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P J Den Boer

Publications and source records attributed to P J Den Boer.

9 recordsLinked to original sources

Prevention of side effects by hemoglobin solutions; the selection of optimal test models, especially concerning thrombogenicity.

Modification of hemoglobin (Hb) by crosslinking and polymerization results in an improved oxygen release capacity and a prolonged vascular retention time. Modification improves the efficacy and prevents certain side effects. It eliminates leakage of Hb through the kidneys and accumulation in the tubuli. Another important issue is the degree of purification of Hb solutions. Traces of membrane fragments may cause immunogenic and thrombogenic side effects. To determine the contamination with erythrocyte membrane fragments, we developed assays for glycophorin-alpha and phospholipids. Special models were evaluated for testing the maximum allowable level of membrane contamination. As an in vitro model for thrombogenicity we used confluent monolayers of human umbilical vein endothelial cells. These cells were incubated with Hb solutions and subsequently tested on tissue factor (TF) procoagulant activity. TF was tested by the factor VII-catalyzed activation of factor X. The lower detection limit of this assay for endotoxin was 0.5 ng/ml. Hb did not cause any tissue factor expression even after prolonged incubation. No cooperation was found within endotoxin. As an in vivo test on thrombogenicity we developed a guinea pig model in which we can follow the generation of fibrinopeptide A (FPA). This is one of the most sensitive markers for thrombin activation in vivo. When slightly contaminated Hb solutions (phospholipid content 2 nmol/ml) were infused in the presence of factor Xa at a dose (9 micrograms/kg) which in itself did not induce FPA generation, we observed an increase in FPA levels in the plasma from 1.2 +/- 0.4 ng/ml to 5.2 +/- 0.7 ng/ml. Factor Xa is used to mimic a stressed clinical condition with activated coagulation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Immunochemical detection of DNA damage induction and repair at different cellular stages of spermatogenesis of the hamster after in vitro or in vivo exposure to ionizing radiation.

An immunochemical method has been used to detect quantitatively DNA damage caused by ionizing radiation in germ cells. With this method, DNA strand breaks as well as lesions converted into breaks in alkaline medium are measured as a function of controlled partial unwinding of the DNA, a time-dependent process starting at each breakage site, followed by the determination of the relative amount of single-stranded regions by use of a single-strand specific monoclonal antibody. With this method the induction and repair of DNA damage in different cellular stages of spermatogenesis (spermatocytes, round and elongated spermatids) of the hamster were investigated. Germ cells were irradiated in vitro with 60Co-gamma-rays, at doses between 0 and 5 Gy. A linear dose-response relationship was observed. Spermatocytes and round spermatids had normal, fast repair of the lesions when compared with the repair of these sites in cultured V79 or CHO cells and human lymphocytes. The elongated spermatids, however, showed hardly any repair. Similar results were obtained after the in vivo gamma-irradiation of hamsters with doses of 0. 4, and 8 Gy and subsequent isolation of germ cells. The damage was still detectable in the elongated spermatids at 24 h after exposure. The results of the experiments show substantial differences in repair capacity between different stages of germ cell development. Because DNA is the major target for mutation induction, this assay may be useful for assessment of the genetic risk of exposure of male germ cells to ionizing radiation, in relation to the stage of development.

Animals↗

Effects of glucose and adenosine on the ATP content of hamster spermatids.

Effects of glucose and adenosine on ATP metabolism were studied using isolated round spermatids from hamsters. The ATP content of the spermatids was strongly decreased after 1 h of incubation of the cells in the presence of 0.1 mM D-glucose. Glucose (1 mM) had no effect during 18 h of incubation in the presence of 12 mM sodium DL-lactate. However, 10 mM glucose caused an almost complete loss of cellular ATP in the presence of lactate. The effect of adenosine was estimated in the absence of glucose with lactate as the energy-yielding substrate. The cellular ATP content was approximately 4 and 8 nmol/10(6) cells, after 18 h of incubation in the absence and presence of 0.1 mM adenosine, respectively. This two-fold increase was prevented by inhibitors of adenosine uptake and phosphorylation and was slowly reversed after removal of the exogenous adenosine. Treatment of the cells with adenosine had no effect on the energy charge, which was higher than 0.90, and did not alter the cellular cyclic AMP content. The suggestion that the physiological ATP content of the round spermatids is probably stabilized in the region of 4 nmol/10(6) cells is discussed.

Adenine↗

Glutathione-dependent defence mechanisms in isolated round spermatids from the rat.

The different mechanisms for glutathione-dependent inactivation of a number of oxidizing compounds and other xenobiotics were studied using isolated round spermatids from rats. For the estimation of cellular GSH a flow cytometric assay was used. The cells were exposed to the oxidizing compounds cumene hydroperoxide and diamide, to study the activity of the GSH redox cycle. Incubation of the isolated cells with these compounds showed that the cells had a limited capacity to withstand the oxidative stress associated with their inactivation. The GSH level of the spermatids was maintained during 18 h of incubation in the presence of low concentrations of cumene hydroperoxide and diamide, whereas spermatids exposed to higher concentrations showed a loss of both GSH and ATP. No partial loss of GSH from individual cells was observed. Diethyl maleate and 1,2-epoxy-p-(nitrophenoxy)propane (ENPP) were used to study the effect of glutathione S-transferase-catalysed GSH conjugation on the GSH content of spermatids. Exposure of the cells to low concentrations of diethyl maleate and ENPP resulted in a decrease in GSH content. The flow cytometric analysis showed that this was a partial loss of GSH from all cells, rather than GSH depletion in a part of the cell population. This diminution of the cellular GSH pool, however, did not affect the ATP content and viability of the cells. The present results indicate that spermatids can utilize GSH-dependent defence mechanisms against a number of model compounds.

