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C Stournaras

Publications and source records attributed to C Stournaras.

53 records · Page 3Linked to original sources

Steroid hormones regulate the release of immunoreactive beta-endorphin from the Ishikawa human endometrial cell line.

Immunoreactive beta-endorphin (IR-beta END) is present in human endometrium. Several indirect lines of evidence suggest that endometrial beta END is under steroid hormone control, i.e. IR-beta END is detectable in the secretory, but not the proliferative, endometrium, and progesterone administration increases the concentration of IR-beta END in uterine secretions of ovariectomized gilts. To study the effect of steroid hormones on endometrial beta END, we first questioned whether Ishikawa human endometrial adenocarcinoma cells (which respond to steroid hormones) express the proopiomelanocortin (POMC) gene. Indeed, on Northern blot analysis, a RNA similar or identical in size to pituitary POMC mRNA was present in Ishikawa cell RNA extracts. IR-beta END was also present in Ishikawa cell extracts and culture medium, which coeluted with synthetic human beta END in a Sephadex G-50 column. Ishikawa cells released most of their IR-beta END into the culture medium. Estradiol decreased the release of IR-beta END from Ishikawa cells, an effect that was dependent upon dose and time. The maximal effect was observed after a 4-day exposure to 10 nM estradiol (44 +/- 6% of the control value; n = 6; P less than 0.001). This effect was almost completely counteracted by a 100-fold excess of the antiestrogen 4-hydroxytamoxifen. Progesterone and dihydrotestosterone did not have a statistically significant effect on IR-beta END release. Dexamethasone had effects similar to those of estradiol, i.e. decreased the release of IR-beta END in a time- and dose-dependent manner. The maximal effect was detected after a 4-day exposure to 10 nM dexamethasone (53 +/- 6% of the control value; n = 6; P less than 0.001). Interestingly, the antiprogestin-antiglucocorticoid RU486 exhibited agonistic properties, i.e. diminished the release of IR-beta END in a time- and dose-dependent fashion, possibly via the glucocorticoid receptor. Its maximal effect was reached after a 4-day exposure to 10 nM RU486 (55 +/- 6% of the control value; n = 6; P less than 0.001). In conclusion, our data demonstrate that the release of IR-beta END from Ishikawa cells in culture is inhibited by estradiol and dexamethasone, suggesting that endometrial beta END is under estrogen and glucocorticoid regulation, as is the case with hypothalamic and pituitary POMC-derived peptides. This is the first time that the in vitro release of a peripheral-extracranial POMC-derived peptide has been found to be under the direct control of estrogens and glucocorticoids.

Dexamethasone↗

Interaction of captan with mammalian microtubules.

Using turbidometry, electron microscopy and immunofluorescent microscopy experiments we studied the effect of captan, a widely used pesticide on mammalian microtubules and microfilaments. Turbidometry at 350 nm showed a dose-dependent inhibition of tubulin assembly incubated with captan. The pesticide, given at equimolar concentration with tubulin (30 microM), caused the total inhibition of microtubule formation, while at lower concentrations (5-20 microM) the inhibition of tubulin polymerization was less extensive. At the same concentration range (5-30 microM), captan also promoted the disassembly of performed microtubules. The results of the in vitro effects of captan with microtubules were confirmed in parallel by electron microscopic studies. In vivo, captan caused also depolymerization of microtubules in cultured mouse fibroblasts as shown by indirect immunofluorescent staining of tubulin. The extent of microtubules disassembly was concentration- and time-dependent. While incubation of the cells with 10 microM captan for 3 h disturbs totally the microtubular structures, incubation with 5 microM captan needs 12 h for the same effect. Recovery of microtubules was observed, when preincubated cells were extensively washed. No interaction of this drug with equimolar concentration of G- or F-actin could be observed in vitro, as shown by polymerization experiments. In line with this, the fluorescent actin pattern in mouse fibroblasts incubated with 10 mM captan for up to 12 h did not seem to be altered. From these results it is concluded that captan interacts in equimolar concentrations with tubulin affecting the assembly and disassembly of microtubules in vitro and in cultures of mammalian cells.

Actin Cytoskeleton↗

The antiglucocorticoid RU486 downregulates the expression of interleukin-2 receptors in normal human lymphocytes.

