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Biomedical subjects

E A Jaffe

Publications and source records attributed to E A Jaffe.

At least 73 records · Page 4Linked to original sources

The interaction of sodium nitroprusside with human endothelial cells and platelets: nitroprusside and prostacyclin synergistically inhibit platelet function.

Sodium nitroprusside (NP) is a potent vasodilator that also inhibits platelet aggregation. To test the hypothesis that NP causes both of these effects by altering the balance between prostacyclin (PGI2) produced by endothelial cells and thromboxane A2 (TXA2) produced by platelets, we incubated each of these cell types with NP for 5 minutes and assayed the PGI2 and TXA2 produced. NP at pharmacologically achieved doses (0.01--30 micrograms/ml) inhibited platelet aggregation and resultant TXA2 synthesis in a dose- and time-dependent manner (p less than 0.001). The inhibition was not dependent on cAMP production, external calcium concentration, or suppression of TXA2 synthesis. NP did not alter the production of PGI2 by cultured human endothelial cells as measured by radioimmunoassay for 6-Keto-PGF1 alpha, the stable hydrolysis product of PGI2. However, supernates of NP-treated endothelial cells containing low, noninhibitory concentrations of NP unexpectedly inhibited platelet aggregation. This inhibition of platelet aggregation was due to synergy between PGI2 (0.1--3 nM) and NP (p interaction less than 0.03). The synergistic inhibition by NP and PGI2 of platelet aggregation and TXA2 synthesis in vivo may explain some of the beneficial actions of NP in the treatment of hypertension and congestive heart failure.

Calcium↗

In vitro correlates of endothelial injury and repair.

The effects of immune complexes, microbial components, and glomerular basement membrane on cultured human umbilical endothelial cells were assessed in vitro using phase contrast microscopy, cell counts, 51Cr release, and terminal tritiated thymidine-labeling assays. Neither heat-aggregated IgG nor bovine serum albumin-antibovine serum albumin immune complexes altered endothelial cell growth as measured by cell counts, thymidine labeling, and phase contrast microscopy, nor did immune complexes induce cytotoxicity as measured by 51Cr release. Some microbial components appeared cytotoxic to endothelial cells, other microbial components had no effect, and one, clostridial neuraminidase, induced proliferation of endothelial cells as measured by phase contrast microscopy, cell counts, and thymidine labeling. Native and glycosidase-altered glomerular basement membrane also enhanced endothelial cell thymidine labeling. These studies show that microbial components directly alter endothelial cell growth in vitro, whereas immune complexes by themselves do not. Thus, in vivo microbial components by themselves may directly affect endothelial cells and cause vascular pathology, whereas immune complexes presumably must recruit other inflammatory systems to affect endothelial cells. Alterations of basement membrane during inflammation may also affect endothelial growth and, thus, vascular pathology.

Antigen-Antibody Complex↗

Interactions between stimulated platelets and endothelial cells in vitro.

Prostaglandins and hydroxy acids are synthesized mainly from the essential polyunsaturated fatty acid arachidonate, and these substances have been identified in almost all mammalian tissues. Prostaglandins, thromboxane A2 (TXA2) and prostacyclin (PGI2) are autocoids that appear to function in the regulation of vascular tone, cell secretion and contractile processes. So far, hydroxy acids have been found to function as chemotactic agents and in the formation of slow-reacting substances. Other actions of hydroxy acids will certainly be defined in future research. The endoperoxides PGG2 and PGH2 represent common precursors of all prostaglandin end-products. In studying the prostaglandin metabolism of a specific tissue, the total profile of endoperoxide transformation should be determined. In platelets the endoperoxides are transformed mainly into TXA2, a potent vasoconstrictor and inducer of platelet aggregation. Endothelial cells convert endoperoxides to PGI2, a vasodilator and inhibitor of platelet aggregation. In addition, endothelial cells can utilize endoperoxides from stimulated plates to form PGI2. The concept that platelets and endothelial cells can share common precursors for the production of modulating substances may be applicable to other cell types.

Arachidonic Acids↗

Multiple molecular forms of endothelial cell factor VIII related antigen.

