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Biomedical subjects

E J Bates

Publications and source records attributed to E J Bates.

At least 19 recordsLinked to original sources

Platelet-activating factor inhibits proteoglycan synthesis and enhances neutrophil-mediated proteoglycan degradation in cartilage explants.

OBJECTIVE: Platelet-activating factor (PAF), which stimulates the release of tissue-destructive enzymes and reactive oxygen metabolites from neutrophils, was investigated for its role in neutrophil-mediated cartilage breakdown. METHODS: Bovine cartilage explants were incubated with or without human neutrophils, PAF, and other reagents. Cartilage damage was measured as either proteoglycan degradation (percent release of 35S-labeled proteoglycan from 35S-labeled cartilage) or inhibition of proteoglycan synthesis (rate of incorporation of 35S into proteoglycan). RESULTS: PAF increased neutrophil-mediated proteoglycan degradation in the 2-20 microM range. Three specific PAF-receptor antagonists, WEB2086, CV3988, and CV6209, reversed this effect of PAF. These antagonists also reduced the enhancement of neutrophil-mediated cartilage damage caused by granulocyte-macrophage colony-stimulating factor (GM-CSF) and tumor necrosis factor alpha (TNF alpha). The results suggest that there may be a positive feedback mechanism whereby cytokine-primed neutrophils produce PAF, which amplifies the release of other tissue-damaging substances from neutrophils. In the absence of neutrophils, PAF (2-20 microM) inhibited the synthesis of proteoglycan by bovine cartilage. Neutrophils also inhibit proteoglycan synthesis, but PAF probably is not involved in this effect of neutrophils because the PAF receptor antagonists had no consistent effect. CONCLUSION: PAF increases neutrophil-mediated cartilage proteoglycan degradation in vitro. GM-CSF and TNF alpha enhancement of neutrophil damage to cartilage is partly due to PAF. PAF alone inhibits cartilage proteoglycan synthesis.

Animals

Inhibition of neutrophil respiratory burst and degranulation responses to platelet-activating factor by antagonists WEB 2086, CV 6209 and CV 3988.

The effect of three platelet-activating factor (PAF) antagonists, WEB 2086, CV 6209 and CV 3988, on neutrophil respiratory burst activity and degranulation in response to PAF was investigated. Both WEB 2086 and CV 6209 significantly inhibited the respiratory burst and degranulation in response to 400 nM PAF in a dose-dependent manner (10(-8)-10(-5) M). Higher concentrations of CV 3988 were required to inhibit these functions (10(-5) M and above). The three antagonists inhibited both the release of beta-glucuronidase (from azurophilic granules) and vitamin B12 binding protein (from specific granules) in response to PAF. Only a small nonsignificant inhibition of neutrophil function occurred in the absence of PAF. There was no loss of viability after incubation with the three antagonists at the concentrations tested. These antagonists will be useful tools to study the involvement of PAF in neutrophil-mediated tissue damage and inflammation.

Azepines

Mechanisms of host tissue damage by cytokine-activated neutrophils.

Although extensive investigations into the role of neutrophils and their products in tissue injury have been conducted, very little work has been carried out on the role of polypeptide cytokines in the regulation of neutrophil-mediated tissue damage. A range of cytokines are known to promote a wide variety of functions of the neutrophil, including neutrophil adhesion, surface receptor expression, ODRS production, and release of lysosomal constituents. Evidence has been presented to show that these products, either singly or in combination, cause tissue injury. At this stage, TNF alpha and TNF beta are cytokines which have been shown to regulate neutrophil tissue injury. From this work it is suggested that TNFs promote neutrophil-mediated tissue damage.

Animals

Characterization of the major neutrophil-stimulating activity present in culture medium conditioned by Staphylococcus aureus-stimulated mononuclear leucocytes.

Culture medium conditioned by stimulating human mononuclear leucocytes (MNL) with killed Staphylococcus aureus (Scm) was found to contain a substantial amount of tumour necrosis factor-alpha (TNF-alpha) but no detectable tumour necrosis factor-beta (TNF-beta). Culture medium conditioned by MNL in the absence of bacteria contained no TNF-alpha activity. When Scm was fractionated by high-performance liquid chromatography (HPLC) on Bio-Sil TSK 250, TNF-alpha co-eluted with neutrophil-stimulating activity measured by chemiluminescence. Similarly, the ability of neutrophils to kill opsonized S. aureus was enhanced in fractions that contained this neutrophil-stimulating activity. The stimulating activity could be almost completely removed by pretreatment of the Scm with a TNF-alpha-specific monoclonal antibody (mAb). The ability of neutrophils to kill S. aureus in response to Scm was also substantially reduced by mAb to TNF-alpha. These results demonstrate that bacterial interaction with MNL leads to the release of neutrophil-stimulating activity that consists predominantly of TNF-alpha.

