derived oxidants play a critical role in the development of cardiac mitochondrial and contractile dysfunction in endotoxin-induced sepsis.

Adenosine Triphosphate↗

Endotoxin exposure, CD14, and allergic disease: an interaction between genes and the environment.

RATIONALE: High endotoxin exposure may reduce the risk of allergic sensitization. OBJECTIVE: To determine the relationship between a promoter polymorphism in the CD14 gene (CD14/-159 C to T) and endotoxin exposure in relation to the development of allergic sensitization, eczema, and wheeze within the setting of a birth cohort. METHODS: We genotyped 442 children (CD14/-159 C to T; rs2569190). We assessed children for allergic sensitization (IgE > 0.2 kU/L to at least one of seven allergens), eczema (physical examination), and parentally reported wheeze. Endotoxin was measured in house dust. MAIN RESULTS: Genotype frequencies were consistent with other populations (TT, 25%; CT, 47%; CC, 28%). Sensitization (present in 33% of children) was not associated with genotype. For children with TT and CT genotypes, there was no association between endotoxin and sensitization (odds ratio [OR], 0.95; 95% confidence interval [CI], 0.71-1.23; p = 0.7; and OR, 0.90; 95% CI, 0.77-1.04; p = 0.16, respectively) or endotoxin and eczema (OR, 0.99; 95% CI, 0.81-1.20; p = 0.89; and OR, 1.38; 95% CI, 0.83-2.30; p = 0.22, respectively). In children with the genotype CC, increasing endotoxin load was associated with a marked and significant reduction in the risk of sensitization (OR, 0.70; 95% CI, 0.55-0.89; p = 0.004) and eczema (OR, 0.73; 95% CI, 0.56-0.95; p = 0.02). However, we observed an increased risk of nonatopic wheeze with increasing endotoxin exposure in children with the CC genotype (OR, 1.42; 95% CI, 1.01-1.99; p = 0.04) but not other genotypes. No effect was seen for atopic wheeze. CONCLUSIONS: Increasing endotoxin exposure is associated with reduced risk of allergic sensitization and eczema but with increased risk of nonatopic wheeze in children with the CC genotype at -159 of the CD14 gene. The impact of environmental endotoxin may be enhanced in individuals with this genotype.

Asthma↗

Endotoxin induces the expression of macrophage inflammatory protein 1 alpha mRNA by rat alveolar and bone marrow-derived macrophages.

Macrophage inflammatory protein 1 alpha (MIP-1 alpha) is a newly described cytokine that is present in large amounts in the culture supernatant of an endotoxin-stimulated murine macrophage-like cell line (RAW 264.7). There is increasing information that suggests that this cytokine mediates acute neutrophilic inflammation, although the mechanism of mediation is unknown. Data examining the production and regulation of MIP-1 alpha by primary rat macrophages are lacking, and MIP-1 alpha has not been studied previously in an animal model of endotoxin-induced neutrophilic alveolitis. In this study, we performed Northern analysis of steady-state rat MIP-1 alpha mRNA using an oligonucleotide probe complementary to amino acids 4-13 of murine MIP-1 alpha. Our data demonstrate that rat alveolar and bone marrow-derived macrophages can be induced by in vitro endotoxin treatment to express a 1.1-kb MIP-1 alpha mRNA. Expression of the mRNA could be elicited by treatment with 0.1 to 10.0 micrograms/ml of endotoxin in vitro with peak steady-state levels detectable up to 9 h after adding endotoxin to the media. Alveolar macrophages recovered by whole lung lavage from endotoxin-treated rats expressed increased amounts of the mRNA homologous to MIP-1 alpha mRNA when treated in vitro with endotoxin. We also found that rat neutrophils could be induced by endotoxin in vitro to express the MIP-1 alpha mRNA. We were able to identify MIP-1 alpha in culture supernatant from endotoxin-stimulated rat alveolar and bone marrow-derived macrophages by immunoprecipitation with a specific goat anti-murine MIP-1 alpha.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Tumor necrosis factor-alpha gene and protein expression in adult feline myocardium after endotoxin administration.

TNF alpha mRNA and protein biosynthesis were examined in the adult feline heart after stimulation with endotoxin. When freshly isolated hearts were stimulated with endotoxin in vitro, de novo TNF alpha mRNA expression occurred within 30 min, and TNF alpha protein production was detected within 60-75 min; however, TNF alpha mRNA and protein production were not detected in diluent-treated hearts. Immunohistochemical studies localized TNF alpha to endothelial cells, smooth muscle cells, and cardiac myocytes in the endotoxin-treated hearts, whereas TNF alpha immunostaining was absent in the diluent-treated hearts. To determine whether the cardiac myocyte was a source for TNF alpha production, two studies were performed. First, in situ hybridization studies, using highly specific biotinylated probes, demonstrated TNF alpha mRNA in cardiac myocytes from endotoxin-stimulated hearts; in contrast, TNF alpha mRNA was not expressed in myocytes from diluent-treated hearts. Second, TNF alpha protein production was observed when cultured cardiac myocytes were stimulated with endotoxin, whereas TNF alpha protein production was not detected in the diluent-treated cells. The functional significance of the intramyocardial production of TNF alpha was determined by examining cell motion in isolated cardiac myocytes treated with superfusates from endotoxin- and diluent-stimulated hearts. These studies showed that cell motion was depressed in myocytes treated with superfusates from the endotoxin-treated hearts, but was normal with the superfusates from the diluent-treated hearts; moreover, the negative inotropic effects of the superfusates from the endotoxin-treated hearts could be abrogated completely by pretreatment with an anti-TNF alpha antibody. Finally, endotoxin stimulation was also shown to result in the intramyocardial production of TNF alpha mRNA and protein in vivo. Thus, this study shows for the first time that the adult mammalian myocardium synthesizes biologically active TNF alpha.

Animals↗

Endotoxin and cytokines decrease serum levels and extra hepatic protein and mRNA levels of cholesteryl ester transfer protein in syrian hamsters.

Endotoxin alters the metabolism of lipoproteins, including that of high density lipoprotein (HDL). Cholesteryl ester transfer protein (CETP) facilitates exchange of HDL cholesterol for very low density lipoprotein (VLDL) triglyceride, leading to catabolism of HDL. We investigated the effects of endotoxin and cytokines on CETP in Syrian hamsters. Endotoxin induced a rapid and progressive decrease in serum CETP levels, by 48 h CETP had decreased to < 20% of control levels. Endotoxin also decreased CETP mRNA and protein levels in adipose tissue, heart, and muscle, the tissues with highest levels of CETP mRNA, providing a plausible mechanism for the endotoxin-induced decrease in circulating CETP. Dexamethasone did not mimic the effects of endotoxin on CETP, but the combination of tumor necrosis factor and interleukin-1 did, indicating that these cytokines may in part mediate the effects of endotoxin on CETP. The endotoxin-induced decrease in CETP may help maintain HDL cholesterol levels during infection and inflammation when increased triglyceride levels could drive the exchange of HDL cholesteryl ester for VLDL triglyceride. Maintaining circulating HDL may be important because HDL protects against the toxic effects of endotoxin and provides cholesterol for peripheral cells involved in the immune response and tissue repair.

Adipose Tissue↗