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T Zakar

Publications and source records attributed to T Zakar.

30 records · Page 2Linked to original sources

Protein kinase-C stimulatory activity in human amnion cytosol.

Cytosolic preparations from human amnions at term were tested for the presence of endogenous modulators of protein kinase-C (PKC) activity. Tissues were obtained from 14 patients undergoing cesarean section (CS) and 14 patients after spontaneous delivery (SL). PKC activity was significantly greater in cytosols from CS than SL amnion (1.65 +/- 0.04 vs 0.73 +/- 0.2 pmol/min, respectively; mean +/- SE; n = 14 CS; n = 14 SL; P < 0.05). When amnion cytosols were mixed with a control preparation of PKC (rat brain cytosol partially purified on diethylaminoethyl), PKC activity was significantly increased compared to the control value (control, 12.81 +/- 2.1; control + CS, 22.19 +/- 1.5; control + SL, 21.98 +/- 0.7 pmol/min). The stimulation of PKC was dose dependent. The PKC stimulatory factor in amnion cytosol was stable to heat treatment at 80-90 C for 2 min (control + heat-treated CS, 23.20 +/- 1.2; control + heat-treated SL, 24.49 +/- 1.0 pmol/min) and substituted for phosphatidylserine and diacylglycerol in the PKC assay (control, no lipids, 0.05 +/- 0.04 pmol/min; control + amnion cytosol, no lipids, 9.60 +/- 1.06 pmol/min). The PKC stimulatory factor was calcium dependent, was not extractable in organic solvents, and was greater then 100,000 mol wt. Thus, the human amnion contains a PKC stimulatory factor which may modify or mediate the cellular response to extracellular stimulators of the PKC pathway.

Amnion↗

Glucocorticoid stimulation of amnion cell prostaglandin synthesis: suppression by protein kinase C inhibitors and independence of phorbol ester-sensitive protein kinase C.

Glucocorticoids stimulate the prostaglandin E2 production of confluent amnion cell cultures, but have no stimulatory effect on the PGE2 output of freshly isolated human amnion cells. Since protein phosphorylation may modify the responsiveness of target cells to steroids, and activators of protein kinase C (PKC), as well as corticosteroids, promote amnion cell PGE2 output by stimulating the synthesis of prostaglandin endoperoxide H synthase (PGHS), we investigated the possibility that PKC is involved in the glucocorticoid-induction of PGE2 synthesis in cultured amnion cells. The dexamethasone-induced PGE2 output of arachidonate-stimulated cells was blocked by the protein kinase inhibitors staurosporine, K-252a, H7, HA1004, and sphinganine, in a manner consistent with their effect on PKC. However, dexamethasone increased the PGE2 production of cultures treated with maximally effective concentrations of the PKC-activator compound TPA. Moreover, dexamethasone stimulated PGE2 synthesis in cultures which were desensitized to TPA-stimulation by prolonged phorbol ester treatment. Concentration-dependence studies showed that staurosporine completely (greater than 95%) blocked glucocorticoid-provoked PGE2 synthesis at concentrations which did not inhibit TPA-stimulated prostaglandin output, and that K-252a inhibited the effect of TPA by more than 95% at concentrations which decreased the effect of dexamethasone only moderately (approximately 40%). Dibutyryl cyclic AMP had no influence on the basal- or dexamethasone-stimulated PGE2 production, and on the staurosporine inhibition of the steroid effect. These results show that glucocorticoids and phorbol esters control amnion PGE2 production by separate regulatory mechanisms. It is suggested that the response of human amnion cells to glucocorticoids is modulated by protein kinase(s) other than phorbol ester-sensitive PKC and cyclic AMP-dependent protein kinase.

Alkaloids↗

Prostaglandin synthesis regulation in human amnion tissue: involvement of protein kinase C and dependence on ribonucleic acid and protein synthesis.