Antigens, Bacterial

Neutrophil-mediated cartilage injury in vitro is enhanced by tumour necrosis factor alpha.

Neutrophil functions relevant to tissue damage are altered by cytokines such as tumour necrosis factor alpha (cachectin, TNF alpha), known to be present in inflammatory foci. In this study we examined the effect of TNF alpha on neutrophil-mediated cartilage damage in vitro. Human neutrophils were able to injure both human and bovine articular cartilage slices by degrading proteoglycan and inhibiting its synthesis. Recombinant human TNF alpha enhanced neutrophil-mediated degradation of proteoglycan, even when neutrophils were preincubated with TNF alpha and washed before incubating with cartilage. TNF alpha alone degraded proteoglycan and inhibited its synthesis. Neutrophil-mediated inhibition of proteoglycan biosynthesis was increased after incubating cartilage together with neutrophils and TNF alpha, but was unaltered when neutrophils were preincubated with TNF alpha. We conclude that TNF alpha enhances neutrophil injury to articular cartilage.

Adolescent

Degradation of human cartilage by monocytes.

The effect of human peripheral blood monocytes on the degradation of human articular cartilage was studied in vitro using a radiometric assay to detect proteoglycan breakdown. The results showed that proteoglycan breakdown was increased by 60% after a 20 h exposure to monocytes (p less than 0.001).

Cartilage, Articular

Augmentation of the human monocyte/macrophage chemiluminescence response during short-term exposure to interferon-gamma and tumour necrosis factor-alpha.

The effects of short-term (30 min) pre-incubation of human monocytes and macrophages (3-day cultured monocytes) with leucocyte-derived human interferon-gamma (IFN-gamma) and recombinant human tumour necrosis factor-alpha (rTNF-alpha) were examined. Pre-incubation of either monocytes or macrophages with rTNF-alpha or IFN-gamma (100 U/5 x 10(5) cells) augmented their respiratory burst to formyl-L-methionyl-L-leucyl-L-phenylalanine (fMLP), measured by the luminol- and lucigenin-dependent chemiluminescence assay. In addition, both cell types showed a burst of respiratory activity in the presence of rTNF-alpha or IFN-gamma only. The effects of IFN-gamma were removed by adsorption with an anti-IFN-gamma monoclonal antibody and those of rTNF-alpha were abolished by heating at 100 degrees C, or by the addition of anti-TNF-alpha monoclonal antibody. The results demonstrate that both IFN-gamma and rTNF-alpha are stimulators of monocytes and macrophages, and rapidly alter the capacity of the cells to respond to fMLP, which binds to cell surface receptors.

Cells, Cultured

Mechanisms of human neutrophil-mediated cartilage damage in vitro: the role of lysosomal enzymes, hydrogen peroxide and hypochlorous acid.

Cartilage is a focal point of attack by cellular and molecular elements of the inflammatory response which occurs in arthritic diseases. Neutrophils damage articular cartilage by degrading matrix components and inhibiting their synthesis. The aim of this study was to elucidate mechanisms of this damage. Human neutrophils were isolated from blood by centrifuging through Ficoll-Hypaque and granule extract prepared from them. Articular cartilage from adult humans and cattle was maintained in organ culture. Cartilage degradation (release of 35S-labelled proteoglycan) or synthesis (incorporation of 35S into proteoglycan) was determined after various treatments. Human neutrophils and neutrophil granule extract degraded proteoglycan and inhibited proteoglycan synthesis. The specific leucocyte elastase inhibitor N-methoxysuccinyl-(ala)2-pro-val-chloromethylketone (MAAPVCMK) partially reversed these effects. H2O2, a product of the neutrophil respiratory burst, when added directly at 10(-6)mol/L, or generated by glucose oxidase (GO)/glucose inhibited proteoglycan synthesis but had no effect on degradation. Hypochlorous acid (OHCl), a product of the myeloperoxidase (MPO)/H2O2/Cl system at 50 mumol/L degraded proteoglycan and inhibited its synthesis. OHCl produced by granule extract (as a source of MPO) + GO-generated H2O2 + Cl- degraded proteoglycan. The results indicate that neutrophil-mediated proteoglycan degradation and inhibition of synthesis is largely attributable to elastase and secondarily to OHCl, whereas H2O2 impairs synthesis without affecting degradation of proteoglycan.