Heterogeneous factor VIII related antigen isolated from endothelial cell postculture medium was characterized. On crossed immunoelectrophoresis, slow moving less anodal populations of factor VIII related antigen molecules were more prominent in endothelial cell postculture medium than in plasma. The protein synthesized by endothelial cells appeared as two discrete protein bands of different molecular weight in sodium dodecyl sulfate polyacrylamide gels. In contrast the factor VIII related antigen isolated from plasma moved as a single protein band in an identical gel system. The factor VIII related antigen from endothelial cell postculture medium was immunoisolated using monospecific rabbit antibody to normal human plasma factor VIII related antigen, electrophoresed on sodium dodecyl sulfate polyacrylamide gels, radiolabeled with 125I, trypsinized and subjected to peptide mapping using two-dimensional high voltage electrophoresis and thin-layer chromatography. The two forms of endothelial cell factor VIII antigen had virtually identical peptide maps. These studies suggest that the molecular heterogeneity of the factor VIII related antigen system reflects polymeric associations of identical subunits. Circulation in vivo may alter the ratio of polymer subsets.

Animals↗

Nitroglycerin stimulates synthesis of prostacyclin by cultured human endothelial cells.

Nitroglycerin (NTG), the agent most commonly used to treat acute angina pectoris, is a vasodilator whose mechanism of action remains unknown. We hypothesized that NTG might induce endothelial cells to synthesize prostacyclin (PGI(2)), a known vasodilator and inhibitor of platelet aggregation. Therefore, cultured human endothelial cells were incubated with NTG at various concentrations for 1-3 min. PGI(2) biologic activity in the endothelial cell supernates was assayed by inhibition of platelet aggregation in vitro. The concentration of 6-keto-PGF(1alpha), the stable hydrolysis product of PGI(2), was measured by specific radioimmunoassay.NTG alone significantly inhibited platelet aggregation and thromboxane A(2) synthesis only at suprapharmacologic concentrations (>/=1 mug/ml). However, when NTG at clinically attainable concentrations (0.1-10 ng/ml) was incubated with endothelial cells, the endothelial cell supernates inhibited platelet aggregation in a dose-dependent manner. The inhibitor was heat labile. Radioimmunoassay of the endothelial cell supernates for 6-keto-PGF(1alpha) demonstrated that NTG elicited dose-dependent increments in the synthesis of PGI(2) by endothelial cells, ranging from 13% at NTG 10 pg/ml to 63% at NTG 10 ng/ml (P < 0.01, n = 10). Pretreatment of endothelial cells with either aspirin (50 muM for 120 min) or the prostacyclin synthetase inhibitor 15-hydroperoxyarachidonic acid (20 mug/ml for 15 min) abolished production of the platelet inhibitory substance. Synergy between NTG and PGI(2) in the inhibition of platelet aggregation was not present at clinically attainable concentrations of NTG.Thus, NTG at clinically attainable concentrations causes a dose-dependent increase in PGI(2) synthesis by endothelial cells. If this phenomenon occurs in vivo, the PGI(2) produced could ameliorate myocardial ischemia by causing peripheral vasodilation and decreasing cardiac work, inhibiting platelet aggregation and thromboxane A(2) synthesis, and possibly reversing coronary artery vasospasm.

Cells, Cultured↗

Prostacyclin (PGI2) inhibits the development in human platelets of ADP and arachidonic acid-induced shape change and procoagulant activity.

Platelets which change shape from discs to spheres concomitantly develop platelet procoagulant activity which is independent of and precedes aggregation or the release reaction. Since prostacyclin (PGI2) is known to be a potent inhibitor of platelet aggregation and release, the effect of PGI2 on platelet shape change and the development of platelet procoagulant activity was measured. Platelet shape change (percent discs and spheres) was assayed by a light transmission technique. Platelet procoagulant activity was assayed using recalcified clotting times measured concurrently (by aggregometry) with platelet shape assays. PGI2 inhibited the development of platelet shape change and procoagulant activity induced by the addition of ADP (0.7 microM); the 50% inhibitory dose of PGI2 was approximately 2 nM. PGI2 also inhibited arachidonic acid (0.3-1.2 mM) induced platelet shape change and procoagulant activity; the 50% inhibitory dose of PGI2 was 2.3 nM. Thus, physiologic concentrations of PGI2 inhibit platelet shape change and prevent the development of sphering associated procoagulant activity.

Adenosine Diphosphate↗

Structural analysis of factor VIII antigen in von Willebrand disease.