The role of protein kinase C (PKC) in the control of prostaglandin production by the human amnion was studied. Amnion membranes delivered spontaneously at term were minced and treated with phorbol esters, protein kinase inhibitors, cycloheximide, and actinomycin D; prostaglandin E2 (PGE2) output then was determined. Untreated tissue produced 3.97 +/- 1.13 ng PGE2/micrograms DNA/14 h (mean +/- SEM, n = 19). Phorbol dibutyrate and 12-O-tetradecanoylphorbol-13-acetate (TPA) stimulated PGE2 output up to 20-fold in a concentration-dependent manner with potencies corresponding to their efficacy as PKC activators. Four-beta-phorbol and 4-methoxy-TPA, which do not stimulate PKC, did not affect PGE2 output. Stimulation by TPA was blocked by staurosporine (IC50 = 57 nM) and H7; however, these PKC inhibitors did not decrease basal prostaglandin production. Cycloheximide inhibited basal and TPA-promoted PGE2 production and amino acid incorporation. Actinomycin D abolished TPA stimulation without decreasing unstimulated prostaglandin synthesis. These results show that amnion PGE2 production after labor is not maintained by PKC action, but PKC activation in this tissue causes a protein synthesis-dependent and RNA synthesis-dependent increase of PGE2 output. However, basal PGE2 production is dependent upon protein synthesis which, presumably, utilizes pre-existing mRNAs.

Amnion↗

Regulation of prostaglandin synthesis in the human amnion.

An increase in prostaglandin synthesis by intrauterine tissues may be responsible for labour initiation and/or maintenance in humans. In all studies to date, the amnion is the intrauterine tissue whose prostaglandin output consistently increases with the onset of labour. This may be due, in part, to acute activation of the phospholipases A2 and C and to an increase in the specific activity of prostaglandin H synthase (PGHS). A number of factors exist in amniotic fluid, the fetal membranes, the decidua and the placenta that can increase PGHS specific activity. Some of these factors may increase PGHS enzyme activity by gene expression and protein synthesis. Preliminary evidence is presented that suggests the hypothesis that PGHS specific activity increases before the onset of labour rather than as a consequence of labour initiation, and that idiopathic preterm labour may frequently be associated with increased PGHS activity. Hence, activation of PGHS gene expression and/or protein synthesis may be causal for term and preterm labour.

Amnion↗

Dexamethasone stimulates arachidonic acid conversion to prostaglandin E2 in human amnion cells.

The purpose of this investigation was to study the mechanism of stimulation of PGE2 output from human amnion epithelial cells by the synthetic glucocorticoid dexamethasone. Cells incubated in serum-free pseudo-amniotic fluid produced very low levels of PGE2, even when arachidonic acid (1 microM) was present. Pretreatment of cells with dexamethasone (50 nM) for 21 h increased the PGE2 output 6- to 7-fold in 2-h incubations only in the presence of arachidonic acid. The RNA synthesis inhibitor, actinomycin D (1 microgram/ml), and the protein synthesis inhibitor, cycloheximide (40 micrograms/ml), each blocked dexamethasone-stimulated arachidonic acid conversion to PGE2. The time course of these events suggests that dexamethasone first initiates RNA synthesis. Acetylsalicylic acid, a specific and irreversible blocker of prostaglandin endoperoxide H synthase (cyclooxygenase), was used to determine whether dexamethasone could stimulate new enzyme synthesis. Cells treated first with acetylsalicylic acid (30 min) then dexamethasone (22 h) produced as much PGE2 in response to 1 microM arachidonate as did cells exposed to dexamethasone only. Exposing cells to acetylsalicylic acid after dexamethasone completely eliminated PGE2 output. These data suggest that dexamethasone stimulates the synthesis of prostaglandin endoperoxide H synthase.

Amnion↗

The action of epidermal growth factor on human amnion prostaglandin E2 output.

The mechanism of stimulatory action of epidermal growth factor on term human amnion prostaglandin E2 production was studied. Monolayer cultures of amnion epithelial cells from spontaneous vaginal deliveries were preincubated for 24 h with serum-free media and treated with epidermal growth factor, calcium ionophore A23187 (4.5 microM), and arachidonate. Cumulative prostaglandin E2 output was not stimulated by epidermal growth factor (less than or equal to 200 ng/mL) or A23187 alone or the two added together. Pretreating the cells with epidermal growth factor for at least 2 h followed by A23187 or arachidonate (in the continuing presence of epidermal growth factor), however, stimulated prostaglandin E2 output up to 14-fold. The maximum effect of epidermal growth factor was attained at 1-10 ng/mL, while the EC50 was 0.2-0.32 ng/mL. Ionophore- or arachidonate-promoted prostaglandin E2 output was not stimulated by pretreatment with platelet-derived growth factor, fibroblast growth factor, and beta-transforming growth factor. Cycloheximide added before, at the same time as, or up to 30-60 min after epidermal growth factor completely abolished the stimulation. Epidermal growth factor did not affect [14C]arachidonate incorporation into cells or cell lipids. These results suggest that epidermal growth factor promotes, specifically and in a protein synthesis dependent manner, the conversion of arachidonate to prostaglandin E2. The provision of exogenous or endogenously liberated arachidonate is also necessary for enhanced amnion prostaglandin E2 production.

