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M Eigenthaler

Publications and source records attributed to M Eigenthaler.

29 records · Page 2Linked to original sources

Endothelium-dependent phosphorylation of vasodilator-stimulated protein in platelets during coronary passage.

Compounds that elevate intraplatelet guanosine 3',5'-cyclic monophosphate (cGMP) or adenosine 3',5'-cyclic monophosphate (cAMP) stimulate the phosphorylation of a 46- to 56-kDa thrombocyte protein designated "vasodilator-stimulated protein" (VASP), which is most likely involved in the regulation of adhesion/aggregation. We investigated whether endothelium-derived relaxing factor (EDRF)/nitric oxide (NO) and prostaglandin I2 (PGI2) affected VASP phosphorylation in washed human platelets that were injected into the coronaries of saline-perfused rabbit hearts (n = 22) and collected immediately after passage. The endothelial stimulator acetylcholine (ACh; 1 microM) significantly increased the concentration of cGMP (indicating release of EDRF) and PGI2 in the coronary venous effluent, as well as the concentration of cGMP and cAMP in platelets. Phosphorylation state of VASP increased from 32.1 +/- 2.9 to 64.8 +/- 2.7%. Inhibition of EDRF/NO synthesis by NG-nitro-L-arginine (30 microM) completely abolished the ACh-induced cGMP increase, attenuated the cAMP-elevation without affecting PGI2, and caused a 20.5 +/- 5.8% decrease of the phosphorylation state of VASP. Indomethacin (30 microM) virtually abolished ACh-induced increases of PGI2, cAMP (but not cGMP), and phosphorylated VASP. These results indicate that both EDRF/NO and PGI2 contribute to the regulation of VASP phosphorylation in platelets collected after a single coronary passage. Their synergistic inhibitory effects on platelet function may thus be mediated by a common effect on target proteins like VASP as well as by a secondary increase in cAMP in response to cGMP-elevating compounds such as EDRF.

Acetylcholine↗

Defective nitrovasodilator-stimulated protein phosphorylation and calcium regulation in cGMP-dependent protein kinase-deficient human platelets of chronic myelocytic leukemia.

The presence and functional role of the cyclic nucleotide signal transduction system was investigated in platelets from patients with myeloproliferative disorders. Platelets from certain patients with chronic myelocytic leukemia showed decreased expression of cGMP-dependent protein kinase, and platelets from two such patients were studied in some detail. These platelets had very little if any cGMP-dependent protein kinase but a normal level of cAMP-dependent protein kinase. They also contained a normal level of VASP (vasodilator-stimulated phosphoprotein, a specific substrate of both cAMP- and cGMP-dependent protein kinase), as well as a functionally intact prostaglandin E1-stimulated cAMP-mediated VASP phosphorylation. In contrast, sodium nitroprusside-stimulated VASP phosphorylation was severely impaired in these cGMP-dependent protein kinase-deficient platelets, despite an exaggerated cGMP response to sodium nitroprusside. Furthermore, whereas selective activation of the cGMP-dependent protein kinase by 8-(4-chlorophenylthio)-cGMP strongly inhibited the ADP- or thrombin-evoked calcium mobilization from intracellular stores in normal platelets, this agonist-evoked calcium response was not inhibited by the cGMP analog in cGMP-dependent protein kinase-deficient platelets. The results demonstrate a defect in the nitrovasodilator-/cGMP-regulated signal transduction system in human platelets from some patients with myeloproliferative disorders, and underscore that a cGMP-dependent protein kinase regulatory system, distinct from that of cAMP-dependent protein kinase or other cGMP-dependent effectors is operative in normal human platelets.

Blood Platelets↗

Role of cyclic nucleotide-dependent protein kinases and their common substrate VASP in the regulation of human platelets.