Animals

Staphylococcus aureus-stimulated mononuclear leucocyte-conditioned medium increases the neutrophil bactericidal activity, and augments oxygen radical production and degranulation in response to the bacteria.

Conditioned medium produced by human mononuclear leucocytes (MNL) stimulated with formalin-fixed, heat-killed Staphylococcus aureus enhanced the killing of opsonized S. aureus by human neutrophils. This enhancement was not seen when conditioned medium from non-stimulated MNL or medium cultured in the absence of both bacteria and MNL was used. There was a five-fold decrease in survival of bacteria when neutrophils were treated with conditioned medium. Conditioned medium-treated neutrophils showed increased initial rate of killing but after 20-30 min the rate of killing was similar to that of non-conditioned medium-treated leucocytes. The neutrophils treated with conditioned medium showed increased production of chemiluminescence, superoxide and lysosomal enzyme release (from both azurophilic and specific granules) in response to opsonized S. aureus. The results demonstrate that bacterial interaction with MNL leads to the release of mediators (cytokines) which potentiate the anti-bacterial function of neutrophils.

Blood Bactericidal Activity

Neutrophil stimulating activity released by Staphylococcus-stimulated mononuclear leukocyte conditioned medium. Further characterization and partial purification.

Culture medium conditioned by human mononuclear leukocytes (MNL) stimulated with formalin fixed heat-killed Staphylococcus aureus induces a small respiratory burst in human neutrophils, and dramatically increases the response of neutrophils to stimuli such as N-formyl-L-methionyl-L-leucyl-L-phenylalanine. The data presented show that the activity is not unique to Staphylococcus aureus. Similar neutrophil modulating activities were produced by medium conditioned by MNL cultured in the presence of Streptococcus pneumonia, and Group B streptococcus. The activity was relatively resistant to heating; significant reduction of activity was observed only when 80 degrees C was reached. Neutrophil stimulating activity production by stimulated MNL was dependent on protein and RNA synthesis and the activity appeared to be released by the non-adherent fraction of the MNL, suggesting that it is not of macrophage origin. The activity was not sensitive to soya bean trypsin inhibitor, but was sensitive to trypsin and was not removed when stimulated conditioned medium was depleted of immunoglobulin and albumin by affinity chromatography. Purification by gel filtration on Sephadex G-100 and high-performance liquid chromatography with Bio-Sil TSK250 columns showed that the major activity had an apparent molecular weight of 35,000-43,000 under conditions in which ionic interactions and association with albumin were reduced; by using polyethylene glycol or high salt (0.46 M Na+) in the elution buffer.

Cell Adhesion

Tumour necrosis factor-beta modulates human neutrophil-mediated cartilage damage.

Human neutrophils, when cultured with human articular cartilage coated with heat-aggregated immunoglobulin G, degraded proteoglycan and inhibited its synthesis. Neutrophil-mediated degradation of cartilage was potentiated by recombinant human tumour necrosis factor-beta (TNF beta), although TNF beta alone did not alter proteoglycan degradation. This effect was seen when TNF beta, neutrophils, and cartilage were incubated together, and also when neutrophils were preincubated with TNF beta and washed before being added to cartilage. Similar results were obtained with living and killed cartilage. In contrast, pretreatment of neutrophils with TNF beta abrogated the neutrophil-mediated inhibition of proteoglycan biosynthesis. There was no effect of TNF beta alone on synthesis of proteoglycan.

Cartilage

Elastase in the pathogenic free-living amoebae Naegleria and Acanthamoeba spp.

The data showed that pathogenic free-living amoebae contain the proteolytic enzyme elastase. The levels of enzyme were similar in Naegleria fowleri, N. australianis italica, and Acanthamoeba culbertsoni A-1. No difference was found between elastase levels in a highly pathogenic N. fowleri and those in the same organism which had lost pathogenicity as a result of long-term axenic maintenance.

Acanthamoeba

Conditioned medium from stimulated mononuclear leucocytes potentiates the ability of human neutrophils to damage human articular cartilage.

Human neutrophils were able to degrade proteoglycan and inhibit its synthesis when incubated with human articular cartilage coated with heat aggregated immunoglobulin G. These effects were potentiated when culture medium conditioned by mononuclear leucocytes stimulated with killed Staphylococcus aureus was also present during the incubations. Neutrophils preincubated with this conditioned medium and washed before incubation with cartilage also showed an increased ability to degrade proteoglycan and inhibit its synthesis. The percentage of neutrophils binding to cartilage was significantly increased in the presence of this conditioned medium.