The effects of the antiglucocorticoid RU486 on the expression of low and high affinity interleukin-2 receptors (IL-2R) in phytohaemagglutinin (PHA)-activated human peripheral blood lymphocytes were investigated. We demonstrated that RU486 inhibits in a dose-dependent way the expression of both classes of IL-2R, thereby mimicking the effects of the glucocorticoid agonist dexamethasone. The maximal effect on the low affinity binding sites was observed at 10 microM (28 +/- 2% of control, P less than 0.001) and on the high affinity IL-2R at 1 microM (from 2938 +/- 74 to 437 +/- 108 binding sites per cell, P less than 0.001). This inhibition of IL-2R expression occurs at a pretranslational level since RU486 decreased the accumulation of beta-chain IL-2R mRNA transcripts. Our data support the concept that the antiglucocorticoid RU486 at pharmacological concentrations can exert agonistic-immunosuppressive effects.

Blotting, Northern↗

Glutathionyl(cysteine-374) actin forms filaments of low mechanical stability.

Rabbit muscle actin reacts with 2,4-dinitrophenylglutathionyldisulfide, forming a mixed disulfide in position 374. the product S-(cysteine-374)glutathionyl actin forms filaments which are easily disrupted under shearing stress. Even weak mechanical strain, as exerted, for example, during capillary viscometry or heating the solution to 37 degrees C, leads to considerable breakage of these filaments. Because of spontaneous repair which consumes ATP, the mechanically broken filaments exhibit an approx. 6-fold enhanced steady-state ATPase activity as compared to normal F-actin. Monomers of glutathionyl actin have a reduced affinity for their bound nucleotide and a slightly increased critical concentration. Disruption of the filaments and enhanced ATPase activity are reversed by the addition of KCl or the mushroom toxin phalloidin. By the large stabilizing effects of KCl and phalloidin on glutathionyl actin filaments we propose glutathionyl actin as a tool for detecting filament-stabilizing agents and for studying the different mechanisms of filament stabilization.

Actin Cytoskeleton↗

Triethyllead-induced inhibition of proliferation of normal human lymphocytes through decreased expression of the Tac chain of interleukin 2 receptor.

Triethyllead (Et3Pb+) in concentrations 10(-5) to 10(-6) M has been shown to inhibit several key cellular molecular systems. In order to evaluate the effect of Et3Pb+ on the human immune system, the mitogen-induced cell proliferation of peripheral blood mononuclear cells was studied in the presence of Et3Pb+. Preincubation of normal T-lymphocytes with 10(-6) M Et3Pb+ for 1-4 h, which has been shown to be non-cytotoxic, was sufficient to inhibit subsequent mitogenic-induced cell growth. The Et3Pb(+)-induced impairement of the in vitro proliferation of mitogen-activated normal T-cells was due to a dose-dependent decreased expression of the p55 polypeptide chain (Tac molecule) of the interleukin-2 receptor (IL-2-R), which could not be enhanced by exogeneously added recombinant interleukin 2 (rIL-2). Conversely, the same concentrations of Et3Pb+ could not inhibit the mitogen-induced expression of MHC class II molecules and the transferin receptor on activated T-cells. The impaired membrane expression of p55 on T-cells induced by Et3Pb+ was due to a decrease of Tac mRNA transcripts as showed by Northern blot analysis. This effect seems to be specific since in parallel experiments Et3Pb+ could not inhibit both the accumulation of actin mRNA and the production of IL-2 by Et3Pb(+)-treated mitogen-activated cells. The effect of this organolead compound was also associated with a dose-dependent decrease of the Na(+)-K(+)-ATPase activity of normal lymphocytes. These results indicate that Et3Pb+ could affect specifically T-cell proliferative responses through an imbalance of the IL-2/IL-2-R system.

Blotting, Northern↗

Inhibition of cellular activities by triethyllead. Role of glutathione and accumulation of triethyllead in vitro.

We investigated the interaction of triethyllead with ATP-coupled cellular enzymatic activities and the role of GSH to reverse the observed inhibition of these enzymes. Triethyllead inhibited the membrane bound Na+-K+-ATPase from HeLa cells (IC50 12 microM) and the ATP-hydrolysing activity of the mitochondrial F0-F1-ATPase complex (IC50 17 microM). Addition of 1 mM GSH reversed both enzyme activities totally, whereas lower GSH concentrations showed a less pronounced effect. Surprisingly, in freshly isolated rat liver mitochondria the ATP-synthesizing activity was also inhibited by triethyllead (IC50 16 microM), in spite of a measured high intramitochondrial GSH concentration (up to 10 mM). Further experiments in isolated submitochondrial particles revealed that ATP-synthesis and ATP-hydrolysis were inhibited by triethyllead with similar IC50 values, and both activities could be protected in vitro from the organolead compound in the presence of 1 mM GSH. Thus in all activities tested in vitro a high excess of GSH over triethyllead (greater than or equal to 25-fold) is necessary to restore the inhibited enzymes. The intramitochondrial triethyllead concentration was further determined after incubation of intact mitochondria with 10 microM of the organolead compound. The organolead concentration measured was as high as 600 microM. This means that in intact mitochondria there exists only a ca. 16-fold excess of GSH, which has been shown to be insufficient to protect ATP-synthesizing and ATP-hydrolyzing activities of the F0-F1-ATPase from triethyllead in vitro. We concluded that in intact mitochondria the F0-F1-ATPase complex is inhibited by triethyllead due to its accumulation in the matrix.