The activation of human platelets is inhibited by two intracellular pathways regulated by either cGMP- or cAMP-elevating agents. There is considerable evidence that the inhibitory effects of cGMP and cAMP are mediated by the cGMP-PK and cAMP-PK, respectively, in human platelets. The cGI-PDE is an additional target for cGMP, and the cGMP-mediated elevation of cAMP levels contributes to the well known synergism between cAMP- and cGMP-elevating platelet inhibitors. Stimulation of both cAMP-PK and cGMP-PK prevents the agonist-induced activation of MLCK and PKC and inhibits the agonist-induced calcium mobilization from intracellular stores without any major effect on the ADP-regulated cation channel. These studies suggest that the inhibition of an early event of platelet activation, e.g. activation of PLC, is an effect common to both cGMP-PK and cAMP-PK stimulation. A common substrate of both cGMP-PK and cAMP-PK, the 46/50 kDa protein VASP, has been recently identified as a novel microfilament- and focal contact-associated protein whose phosphorylation correlates very well with platelet inhibition. Future investigations will have to identify the precise molecular mechanism of cyclic nucleotide inhibition of Ca2+ discharge from intracellular stores and whether cGMP-PK- and cAMP-PK-mediated VASP phosphorylation is an important component of this effect of cyclic nucleotides in human platelets.

Adenylyl Cyclases↗

Chemically induced murine erythroleukemia cell differentiation is severely impaired when cAMP-dependent protein kinase activity is repressed by transfected genes.

During chemically induced differentiation of murine erythroleukemia (MEL) cells, cAMP-dependent protein kinase activity increases, and the enzyme's isozyme pattern changes. To examine the enzyme's role during MEL cell differentiation, we stably transfected MEL cells with recombinant plasmids in which the mouse metallothionein I promoter controlled expression of either a mutant form of the type I regulatory subunit of cAMP-dependent protein kinase (RI) or the enzyme's specific peptide inhibitor (PKI); expressing either sequence rendered cells cAMP-dependent protein kinase-deficient. Chemically induced differentiation of MEL cells as assessed by beta-globin mRNA and hemoglobin accumulation was inhibited in RI mutant and PKI transfectants; adding zinc further inhibited differentiation in the transfectants but had no effect on parental MEL cells. The inhibition of differentiation correlated with the amount of RI mutant mRNA and protein in the RI mutant transfectants and with the cells' degree of cAMP-dependent protein kinase deficiency in both the RI mutant and PKI transfectants. Overexpression of wild type RI did not interfere with differentiation or enzyme activity. We conclude that cAMP-dependent protein kinase activity is important for chemically induced differentiation of MEL cells and that the down-regulation of RI protein which occurs during MEL cell differentiation is not essential for differentiation to proceed.

Acetamides↗

Concentration and regulation of cyclic nucleotides, cyclic-nucleotide-dependent protein kinases and one of their major substrates in human platelets. Estimating the rate of cAMP-regulated and cGMP-regulated protein phosphorylation in intact cells.

Vasodilators capable of elevating cAMP or cGMP inhibit the activation of human platelets and stimulate the phosphorylation of a 46-kDa protein (vasodilator-stimulated phosphoprotein, VASP) mediated by cAMP-dependent protein kinase (PKA) and cGMP-dependent protein kinase (PKG). The availability of purified proteins and specific antisera against VASP, PKG and the catalytic subunit of PKA enabled us to measure and estimate the concentration of these regulatory proteins in intact human platelets. In addition, the rate of PKA- and PKG-mediated VASP phosphorylation in intact human platelets was estimated. For these calculations, a homogeneous population of human platelets and a homogeneous intracellular distribution of proteins and second messengers was assumed. Unstimulated washed human platelets contain 4.4 microM cAMP and 3.1 microM catalytic subunit of PKA, which is equivalent to 6.2 microM cAMP-binding sites due to PKA. Unstimulated washed human platelets also contain 0.4 microM cGMP and 7.3 microM PKG monomer, equivalent to 14.6 microM cGMP-binding sites due to the PKG. The intracellular concentration of VASP in platelets was estimated to be 25 microM. Treatment of washed human platelets with 10 microM (or 10 mM) prostaglandin E1 (PGE1) elevated the intracellular cAMP concentration to 27 microM (10 microM with 10 nM PGE1) within 30 s, accompanied by a rapid, up to 55% (35%), conversion of VASP from the dephosphorylated form (46-kDa protein) to the phosphorylated form (50-kDa protein). Treatment of washed human platelets with 100 microM (or 1 microM) sodium nitroprusside elevated the platelet cGMP level to 4 microM (0.9 microM with 1 microM sodium nitroprusside) within 2 min, accompanied by a less-rapid VASP phosphorylation of 45% (27% with 1 microM sodium nitroprusside). PGE1 and sodium nitroprusside had no significant effect on human platelet cGMP or cAMP levels, respectively. The results suggest for human platelets that relatively small increase in cAMP levels are required for activation of most of PKA, whereas even several-fold increases in platelet cGMP levels are capable of stimulating only a small fraction of total PKG. This interpretation was also supported by phosphorylation experiments with purified VASP, PKG and catalytic subunit of PKA. The results also support the hypothesis that in human platelets both cAMP/PKA- and cGMP/PKG-regulated VASP phosphorylation are components of an efficient and sensitive signal-transduction pathway, most likely involved in the inhibition of platelet activation.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

