Effect of dimethyl sulfoxide on the bactericidal function of polymorphonuclear leukocytes.
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Biomedical subjects
Publications and source records attributed to J E Repine.
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Thiourea (TU), a very effective hydroxyl radical (.OH) scavenger, has little value as a probe of .OH in vivo because it causes fatal pulmonary edema. To test the hypothesis that TU-induced lung injury results from .OH-mediated oxidation of TU to toxic cyanamide, we pretreated rats with .OH scavengers, dimethylsulfoxide (DMSO), ethanol, and mannitol, prior to treatment with TU (3 mg/kg), preventing 91, 63, and 53%, respectively, of increases in lung weight to body weight ratios and 93, 67, and 46% of increases in lung lavage albumin concentrations. Furthermore, treatment of rats with cyanamide (CYN) (100 mg/kg) also caused increases in lung weight to body weight ratios (CYN: 7.39 +/- 0.57 X 10(-3) vs. controls: 5.46 +/- 0.26). N,N'-dimethylation of TU (DMTU) prevented TU toxicity, because treatment with DMTU did not significantly increase lung weight to body weight ratios (DMTU: 5.12 +/- 0.16 X 10(-3) vs. controls: 5.46 +/- 0.26) or lung lavage albumin (DMTU: 14 +/- 1 mg/100 ml vs. controls: 11 +/- 1). DMTU remained a very effective in vivo .OH scavenger, increasing survival of lethally irradiated mice treated with 600 mg/kg DMTU to 79% compared with 8% in untreated controls.
A good model of the adult respiratory distress syndrome (ARDS) is intravenously injected phorbol myristate acetate (PMA), which causes pulmonary sequestration of neutrophils and a neutrophil-dependent acute edematous lung injury in rabbits. In the present study, pretreatment of rabbits with the antimalarial agent, mepacrine, prevented lung edema after injection of PMA without altering initial accumulations of neutrophils in the lung. Mepacrine also decreased oxygen radical production and degranulation by neutrophils stimulated by PMA in vitro. In contrast, pretreatment with methylprednisolone did not decrease edematous lung injury in rabbits given PMA nor did it inhibit O2 radical production or degranulation by neutrophils treated with PMA in vitro. Our results suggest that agents that modify neutrophil function may be useful in decreasing lung injury after PMA treatment and, perhaps, in treating patients with ARDS.
Exposure of cultured bovine pulmonary artery endothelial cells to hyperoxia (95% O2) caused cellular injury manifested by decreased growth rates and release of cytoplasmic lactic dehydrogenase (LDH). In addition, a greater number of polymorphonuclear leukocytes (PMN) adhered to endothelial cells that had been exposed to hyperoxia for 24 or 48 h than to control endothelial cells that had been exposed to normoxia (15% O2). Direct endothelial cell injury from hyperoxia may contribute to vascular damage and the increased PMN accumulation seen in lungs of animals exposed to hyperoxia.
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Damage to alveolar macrophages (AM) from hyperoxia (95% O2) is associated with release of factors that recruit and activate neutrophils, but the mechanisms underlying injury to AM from hyperoxia are unknown. We hypothesized that damage to AM from hyperoxia involves generation of highly reactive toxic oxygen derivatives, and we tested this premise by exposing cultured rabbit AM to hyperoxia in the presence of scavengers that inactivate various reactive oxygen species. We found that either dimethyl thiourea, a scavenger of hydroxyl radical, or catalase, a scavenger of H2O2, protected cultured rabbit AM against hyperoxic damage, which suggests that H2O2 or an H2O2-derived product, such as hydroxyl radical, contribute to damage to AM from hyperoxia.
Macrophages, neutrophils, and platelets may play a role in acute edematous lung injury, such as that seen in the adult respiratory distress syndrome (ARDS), but their potential actions and interactions are unclear. Because stimulated human macrophages and neutrophils can release acetyl glyceryl ether phosphorylcholine (AGEPC), a potent platelet activator, we hypothesized that in ARDS, leukocyte release of AGEPC might stimulate platelets to release thromboxane A2 (TXA2), which then produces pulmonary hypertension and lung edema. In support of this premise, we found that pulmonary hypertension and edema occurred in isolated rabbit lungs perfused with human platelets and AGEPC, but not with platelets or AGEPC alone. Infusion of a vasodilator (nitroglycerin) to maintain base-line pulmonary artery pressures in lungs perfused with platelets and AGEPC prevented the development of lung edema suggesting that platelet and AGEPC-induced edema was hydrostatic in nature. Additional experiments suggested that the increased pressure was a result of TXA2 release from platelets stimulated by AGEPC. Specifically, preincubation of platelets with imidazole, a thromboxane synthetase blocker, prior to infusion with AGEPC significantly diminished pulmonary hypertension and prevented lung edema. Furthermore, pretreating lung preparations with 13-azaprostanoic acid, a TXA2 antagonist, before infusion of AGEPC and untreated platelets also reduced the pulmonary hypertension and blocked the lung edema. The role of TXA2 was further suggested when perfusates from lungs infused with platelets and AGEPC developed high levels of TXA2, whereas perfusates from controls did not. These results suggest that platelet aggregation induced by AGEPC may contribute to ARDS by releasing TXA2, which raises microvascular pressure and increases edema formation, especially when an underlying permeability defect is present.