Animals↗

Thiol group reactivity and polymerization of actin in the presence of ATP analogs.

We have investigated polymerization and the number of SH-groups of monomeric actin exposed in the presence of (beta, gamma)-substituted ATP-analogs. Actin, when depolymerized in a buffer containing 10 equiv. of APPCP exposes 4 thiol groups. The time course of the SH-titration is similar to that obtained when F-actin is depolymerized in a nucleotide free buffer. When actin is depolymerized in a buffer containing 10 equiv. of APPNP it also exposes 4 thiols. However, thiol-titration follows different kinetics. While one SH group reacts quickly the reaction of 3 others is retarded. We conclude that APPNP exhibits a shielding effect on part of the thiols for a period of time, while APPCP does not. In agreement with this, in the presence of APPNP yield of polymerization as well as stability against denaturation are distinctly higher than without added nucleotide or in the presence of APPCP. In line with this a hydrolysis product, most probably APPNH2, was associated with the filaments, as indicated by the replacement of tritiated ADP during polymerization, and from analysis of the attached nucleotide. Under the same conditions APPCP replaced tritiated ADP only to a small extent. The data indicate that APPNP interacts with monomeric actin much less than ATP and still less than ADP, but more so APPCP. APPNP is cleaved by actin ATPase and a hydrolysis product is incorporated into filaments.

Actins↗

The interaction of triethyl lead with tubulin and microtubules.

The impact of triethyl lead chloride was studied on: (i) the in vitro assembly and disassembly of microtubules from porcine brain by turbidometry and electron microscopy, (ii) the microtubule system of living mammalian cells using immunofluorescence microscopy, (iii) cell motility and chemotaxis employing the methods of phagokinetic track formation and the Boyden chamber assay, respectively, and (iv) thiol groups of the protein tubulin by their titration in the presence and absence of the organic lead compound. Triethyl lead chloride inhibited microtubule assembly and depolymerized preformed microtubules in vitro and in living cells. Random motility of cells was not markedly inhibited by triethyl lead chloride, whereas chemotaxis (directed cellular movement) was strongly inhibited. Triethyl lead chloride was found to interact with 2 thiol groups of the tubulin dimer. The interaction of triethyl lead chloride with the tubulin/microtubule system in vivo likely causes aneuploidy and is at least partly responsible for the cytotoxicity of the drug.

Animals↗

Heterotypic and homotypic associations between the nuclear lamins: site-specificity and control by phosphorylation.

Using purified components in affinity chromatography and blot binding assays, we have found that rat liver lamins A, B, and C can associate in homotypic and heterotypic fashions. Heterotypic A-B and C-B complexes are unusually stable and involve the common amino-terminal domain of lamins A and C, but not their helical "rod" domain. A synthetic peptide, comprising the first 32 amino acid residues of lamins A and C, is able to fully compete with the intact molecules for binding to lamin B. Conversely, heterotypic A-C associations and homotypic A-A and C-C interactions appear significantly weaker than A/C-B binding and do not involve the lamin A and C amino-terminal domain. Homotypic B-B complexes are not formed to any considerable extent unless isolated lamin B subunits are "superphosphorylated" in vitro with protein kinase A. However, when lamins A and C are similarly modified, no changes in their binding specificity can be detected. These data suggest that the nuclear lamina, unlike other multicomponent intermediate filaments, constitutes a nonobligatory heteropolymer. They also indicate that cAMP-dependent phosphorylation of interphase lamin B could cause remodeling of the lamina and establishment of homopolymeric domains.

Adenosine Triphosphate↗

Changes in OD at 235 nm do not correspond to the polymerization step of actin.