The Factor VIII antigen molecules in the plasma of patients with classical type 1 and variant type 2A von Willebrand disease were compared to the Factor VIII antigen molecules in normal plasma. Factor VIII antigen was isolated from plasma by solid-phase immunoprecipitation and analyzed by NaDodSO4/polyacrylamide gel electrophoresis; the stained Factor VIII antigen bands were removed, radioiodinated, and subjected to tryptic digestion. Computerized analysis of autoradiographs revealed that the two-dimensional peptide maps of the different Factor VIII antigens were remarkably similar. The results suggest that the Factor VIII antigen molecules in these two forms of von Willebrand disease are probably identical to the Factor VIII antigen molecules present in normal plasma. It is thus likely that the differences observed in plasma Factor VIII antigen in classical and variant von Willebrand disease are not due to qualitatively abnormal molecules but rather represent quantitative shifts in the metabolism of normal Factor VIII antigen molecules.

Epitopes↗

Synthesis of prostacyclin from platelet-derived endoperoxides by cultured human endothelial cells.

We have previously shown that aspirin-treated endothelial cells synthesize prostacyclin (PGI(2)) from the purified prostaglandin endoperoxide PGH(2) (1978. J. Biol. Chem.253: 7138). To ascertain whether aspirin-treated endothelial cells produce PGI(2) from endoperoxides released by stimulated platelets, [(3)H]arachidonic acid-prelabeled platelets were reacted in aggregometer cuvettes with the calcium ionophore A 23187, thrombin, or collagen in the presence of aspirin-treated endothelial cell suspensions. This procedure permitted thin-layer radiochromatographic quantitation of [(3)H]PGI(2) as [(3)H]6-keto-PGF(1alpha) and [(3)H]thromboxane A(2) (TXA(2)) as [(3)H]TXB(2), as well as analysis of platelet aggregation responses in the same sample. In the presence of aspirin-treated endothelial cells, platelet aggregation in response to all three agents was inhibited. [(3)H]6-keto-PGF(1alpha) was recovered from the supernates of the combined cell suspensions after stimulation by all three agents. The order of PGI(2) production initiated by the stimuli was ionophore > thrombin > collagen. The amounts of platelet [(3)H]TXB(2) recovered were markedly reduced by the addition of aspirin-treated endothelial cells. In separate experiments, 6-keto-PGF(1alpha) and TXB(2) were quantitated by radioimmunoassay; the results paralleled those obtained with the use of radiolabeling. The quantity of 6-keto-PGF(1alpha) measured by radioimmunoassay represented amounts of PGI(2) sufficient to inhibit platelet aggregation. These results were obtained when 200,000 platelets/mul were combined with 3,000-6,000 aspirin-treated endothelial cells/mul. At higher platelet levels the proportion of 6-keto-PGF(1alpha) to TXB(2) decreased and platelet aggregation occurred. Control studies indicated that aspirin-treated endothelial cells could not synthesize PGI(2) from exogenous radioactive or endogenous arachidonate when stimulated with thrombin. Therefore the endothelial cell suspensions could only have used endoperoxides from stimulated platelets.Thus, under our experimental conditions, production by endothelial cells of PGI(2) from endoperoxides derived from activated platelets could be demonstrated by two independent methods. These experimental conditions included: (a) enhanced platelet-endothelial cell proximity, as attainable in stirred cell suspensions; (b) use of increased endothelial cell/platelet ratios; and (c) utilization of arachidonate of high specific activity in radiolabeling experiments. Furthermore, when a mixture of platelets and endothelial cells that were not treated with aspirin was stimulated with thrombin, more than twice as much 6-keto-PGF(1alpha) was formed than when endothelial cells were stimulated alone. These results indicate that endothelial cells can utilize platelet endoperoxides for PGI(2) formation to a significant extent.

Arachidonic Acids↗

Recovery of endothelial cell prostacyclin production after inhibition by low doses of aspirin.