Adenosine Triphosphate↗

Effect of glutathione depletion on the cytotoxicity of xenobiotics and induction of single-strand DNA breaks by ionizing radiation in isolated hamster round spermatids.

The role of glutathione (GSH) in cellular protection mechanisms in round spermatids from hamsters was studied. Isolated spermatids were largely depleted of GSH by treating the cells for 2 h with the GSH conjugating agent diethyl maleate (DEM). This treatment resulted in a 90% decrease of the cellular GSH content, but did not affect the ATP content. Exposure of isolated spermatids to cumene hydroperoxide (CHP), a compound which is detoxicated by the GSH redox cycle, showed that the cytotoxicity of the peroxide was markedly potentiated by GSH depletion of the cells. The cytotoxicity was reflected by the cellular ATP content. A decrease of the ATP content of the GSH-depleted spermatids was observed at 5-6-fold lower CHP concentrations, as compared to control cells. An increased cytotoxicity in GSH-depleted cells was also observed using 1-chloro-2,4-dinitrobenzene (CDNB), which is a reactive compound that is detoxicated by glutathione conjugation. The induction of single-strand DNA breaks by gamma radiation was 3-5-fold higher in GSH-depleted spermatids as compared to control cells. This radiation-induced damage was estimated under hypoxic conditions (500 p.p.m. O2 in N2). GSH depletion did not affect the repair of single-strand DNA breaks following the irradiation. The present results indicate that cellular GSH has an important function in the defence mechanisms of round spermatids against peroxides, electrophilic xenobiotics and radiation-induced DNA damage.

Adenosine Triphosphate↗

Glutathione metabolism in cultured Sertoli cells and spermatogenic cells from hamsters.

Isolated spermatocytes and spermatids from hamsters contained a large amount of glutathione (GSH) (approximately 40 and 30 nmol GSH/mg protein, respectively), but showed a spontaneous decrease of GSH content during prolonged incubation (t1/2 approximately 35 h). Incubation of the germ cells in the presence of the glutathione biosynthesis inhibitor buthionine sulphoximine (BSO) provided evidence that the cells can perform glutathione synthesis. This synthesis, however, was not sufficient to maintain the GSH content of the isolated cells, or to restore the cellular GSH pool after depletion caused by exposure of the cells to the glutathione S-transferase substrate, diethyl maleate (DEM). Cultured Sertoli cells, containing approximately 10 nmol GSH/mg protein, had a more active BSO-sensitive GSH synthesis system. The Sertoli cells, but also tubule fragments containing Sertoli cells and germ cells, were able to restore their GSH pool after DEM-induced depletion. DEM treatment of the tubule fragments resulted in a 90% decrease of the GSH content of the spermatocytes and spermatids present within the fragments. The GSH levels of the tubule fragments and the enclosed germ cells were restored during a subsequent incubation in the absence of DEM. As indicated above, such a recovery was not observed for isolated spermatocytes and spermatids. The results illustrate the importance of Sertoli cell-germ cell interaction, and point to a role of Sertoli cells in glutathione synthesis by the germ cells.

Animals↗

Mechanism of action of (-)gossypol on ATP production in isolated hamster spermatids.

The ATP content of round spermatids isolated from hamsters was decreased 90% after 18 h of incubation in the presence of 4 microM-(-)gossypol and 0.10% bovine serum albumin (BSA). The (+)-enantiomer had no effect under these incubation conditions. The Michaelis-Menten constant Km and the maximal initial velocity Vmax of cellular LDH-C4 were not significantly altered after 18 h of incubation of the spermatids with (-)gossypol. Furthermore, there was no effect of (-)gossypol on the production of 14CO2 from L-[U-14C]lactate. It is concluded that (-)gossypol does not inhibit ATP production in spermatids by an effect on the sperm-specific LDH-C4 enzyme or on the mitochondrial oxidation of pyruvate. Rather, (-)gossypol may have an effect on the coupling between electron transport and ATP synthesis in the mitochondria. This action of (-)gossypol may not involve the H+-conducting activity of gossypol, but could be produced through binding of (-)gossypol to specific mitochondrial proteins.

Adenosine Triphosphate↗

Differential effects of (+)- and (-)-gossypol enantiomers on LDH-C4 activity of hamster spermatogenic epithelium in vitro.

Tubular fragments (spermatogenic epithelium) from immature hamsters were isolated and cultured with low doses of (+)- and (-)-gossypol enantiomers. The activity of lactate dehydrogenase isoenzyme LDH-C4 was estimated as a marker for spermatogenic cell development and alpha-ketoisovalerate was used as the substrate. In the absence of gossypol, the specific activity of LDH-C4 in the tubular fragments was increased 40% during incubation for 48 h. This developmental increase was suppressed by gossypol. The specific activity of LDH-C4 in the tubular fragments was lowered by gossypol, after 48 h of culture in the presence of low doses of racemic gossypol (1-4 microM) and 1% fetal calf serum. In this in-vitro system the (-)-enantiomer but not the (+)-enantiomer of gossypol affected the LDH-C4 activity. This is in agreement with other reports showing that only the (-)-enantiomer induces infertility. The observed action of gossypol on LDH-C4 activity in the tubular fragments may reflect gossypol-induced degeneration of spermatogenic cells. The present in-vitro system can be used to estimate the actions of gossypol derivatives, other investigational antifertility agents, and toxic agents on the spermatogenic epithelium.

Animals↗