Discrepancies were observed when the polymerization of rabbit muscle actin was monitored by delta OD235 and viscometry (eta). For example, in the presence of (beta,gamma)-methyleno ATP, the delta OD signal was as large as with ATP although polymerization was very poor (eta 1.1, compared with eta = 1.7 in the presence of ATP). Furthermore, when monomeric actin, kept for 1 h in the presence of a stoichiometric equivalent of ADP, was exposed to conditions favoring polymerization (addition of MgCl2), a considerable delta OD235 signal appeared, although the actin had completely lost its polymerizability (eta = 1.0). We conclude that the observed changes in OD235 cannot reflect polymerization itself, but must be caused by another reaction preceding the assembly. Under normal conditions, this reaction is supposed to be the slowest step of filament formation and so to determine the velocity of the whole process. In conclusion, monitoring of actin polymerization by delta OD235 is a valid method only when polymerization has been assessed by another, independent method.

Actins↗

The molecular mechanism of interaction of Et3Pb+ with tubulin.

Triethyllead ion (Et3Pb+) was found to interact with 2 out of 18 thiol groups present in tubulin dimers. Specificity of the interaction was shown by the high affinity of Et3Pb+ to tubulin, by the fact that the 16 residual thiol groups in tubulin remained unaffected, and by the observation that other proteins with exposed thiol groups, e.g., actin, did not react with Et3Pb+. After complexation of the two thiol groups, tubulin in vitro had lost its capability for microtubule assembly. Likewise, polymerized tubulin disassembled on addition of the lead compound.

Actins↗

Nucleotide in monomeric actin regulates the reactivity of the thiol groups.

A new thiol reagent, 2,4-dinitrophenyl glutathionyl disulfide, allowed the characterization of four thiol groups in monomeric actin by stoichiometric reaction. The number of thiol groups exposed to the reagent was found to depend on the nucleotide bound. In the absence of ATP, G-actin exposed four thiol groups ( G4s ). On the addition of ATP (1 equiv), three of them were shielded. The resulting actin with one thiol group exposed ( G1s ) is the form of monomeric actin normally produced by depolymerization of F-actin in buffers containing ATP. G1s is stable over hours, while G4s , i.e., monomeric actin in ATP-free solution, is not. This must be concluded from the fact that the shielding effect of thiol groups induced by addition of ATP was lost within ca. 30 min probably due to denaturation of G4s to G4s *. Therefore, denaturation of monomeric actin must be understood in terms of loss of thiol shielding, rather than by oxidation of the thiol groups. Addition of equimolar amounts of Ca2+ significantly retarded the denaturation process. ADP (50 equiv) shielded only ca. two of the four thiol groups but, similar to ATP, protected actin from denaturation. Three ATP analogues (10 equiv) were tested but had no shielding effect. In the presence of these analogues actin ( G4s ) rapidly denatured (to G4s *) as in the absence of added nucleotides. It was shown that the thiol-shielding activity and the protective capacity of a nucleotide are interrelated with its binding capability to monomeric actin. G1s was found to be polymerizable as was G approximately 2s on the addition of ATP. No polymerization could be detected for G4s or G4s *.(ABSTRACT TRUNCATED AT 250 WORDS)

Actins↗

High cytotoxicity and membrane permeability of Et3Pb+ in mammalian and plant cells.

Cells of mammalian origin as well as those of higher plants appear to be very sensitive to triethyllead ion (Et3Pb+). Neuroblastoma cells kept in the presence of 1 microM Et3Pb+ lost their viability within 6 h. Growth of suspension culture cells of soybean (G. max(L.)Merr.) was inhibited by 1 microM Et3Pb+, and finally the cells died. Morphologically, Et3Pb+ caused the complete breakdown of microtubular structures in neuroblastoma cells; thus microtubules appeared to be the main target for the toxin. While in a previous study the effect of Et3Pb+ on microtubules has been well documented at concentrations of 50-200 microM 1, the present study demonstrates that the formation of microtubules from pig brain tubulin is disturbed at concentrations of Et3Pb+ as low as 0.5 to 1 microM. We conclude from these data that Et3Pb+ freely permeates the plasma membranes of mammalian as well as plant cells.

Animals↗

6-phospho-D-gluconate dehydrogenase from Pseudomonas fluorescens. Properties and subunit structure.