Endothelial cells synthesize prostacyclin (PGI(2)), an unstable prostaglandin that inhibits platelet aggregation and serotonin release. Because cyclooxygenase, which is necessary for synthesis of PGI(2), is inactivated by aspirin, we examined the effect of aspirin on PGI(2) production by cultured human endothelial cells. Endothelial cells synthesize PGI(2) (20.1+/-7.2 ng/10(6) cells, mean+/-SD) when stimulated with 20 muM sodium arachidonate for 2 min. PGI(2) production is inhibited by low-dose aspirin (5 muM); the t((1/2)) of inactivation is 6.0+/-1.3 min (mean+/-SEM, n = 3). Thus, endothelial cell cyclooxygenase is as sensitive to aspirin as the enzyme in platelets. After 1 h incubation with aspirin, endothelial cell PGI(2) production was inhibited 50% by 2.1+/-0.4 muM aspirin and was inhibited 90% by 6.2+/-0.9 muM aspirin (mean+/-SEM, n = 4). When endothelial cells were incubated with 100 muM aspirin, washed, and recultured, their ability to synthesize PGI(2) returned to control levels in 35.6+/-1.0 h (mean+/-SEM, n = 4). Recovery of endothelial PGI(2) production after aspirin depended on de novo protein synthesis because treatment with cycloheximide (3 mug/ml) inhibited recovery by 92%.These results indicate that although endothelial cell cyclooxygenase in vitro is inhibited by low concentrations of aspirin, endothelial cells rapidly resynthesize their cyclooxygenase after the aspirin is removed. This rapid resynthesis of cyclooxygenase lessens the likelihood that aspirin used in clinical doses promotes thrombosis.

Aspirin↗

Synthesis of fibronectin by cultured human endothelial cells.

Plasma fibronectin is probably the major nonimmune particulate opsonin in blood and is cross-linked to fibrin during the final stage of blood coagulation. Fibronectin also occurs in an insoluble form in basement membranes especially those underlying endothelial cells and in loose connective tissue. Fibronectin was demonstrated in cultured human endothelial cells and in the surrounding extracellular matrix by immunofluorescence microscopy by using antibody to human plasma fibronectin. Cultured human endothelial cells released fibronectin into the culture medium which was immunologically identical to the fibronectin in human plasma. Cultured human endothelial cells were labeled with [3H] leucine. The radioactive fibronectin present in the endothelial postculture medium and in urea extracts of cellular monolayers was isolated with either anti-fibronectin coupled to Protein A-Sepharose or double antibody immunoprecipitation and characterized by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. When reduced, the [3H] fibronectin synthesized by cultured endothelial cells had the same mol wt (approximately 200,000) as plasma fibronectin. Unreduced, the [3H] fibronectin synthesized by endothelial cells migrated as a dimer, as did plasma fibronectin. Fibronectin accounted for approximately 15% of the protein synthesized and released by endothelial cells into the culture medium. Thus, cultured endothelial cells synthesize fibronectin, secrete it into the culture medium, and incorporate it into extracellular matrix. The results suggest that the endothelial cell is potentially a major site of synthesis of circulating plasma fibronectin. In addition, fibronectin derived from endothelial cells may be an important structural component of the subendothelium.

Cells, Cultured↗

Stimulation of endothelial cell prostacyclin production by thrombin, trypsin, and the ionophore A 23187.

Prostacyclin (PGI(2)) is an unstable prostaglandin which inhibits platelet aggregation and serotonin release and causes vasodilation. The PGI(2) activity produced by monolayers of cultured human endothelial cells and fibroblasts was measured by the ability of their supernates to inhibit platelet aggregation in platelet-rich plasma, or to inhibit thrombin-induced [(14)C]serotonin release from aspirin-treated, washed platelet suspensions. Monolayers of cultured human endothelial cells, stimulated with sodium arachidonate, thrombin, the ionophore A 23187, or trypsin, secreted PGI(2) into the supernatant medium. Monolayers of fibroblasts produced PGI(2) activity only when stimulated by arachidonate. "Resting," intact monolayers did not produce detectable PGI(2), nor did monolayers treated with ADP or epinephrine. Production of PGI(2) activity was abolished by treatment of the monolayers with indomethacin, tranylcypromine, or 15-hydroperoxy arachidonic acid. The PGI(2) activity of the supernates was destroyed by boiling or acidification. Inhibition of thrombin with diisopropylfluoro-phosphate, and of trypsin with soybean trypsin inhibitor, abolished the stimulation of PGI(2) production by these enzymes. Production of thrombin at a site of vascular injury could, by stimulating PGI(2) synthesis by endothelial cells adjacent to the injured area, limit the number of platelets involved in the primary hemostatic response and help to localize thrombus formation.

Anti-Bacterial Agents↗