Amnion↗

Stimulation of human amnion prostaglandin E2 production by activators of protein kinase-C.

We tested the possibility that the activation of protein kinase-C by the tumor-promoter phorbol ester 12-O-tetradecanoylphorbol-13-acetate (TPA) or diacylglycerol stimulates the production of prostaglandin E2 (PGE2) by the amnion. Confluent primary cultures of human amnion epithelial cells were adapted to serum-free medium and treated with the agonists for up to 8 h. Cumulative PGE2 output in the medium was measured by RIA. TPA, a potent activator of protein kinase-C, stimulated basal PGE2 output from less than 50 pg/well.5 h to 3 ng/well.5 h (P less than 0.01) in a time- and dose-dependent manner. 4-Methoxy-TPA, a weak tumor promoter derivative of TPA, was ineffective when tested in the same concentration range as TPA (1 nmol/L to 1 mumol/L). Neither calcium ionophore A23187 (20 nmol/L) nor arachidonate (1 mumol/L) stimulated PGE2 output alone, but each agonist potentiated the effect of TPA as much as 5-fold (P less than 0.01). 1,2-Dioctanoyl-sn-glycerol stimulated PGE2 output 4- to 7-fold (P less than 0.05), and this effect was potentiated by Ca ionophore and arachidonate. Studies involving actinomycin-D and cycloheximide indicated that the stimulatory effect of TPA was dependent on RNA synthesis during the first 60 min and on protein synthesis during the entire length of the phorbol ester treatment period (300 min). TPA was also able to stimulate PGE2 production after irreversible inactivation of PG endoperoxide synthase activity with acetylsalicylic acid. These results suggest that activation of protein kinase-C in amnion cells increases the de novo synthesis of the PG endoperoxide synthase enzyme in a RNA synthesis-dependent manner. Elevated intracellular calcium levels contribute to the stimulation apparently by increasing the availability of endogenous arachidonate for subsequent conversion to PGE2.

Amnion↗

Glucocorticoids stimulate prostaglandin synthesis in human amnion cells by a receptor-mediated mechanism.

Prostaglandin E2 (PGE2) synthesis by human amnion increases with the onset of labor and is thought to participate in the initiation and maintenance of parturition. Since cortisol levels increase in amniotic fluid in late pregnancy, we studied the effects of glucocorticoids on cultured term human amnion cell PGE2 output. In 24-h studies, the synthetic glucocorticoid dexamethasone stimulated basal PGE2 output 2-fold over control levels at 16-500 nmol/L. PGE2 output was dramatically stimulated (greater than 10-fold) when, after dexamethasone pretreatment, the cells were incubated with calcium ionophore A23187 or arachidonic acid (AA) for 2 h. Maximum effects were achieved at 31 nmol/L dexamethasone. Basal PGE2 output was stimulated at 12 h of dexamethasone treatment, whereas A23187- or AA-stimulated PGE2 output was enhanced after 3-6 h of dexamethasone pretreatment. Cortisol (50 and 500 nmol/L) also enhanced basal and stimulated PGE2 output, while dehydroepiandrosterone sulfate, 17 beta-estradiol, and progesterone were ineffective. The glucocorticoid receptor antagonist RU 38486 attenuated dexamethasone-enhanced basal and stimulated PGE2 output. Dexamethasone pretreatment had no effect on basal or stimulated PGE2 output from cultured term chorion cells, suggesting tissue specificity. We conclude that glucocorticoids specifically enhance PGE2 output from cultured amnion cells via a receptor-mediated mechanism. We speculate that the action of glucocorticoids is to increase the capacity of the cells to convert AA to PGE2.