Adolescent

Stimulation of human neutrophil degranulation by mefloquine.

The effect of the antimalarial drug mefloquine on human neutrophil degranulation, chemiluminescence, superoxide production and viability was examined in vitro. Mefloquine was found to significantly stimulate the release of lysozyme, beta-glucuronidase and myeloperoxide at a concentration of 10 micrograms/ml (2.5 X 10(-5) M) without loss of cell viability. At 40 micrograms/ml mefloquine (1 X 10(-4) M) cell viability was significantly decreased. Mefloquine at 10 micrograms/ml also significantly increased the release of lysozyme and beta-glucuronidase but not myeloperoxidase when neutrophils were stimulated with opsonized zymosan. At a lower zymosan concentration myeloperoxidase release was also increased. Enzyme activity was not directly stimulated by mefloquine. Mefloquine at 10 micrograms/ml significantly increased luminol-dependent chemiluminescence but significantly inhibited lucigenin-dependent chemiluminescence when neutrophils were stimulated with opsonized zymosan. Under these conditions superoxide release, measured by cytochrome c reduction, was inhibited to a lesser degree. These results are discussed with reference to our previous report that mefloquine inhibits the neutrophil iodination reaction [Immunology 58: 125-130, 1986] and the use of mefloquine as an anti-inflammatory drug.

Cell Survival

Tumour necrosis factor beta (lymphotoxin) inhibits locomotion and stimulates the respiratory burst and degranulation of neutrophils.

The data presented here demonstrate that recombinant human tumour necrosis factor beta (rHuTNF beta; lymphotoxin) is a neutrophil modulator. The lymphokine inhibited the locomotion of neutrophils and augmented the neutrophil oxygen-dependent respiratory burst in response to N-formyl-L-methionyl-L-leucyl-L-phenylalanine (FMLP) and phorbol myristate acetate (PMA), as measured by their capacity to produce chemiluminescence, H2O2 and superoxide. The effects on the respiratory burst occurred at a tenth of the concentration of TNF beta required to inhibit locomotion. After incubation with TNF beta, the neutrophils could be washed without any reduction in their capacity to show augmented responses. The TNF beta enhanced granule enzyme (lysozyme and beta-glucuronidase) release of neutrophils stimulated with cytochalasin B-FMLP.

Cell Movement

A study of the glycerol phosphate acyltransferase and dihydroxyacetone phosphate acyltransferase activities in rat liver mitochondrial and microsomal fractions. Relative distribution in parenchymal and non-parenchymal cells, effects of N-ethylmaleimide, palmitoyl-coenzyme A concentration, starvation, adrenalectomy and anti-insulin serum treatment.

1. GPAT (glycerol phosphate acyltransferase) and DHAPAT (dihydroxyacetone phosphate acyltransferase) activities were measured both in subcellular fractions prepared from fed rat liver and in whole homogenates prepared from freeze-stopped pieces of liver. 2. GPAT activity in mitochondria differed from the microsomal activity in that it was insensitive to N-ethylmaleimide, had a higher affinity towards the palmitoyl-CoA substrate and showed a different response to changes in hormonal and dietary status. 3. Starvation (48 h) significantly decreased mitochondrial GPAT activity. The ratio of mitochondrial to microsomal activities was also significantly decreased. The microsomal activity was unaffected by starvation, except after adrenalectomy, when it was significantly decreased. Mitochondrial GPAT activity was decreased by adrenalectomy in both fed and starved animals. 4. Acute administration of anti-insulin serum significantly decreased mitochondrial GPAT activity after 60 min without affecting the microsomal activity. 5. A new assay is described for DHAPAT. The subcellular distribution of this enzyme differed from that of GPAT. The highest specific activity of DHAPAT was found in a 23 000 gav. pellet obtained by centrifugation of a post-mitochondrial supernatant. This fraction also contained the highest specific activity of the peroxisomal marker uricase. DHAPAT activity in mitochondrial fractions or in the 23 000 gav. pellet was stimulated by N-ethylmaleimide, whereas that in microsomal fractions was slightly inhibited by this reagent. The GPAT and DHAPAT activities in mitochondrial fractions had a considerably higher affinity for the palmitoyl-CoA substrate. 6. Total liver DHAPAT activity was significantly decreased by starvation (48 h), but was unaffected by administration of anti-insulin serum. 7. The specific activities of GPAT and DHAPAT were lower in non-parenchymal cells compared with parenchymal cells, but the GPAT/DHAPAT ratio was 5--6-fold higher in the parenchymal cells.

Acyltransferases