Protein phosphorylation regulated by cyclic nucleotide-dependent protein kinases in cell extracts and in intact human lymphocytes.

A specific 46,000/50,000 molecular weight protein substrate for both cAMP-dependent protein kinase (cAK) and cGMP-dependent protein kinase (cGK) extensively characterized and purified from human platelets was found to be present also in human T-lymphocytes, B-lymphocytes and other cells and tumour cell lines. This protein termed vasodilator-stimulated phosphoprotein (VASP) was present in cytosol and membranes of lymphocytes. Addition of exogenous purified cAK or cGK to lymphocyte cytosol or membranes converted 80-90% of VASP to its phosphoform. Endogenous VASP phosphorylation in both cytosol and membranes was stimulated by the addition of cAMP but not by cGMP. With intact lymphocytes, prostaglandin E1 (PGE1) and prostaglandin E2 (PGE2) induced an increase of cAMP and converted 70% of VASP to its phosphoform. In contrast, an increase of cGMP was not associated with VASP phosphorylation although cGK was detected in lymphocytes. These data support the hypothesis that VASP phosphorylation may be an important component of cAMP-mediated regulation of lymphocyte function.

Cell Extracts↗

Endothelial cell-dependent phosphorylation of a platelet protein mediated by cAMP- and cGMP-elevating factors.

We reported previously that a 46/50-kDa membrane-associated vasodilator-stimulated phosphoprotein (VASP) is phosphorylated in intact human platelets in response to both cGMP- and cAMP-elevating vasodilator drugs and presented evidence that this is mediated by cGMP- and cAMP-dependent protein kinases, respectively. VASP was recently purified and an antibody against it was developed which detects a phosphorylation-induced mobility change of VASP in sodium dodecyl sulfate-polyacrylamide gel electrophoresis (Halbrügge, M., Friedrich, C., Eigenthaler, M., Schanzenbächer, P., and Walter, U. (1990) J. Biol. Chem. 265, 3088-3093). We have now used these methods for the quantitative analysis of VASP phosphorylation during coincubations of human endothelial cells and human platelets. Endothelial cell-derived factors caused the rapid, stoichiometric, and reversible phosphorylation of platelet VASP during these coincubations. Other experiments indicated that the endothelium-derived factors which stimulate VASP phosphorylation are prostacyclin and endothelium-derived relaxing factor whose effects are mediated by cAMP/cAMP-dependent protein kinase and cGMP/cGMP-dependent protein kinase, respectively. The results suggest that VASP phosphorylation is an important component of the inhibitory effects of prostacyclin and endothelium-derived relaxing factor on platelet activation and that VASP phosphorylation is a useful biochemical marker for the interaction of endothelial cells and platelets.

Autoradiography↗

Comparison of vasodilatory prostaglandins with respect to cAMP-mediated phosphorylation of a target substrate in intact human platelets.

The recent purification of a vasodilator-stimulated phosphoprotein (VASP) from human platelets and the development of a specific antiserum against VASP made it possible to study the quantitative effects of cAMP-elevating prostaglandins on cAMP-mediated phosphorylation of VASP in intact human platelets. Prostacyclin (PG-I2), prostaglandin-E1 (PG-E1) and the stable prostacyclinanalog Iloprost, all agents used for the treatment of peripheral vascular disease, induced rapid, stoichiometric and reversible phosphorylation of VASP in human platelets mediated by the cAMP-dependent protein kinase. However, there were substantial differences between these three cAMP-elevating prostaglandins with respect to their effects on extent, duration and reversibility of VASP phosphorylation. Maximal VASP phosphorylation was induced both by PG-I2 and Iloprost, but the PG-I2 effect was only of short duration in comparison to that of Iloprost. The extent of PG-E1-induced VASP phosphorylation was less than that observed with PG-I2 and Iloprost. In endothelial cell-platelet coincubations, an endothelial cell-derived, indomethacin-sensitive factor caused a rapid elevation of platelet cAMP level and VASP phosphorylation. These results provided direct evidence that human endothelial cells are capable of producing biologically active quantities of cAMP-elevating prostaglandins sufficient to induce stoichiometric cAMP-mediated protein phosphorylation in human platelets. VASP-phosphorylation induced by PG-I2 and PG-E1 was completely reversible after removal of the prostaglandins whereas this was only partially the case with Iloprost. In addition, evidence is presented that the prostaglandin-regulated adenylate cyclase system but not the cAMP-mediated protein phosphorylation desensitizes in human platelets after prolonged treatment with cAMP-elevating prostaglandins. VASP phosphorylation is proposed as a marker for quantitating aspects of vessel wall-platelet interaction.