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The effect of temperature on the function of polymorphonuclear leukocytes (PMN) has been investigated in vitro. Increases in temperature from 37 degrees C to 40 degrees C progressively increased chemiluminescence (CL) responses by PMN after stimulation by Staphylococcus aureus, zymosan or phorbol myristate acetate (PMA) while increases above 40 degrees C decreased these functions. Temperature increases from 37 degrees C to 40 degrees C also produced increased PMN bactericidal activity against S. aureus. In contrast, similar increases in temperature did not change superoxide production by PMN stimulated by PMA. Incubation of PMN at the various temperatures did not cause release of LDH indicating that damage to PMN was not the cause of reduced PMN chemiluminescence and bactericidal activity seen within the temperature range studied. The discrepancy between the influence of temperature on PMN chemiluminescence and bactericidal activity of PMN compared to superoxide anion production by PMN suggests that superoxide anion production may not be solely, or at least directly, responsible for killing of bacteria. Careful temperature control is needed when assaying PMN function. Febrile responses up to 40 degrees C may play a beneficial role in host defense.
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Polymorphonuclear leukocytes (PMN) or neutrophils have multiple systems available for killing ingested bacteria. Nearly each of these incorporates H2O2 indicating the essential nature of this reactive oxygen intermediate for microbicidal activity. Following ingestion of bacteria by PMN, H2O2 is formed by the respiratory burst which consumes O2 and generates H2O2 from O2 .-. H2O2 is deposited intracellularly near bacteria within phagocytic vacuoles where it can react with the MPO-H2O2-halide system to form toxic hyperchlorous acid (HOCl) and/or possibly singlet oxygen (1O2). H2O2 can also react with O2 .- and/or iron (Fe++) from lactoferrin or bacteria to form the highly toxic hydroxyl radical (.OH). These mechanisms appear important since deficiencies of H2O2 production, myeloperoxidase or lactoferrin frequently increases their owner's susceptibility to infection. In particular, examination of PMN from infection prone patients with chronic granulomatous disease (CGD) most clearly demonstrates the importance of H2O2 in killing of bacteria. CGD PMN lack the capacity to effectively generate H2O2 and subsequently have impaired ability to kill catalase positive (H2O2 producing) but not catalase negative (not H2O2 producing) bacteria. PMN also have catalase and glutathione peroxidase systems in their cytoplasms to protect themselves from the toxicity of H2O2. Finally, while H2O2 is critical for host defense, it can also be released extracellularly and thereby play a significant role in PMN mediated tissue injury.
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Chemiluminescence was used to determine opsonic requirements for interaction of Cryptococcus neoformans with human peripheral blood polymorphonuclear leukocytes (PMNLs) and monocytes (MNs). Peak chemiluminescence (mean +/- SD) was 172 +/- 25 X 10(3) for PMNLs and 50 +/- 13 X 10(3) for MNs with 20% pooled normal human serum vs. 10 +/- 3 X 10(3) for PMNLs and 6 +/- 1 X 10(3) for MNs without serum (P less than 0.005 for each comparison). The nature of the serum requirement was investigated; alternative pathway serum complements were necessary. The alternative pathway was activated directly by C. neoformans without the need for specific antibody. Chemiluminescence provided a quantitative and reproducible assay of the interaction of human phagocytes with C. neoformans and may be useful in studying opsonic requirements of other fungi.
Increased numbers of granulocytes are found in lungs acutely injured by hyperoxia, but their contribution to lung injury remains unknown. We found that circulating granulocytes markedly increased (P less than 0.01) in rabbits exposed to hyperoxia for 72 h and that the numbers of granulocytes in lung lavages also increased and were correlated (r = 0.72, P less than 0.01) with the degree of edematous lung injury. Furthermore, when rabbits were treated with nitrogen mustard (1.75 mg/kg) and developed sustained granulocytopenia, exposure to hyperoxia for 72 h resulted in fewer granulocytes in lung lavages and less edematous lung injury. In contrast, when rabbits were similarly treated with nitrogen mustard but did not maintain sustained granulocytopenia throughout the exposure to hyperoxia, increased numbers of granulocytes were found in lung lavages and the degree of edematous lung injury increased to levels not different from those observed in oxygen-exposed rabbits that had not been treated with nitrogen mustard. These findings suggest that granulocytes may contribute to production of edema in acute oxygen toxicity.