1. The 6-phospho-D-gluconate dehydrogenase (decarboxylating) (EC 1.1.1.44) from Pseudomonas fluorescens, a B-side stereospecific enzyme, is active with both NAD+ and NADP+, having a specific activity of the homogeneous enzyme of 121 mumols NADH and 23 mumols NADPH, respectively, formed min-1 mg protein-1. The pI of the native enzyme is 4.62, the pH optimum is about 8.2. 2. The molecular weight of the native enzyme has been determined to be 126000 by sedimentation equilibrium studies. The molecular weight of the polypeptide chains composing the enzyme has been found to be 32000 by dodecylsulfate/polyacrylamide gel electrophoresis and 31000 by sedimentation equilibrium studies in presence of 6 M guanidine hydrochloride. The native enzyme is composed of four polypeptide chains. 3. Reacting enzyme centrifugation studies gave at pH 8.2 a sedimentation coefficient s20, w of 8.04 S and a diffusion coefficient D20, w of 6.56 F, resulting in a molecular weight of 115000 for the catalytically active form. Thus, the enzyme is active as the tetramer. So far the enzyme from P. fluorescens is the sole 6-phospho-D-gluconate dehydrogenase (decarboxylating) composed of four polypeptide chains.

Amino Acids↗

Effect of hepatocyte swelling on microtubule stability and tubulin mRNA levels.

Incubation of isolated rat hepatocytes under conditions known to induce cell swelling caused several alterations in microtubule physiology. As shown by immunofluorescence microscopy experiments in the absence and presence of triethyllead or colchicine (two well-established microtubule inhibitors), an apparent stabilization of the microtubule network became evident in hepatocytes exposed to hypotonic (190 mosmol/L) conditions. A similar stabilizing effect was also observed upon cell swelling induced by addition of insulin (100 nmol/L) or glutamine (10 mmol/L). The differential microtubule stabilities were not attributed to a differential incorporation of the antimicrotubular agents into hepatocytes as shown by [3H]colchicine-uptake experiments. The swelling-induced alterations of microtubules may contribute to the swelling-induced changes of liver cell function: in perfused rat liver it was found that the established inhibitory effect of hypotonic cell swelling on hepatic proteolysis was largely abolished in presence of colchicine. Tubulin mRNA levels increased by 1.9-, 2.1- and 2.7-fold in isolated hepatocytes being exposed for 120 min to hypotonic medium, insulin, or glutamine, respectively. The results suggest an involvement of microtubular structures in the regulation of liver metabolism in response to alterations of the cellular hydration state.

Animals↗

Exposure of thiol groups and bound nucleotide in G-actin: thiols as an indicator for the native state of actin.

In monomeric actin the number of thiol groups exposed to thiol reagents and the nucleotide bound are found to be correlated. G-actin, prepared as normally in the presence of ATP, exposed one thiol group (nSH = 1). In the presence of 1 equivalent ADP, as found associated with G-actin preparations when no nucleotide is added, the protein exposed four thiol groups (nSH = 4). When G-actin was prepared in a high excess of ADP (50 eq.) two thiol groups became exposed (nSH = 2). Actin also exposed four thiol groups when depolymerized in buffers containing 10 eq. APCPP or APPCP, with a time course of the thiol-titration similar to that obtained when the protein was prepared in a nucleotide-free buffer. When actin was depolymerized in a buffer containing 10 eq. APPNP it also exposed 4 thiols; however, titration kinetics are different. In this case, one thiol group reacted quickly, while the reaction of the three others was retarded. Finally, when actin was depolymerized in the ADP-analog APCP it also exposed four thiol groups, with titration kinetics similar to those obtained for actin in nucleotide free buffer. It was concluded that addition of ATP induced a shielding effect on three out of four thiol groups in monomeric actin. ADP (50 eq.) shielded two of the four thiol groups, while ATP- and ADP-analogs had no shielding effect. The thiol shielding activity and the protective capacity of a nucleotide are interrelated. Actin preparations, in ATP or ADP (high excess) containing buffers, with one or two thiol groups exposed respectively, are stable and polymerizable over many hours. Actin prepared in buffers containing ATP- or ADP-analogs, exposing four thiol groups, is denatured, losing its capacity to polymerize within few hours. Finally, actin preparations in nucleotide free buffers, with four thiol groups exposed, are rapidly denatured, losing the capacity to polymerize within less than one hour. Thus denaturation of monomeric actin must be understood in terms of loss of thiol shielding. In actin preparations generally the ability to polymerize was lost when, even after addition of ATP to solutions of G-actin, the number of thiol groups exposed was greater than two. It was concluded that in monomeric actin changes in the accessibility of thiol groups, loss of nucleotide binding capacity as well as loss of the polymerization capability of the protein are events which probably represent different aspects of the denaturation process in G-actin.(ABSTRACT TRUNCATED AT 400 WORDS)

Actins↗