Alprostadil↗

Stoichiometric and reversible phosphorylation of a 46-kDa protein in human platelets in response to cGMP- and cAMP-elevating vasodilators.

Recently, we reported the purification of a 46-kDa membrane-associated platelet protein which is phosphorylated in intact platelets and platelet membranes by cGMP- and cAMP-dependent protein kinases (Halbrügge, M., and Walter, U. (1989) Eur. J. Biochem. 185, 41-50). Here we demonstrate that both cGMP- and cAMP-dependent protein kinases catalyze the rapid incorporation of up to 1.4 mol of phosphate/mol of this purified vasodilator-stimulated phosphoprotein (VASP). A specific rabbit antiserum was prepared which recognized both the 46-kDa dephospho form and the 50-kDa phospho form of VASP in Western blots. In untreated washed platelets, VASP was found to be present primarily as a 46-kDa dephosphoprotein. Sodium nitroprusside (100 microM) raised the intracellular platelet cGMP concentration from approximately 0.44 to 4.1 microM, without a significant effect on the cAMP level, and converted up to 50% of VASP to the 50-kDa phospho form. Prostaglandin E1 (10 microM) raised the platelet cAMP concentration from approximately 4.4 to 28.4 microM, without a significant effect on the cGMP level, and shifted up to 67% of VASP to the 50-kDa phospho form. Removal of the vasodilators sodium nitroprusside and prostaglandin E1 from the platelet suspension was followed by a return of the cyclic nucleotide concentration to basal levels and subsequent conversion of the 50-kDa phospho form of VASP to the 46-kDa dephospho form. The results support the hypothesis that VASP phosphorylation is an important component of the intracellular mechanism of action of these vasodilators in human platelets.

Alprostadil↗

Correlation between mononuclear infiltration and changes in VASP phosphorylation patterns after heterotopic cardiac transplantation in the rat.

Chronic cardiac transplant vasculopathy still remains the major cause of late graft failure after the 1st postoperative year, with iNOS playing a central role in the progression of this disease. Since VASP, a recently identified microfilament-associated protein in smooth muscle cells, endothelial cells, and platelets, is phosphorylated by cyclic nucleotide dependent protein kinases, changing amounts of NO-producing mononuclear infiltration cells during cardiac rejection are supposed to change platelet VASP phosphorylation patterns. We investigated whether platelet VASP Ser(157) phosphorylation (VASP shift) after coronary passage of rat cardiac allografts correlates with graft infiltration. The Lew-F344 heterotopic rat cardiac transplantation model was used. Native hearts and grafts were harvested 3-150 days after transplantation and were used for Langendorff perfusion. The platelet VASP shift after native heart and graft perfusion was identified. Additional iNOS stimulation and iNOS inhibition were achieved pharmacologically. Immunohistology revealed graft mononuclear infiltration. Platelet VASP Ser(157) and Ser(239) phosphorylation significantly increased after coronary passage of native hearts and grafts (p < 0.01). Though platelet VASP Ser(157) phosphorylation failed to directly express graft infiltration, we showed a significant correlation between changes of platelet VASP shift and extent of grafts' mononuclear infiltration after competitive iNOS inhibition (p < 0.01). The platelet VASP shift is modified during coronary perfusion, and this modification correlates with mononuclear infiltration in the graft. This emphasizes the influence of mononuclear infiltration cells on microfilamental structures of the cytoskeleton in adjacent cells.

Animals↗