Amnion↗

Prostaglandin endoperoxide synthase kinetics in human amnion before and after labor at term and following preterm labor.

To determine whether the kinetics of prostaglandin endoperoxide synthase (PGHS, commonly known as cyclooxygenase) in human amnion change with labor onset or between preterm and term labor, a specific enzyme assay was developed and characterized. The assay was linear for time (0-8 min) and protein concentration (5-30 micrograms/250 microliters incubation volume). The optimum pH was 8.0-8.5, and the enzyme reaction reached saturation at 10-20 microM arachidonic acid. Flufenamic acid was more efficacious than ibuprofen in the presence of 1 mM tryptophan in inhibiting enzyme activity. The Km and Vmax of PGHS were determined in 10 amnions obtained at elective caesarean section before labor onset (CS) at 39.3 +/- 0.8 wk gestational age (mean +/- SD, range = 38.5-41 wk) and 9 amnions obtained following spontaneous labor and vaginal delivery (SL) at 39.6 +/- 0.8 wk (range = 38.5-41 wk). The Km values were 1.4 +/- 1.2 mumol/l (CS) and 2.2 +/- 1.5 mumol/l (SL) (not different). However, the Vmax increased significantly (p < 0.05) from 11 +/- 8 (CS) to 19 +/- 4 (SL) pg PGE2/micrograms protein/min. In eight preterm amnions obtained following spontaneous labor and delivery at 32.9 +/- 2.1 wk (range = 29-36 wk), the Km and Vmax were 2.0 +/- 1.2 mumol/l and 17 +/- 9 pg PGE2/micrograms protein/min, respectively. Neither of these values was different from those of CS or SL amnions. None of the preterm pregnancies displayed histological evidence of infection. These results suggest that an increase in the mean amnion PGHS maximum velocity occurs in association with the onset of labor at term. The mean Vmax of PGHS in amnions obtained from idiopathic preterm spontaneous deliveries is between the CS and SL term values, reflecting, perhaps, multiple etiologies for preterm delivery.

Amnion↗

Prostaglandin endoperoxide H synthase-1 and -2 mRNA levels and enzyme activity in human decidua at term labor.

OBJECTIVE: To determine the labor-related changes of prostaglandin endoperoxide H synthase (PGHS) activity and PGHS-1 and -2 abundance in term decidua and to assess the contribution of the PGHS isoforms to the total PGHS activity present in the tissue. METHODS: Decidua was collected after elective cesarean delivery (CD) or spontaneous labor (SL) at term. Prostaglandin endoperoxide H synthase activity was determined in microsomal fractions, and PGHS-1 and -2 mRNA levels were measured by ribonuclease protection assays. Prostaglandin endoperoxide H synthase-1 and -2 mRNAs were localized in tissue sections by in situ hybridization. RESULTS: Prostaglandin endoperoxide H synthase specific activity in decidua microsomes at CD was 111 +/- 3 pg prostaglandin-E2/minute/microgram protein (mean +/- standard error, N = 10 patients), not different from enzyme activity measured after SL (110 +/- 27 N = 10 patients, P = .97, Wilcoxon's rank sum test). Prostaglandin endoperoxide H synthase-1 mRNA abundance in CD tissues was 0.283 +/- 0.047 relative densitometric units (mean +/- standard error, n = 26 patients), which did not change with labor (SL: 0.329 +/- 0.073, n = 20 patients, P = .68). Prostaglandin endoperoxide H synthase-2 mRNA abundance was also unaffected by labor (CD: 0.933 +/- 0.255, n = 27 patients; SL: 0.714 +/- 0.179, n = 23 patients, mean +/- standard error, P = .66). Prostaglandin endoperoxide H synthase specific activity was positively and significantly (P < .05) correlated with both PGHS-1 and -2 mRNA levels. In situ hybridization showed the pervasive presence of both PGHS mRNAs in decidua cells with no detectable changes associated with labor. CONCLUSION: Both isoforms of PGHS are present in term decidua and contribute to enzyme activity and prostaglandin production. Mechanisms regulating decidual prostanoid biosynthesis at labor do not involve changing the levels of expression of the two PGHS isoforms.

Cesarean Section↗