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L Koenderman

Publications and source records attributed to L Koenderman.

114 records · Page 7Linked to original sources

Arachidonic acid can induce leukotriene C4 formation by purified human eosinophils in the absence of other stimuli.

Stimulation of purified human eosinophils with 50 microM arachidonic acid leads to the production of leukotriene C4, 15-hydroxy-eicosatetraenoic acid and 15-series leukotrienes. The ratio of the amounts of leukotriene C4 and 15-lipoxygenase products was found to be strongly dependent on the arachidonic acid concentration, being relatively large at low arachidonic acid concentrations and very small at high arachidonic acid concentrations. In the presence of 1 microM platelet-activating factor a significant elevation of leukotriene C4 formation is observed, whereas the formation of 15-lipoxygenase products remains unaltered. As arachidonic acid was found to be capable of inducing a fast, transient rise in the cytosolic free Ca2+ concentration, this explains at least partly its ability to induce the Ca2+-dependent formation of leukotriene C4.

Arachidonic Acid↗

An improved method for the isolation of eosinophilic granulocytes from peripheral blood of normal individuals.

A simple and improved procedure is described for the isolation of human eosinophils from normal individuals with about 2% eosinophils in their peripheral blood. This method comprises a preincubation of a mixed granulocyte preparation with 10 nM fMLP for 10 min at 37 degrees C followed by a one-step density centrifugation on isotonic Percoll. The recovery of eosinophils is 49 +/- 4% at 89 +/- 4% purity. Because of the relatively high rate of recovery, it is now possible to isolate eosinophils from blood samples as small as 20 ml. Because treatment with fMLP may alter the functional activity of the eosinophils, the following metabolic functions were tested: changes in cytosolic free Ca2+, oxygen consumption, chemiluminescence, chemotaxis, and leukotriene C4 formation. We found that 10 nM fMLP does not activate eosinophils in these assays, whereas 1 microM fMLP does (with the exception of chemotaxis). Furthermore, pretreatment of eosinophils with 10 nM fMLP did not influence the response to other stimuli in these assays. The usefulness of this method was evaluated by comparing it with three other previously described procedures. In our hands, only the method presented here enabled us to isolate eosinophils from normal individuals with about 2% eosinophils in their peripheral blood.

Cell Separation↗

Eosinophils do respond to fMLP.

Eosinophils were isolated from normal human blood by separation over Percoll gradients, which resulted in eosinophil suspensions of a purity higher than 95% and recoveries of about 65%. Normal human eosinophils were found to respond to formyl-methionyl-leucyl-phenylalanine (fMLP) at concentrations greater than 10(-7) mol/L with an increase in the concentration of intracellular free calcium, oxygen consumption, nitroblue tetrazolium reduction, and chemiluminescence. The maximal response of eosinophils to fMLP was lower than that of neutrophils isolated from the same blood samples and required at least ten times as much fMLP as was needed for neutrophils. Low fMLP concentrations (approximately 10(-8) mol/L), which in themselves did not stimulate O2 consumption by either eosinophils or neutrophils, primed these cells to respond to a suboptimal concentration of another stimulus. Purification of eosinophils after treatment of whole blood with fMLP showed that these eosinophils had lost their ability to respond to fMLP. We conclude that normal eosinophils do respond to fMLP and that therefore fMLP should not be used to isolate eosinophils.

Acridines↗

Platelet-activating factor (PAF-acether) induced leukotriene C4 formation and luminol dependent chemiluminescence by human eosinophils.

Human eosinophils are capable of synthesizing almost exclusively the strongly spasmogenic compound LTC4 when stimulated with either the calcium ionophore A 23187 or opsonized zymosan (OZ). Although PAF-acether in concentrations ranging from 10 nM to 1 microM is hardly capable of inducing significant LTC4 synthesis itself, it significantly enhances the OZ-induced LTC4 formation at a concentration of 1 microM. However, at a concentration of 10 microM, PAF-acether itself is capable of inducing LTC4 formation comparable with that induced by OZ. PAF-acether, at a concentration of 10 microM (and not at a concentration of 1 microM) is also capable of inducing a luminol dependent chemiluminescent response by eosinophils. The PAF-acether antagonist BN 52021 at a concentration of 0.1 mM not only partially inhibited the PAF-acether induced LTC4 formation but also the OZ induced LTC4 formation. Since an equal inhibition is found the inhibitory mode of action of BN 52021 is most likely directed towards a common pathway. Taken together, these results suggest that eosinophils may be triggered by high locally reached concentrations of PAF-acether to release inflammatory and bronchoconstrictive mediators. This may be of importance for the pathogenesis of the allergen induced late phase asthmatic reaction.

Eosinophils↗

Characteristics of hexokinase, pyruvate kinase, and glucose-6-phosphate dehydrogenase during adult and neonatal reticulocyte maturation.

Erythrocytes from adults and newborn infants (at term and premature) were separated by Percoll density gradient centrifugation into four fractions of increasing density. Glycolytic enzymes, especially the age-dependent ones, hexokinase (EC 2.7.1.1, HK), pyruvate kinase (EC 2.7.1.40, PK), and glucose-6-phosphate dehydrogenase (EC 1.1.1.49, G6PD) were studied during reticulocyte maturation and further red cell senescence. Analysis of the fraction with lowest density showed an almost linear and steep decline of HK, PK, and G6PD activity with a decreasing number of reticulocytes. In the next three fractions of increasing density, the activity decline was far less. These data are therefore illustrative for a biphasic activity decay pattern of HK, PK, and G6PD during both adult and neonatal red cell aging. The strong decline in HK activity could not be ascribed to the disappearance of a particulate (mitochondrial) bound fraction of the enzyme during reticulocyte maturation. All hexokinase activity in human reticulocytes was found to be cytosolic in contrast with rabbit reticulocytes in which 70% of HK activity was particulate.

Adult↗

Age dependent behaviour of red cell glycolytic enzymes in haematological disorders.

The age dependent behaviour of 11, mainly glycolytic, red blood cell enzymes in 26 patients with various haematological disorders has been investigated after separation of red blood cells by discontinuous density gradient centrifugation. The frequency of enzyme deficiencies in the old cells of these patients was significantly increased in comparison with the unseparated cells, 29 and 13 deficiencies, respectively. Particularly hexokinase activity, although normal or even increased in unseparated cells, was found deficient in old cells in seven cases. In addition, an increased number of phosphofructokinase deficiencies was observed in the patients' old cells (eight cases) as compared to the unseparated cells (three cases). However, the red blood cells of the majority of these patients were found to contain increased enzyme activities, irrespective of cell age. Enzyme activities in the youngest cell population did not correlate with the reticulocyte count. Cases of high pyruvate kinase and hexokinase activities were studied for kinetical, electrophoretical and immunological properties of the respective enzymes, but no abnormalities could be demonstrated, indicating an increased synthesis of these enzymes.

Centrifugation, Density Gradient↗