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Elevation of mRNA levels of tissue-type plasminogen activator and urokinase-type plasminogen activator in hippocampus and cerebral cortex following middle cerebral artery occlusion in rats.

Tissue-type plasminogen activator (tPA) and urokinase-type plasminogen activator (uPA) have been used for thrombolitic therapy. In contrast, it is suggested that these compounds might be involved in neuronal cell damage. The activation and the function of tPA and uPA are less understood in ischemic brain tissue. Therefore, changes in tPA and uPA mRNA in rat brain tissue after MCA occlusion and in the neuronal cell line, PC12 cells, during the hypoxic stimulation were examined. Permanent middle cerebral artery (MCA) occlusion was induced by advancing a filament into the internal carotid artery in 36 adult male Sprague-Dawley rats. The ischemic cerebral cortex and contralateral cortex of MCA area, and bilateral hippocampus were collected at 0 (controls), 1, 3, 6, 12 and 24 h after occlusion. Hypoxia was induced in PC12 cells with a multigas incubator (set to 1% O2). The quantitative reverse transcription-polymerase chain reaction acted as a measurement of alteration in mRNA levels. The mRNA levels of tPA and uPA were significantly increased after MCA occlusion in the ischemic cerebral cortex. The magnitude of the increase in tPA and uPA mRNA in 24 h after occlusion was twice the value in sham-operated rat (0 h). The increases of tPA mRNA were time-dependent in insult and contralateral hippocampus. The increase of uPA mRNA was also seen in the hippocampus bilaterally, although the increase was more significant on the ipsilateral side. In PC12 cells, necrotic (approximately 35%) and apoptotic cells (approximately 65%) could be distinguished by hypoxic stimulus for 24 h, and the mRNA for tPA was significantly increased for 6 h-12 h, while the mRNA for uPA was not detected at any point in the study. Our results suggest that focal ischemia might result in the activation of these proteases not only in the insult but also in the contralateral brain tissue.

Animals↗

The majority of type 1 plasminogen activator inhibitor associated with cultured human endothelial cells is located under the cells and is accessible to solution-phase tissue-type plasminogen activator.

The interactions between exogenously added tissue-type plasminogen activator (t-PA) and the active form of type 1 plasminogen activator inhibitor (PAI-1) produced by and present in cultured human umbilical vein endothelial cells (HUVECs) were investigated. Immunoblotting analysis of the conditioned media obtained from monolayers of HUVECs treated with increasing concentrations of t-PA (less than or equal to 10 micrograms/ml) revealed a dose-dependent formation of both t-PA/PAI-1 complexes, and of a 42,000-Mr cleaved or modified form of the inhibitor. Immunoradiometric assays indicated that t-PA treatment resulted in a fourfold increase in PAI-1 antigen present in the conditioned media. This increase did not result from the release of PAI-1 from intracellular stores, but rather reflected a t-PA-dependent decrease in the PAI-1 content of the Triton X-100 insoluble extracellular matrix (ECM). Although the rate of t-PA-mediated release of PAI-1 was increased by the removal of the monolayer, similar quantities of PAI-1 were removed in the presence or absence of the cells. These results suggest that the cells only represent a semipermeable barrier between ECM-associated PAI-1 and exogenous t-PA. Treatment of HUVECs with t-PA (1 microgram/ml, 2 h) to deplete the ECM of PAI-1 did not affect the subsequent rate of PAI-1 production and deposition into the ECM. Immunogold electron microscopy of HUVECs not only confirmed the location of PAI-1 primarily in the region between the culture substratum and ventral cell surface but failed to demonstrate significant (less than 1%) PAI-1 on the cell surface. Thus, the majority of PAI-1 associated with cultured HUVEC monolayers is present under the cells in the ECM and is accessible to solution-phase t-PA.

Cell Division↗

Plasminogen activator and plasminogen activator inhibitor activities in a reference population.

The influence of age, gender, and aspirin ingestion on plasma levels of tissue plasminogen activator (t-PA) and plasminogen activator inhibitor-1 (PAI-1) activities was studied in a reference population of 35 men and 35 women between the ages of 20 and 65 years. The t-PA values (mean +/- SD) in the women before and after 5 minutes of venous occlusion were 3.8 +/- 1.4 and 7.8 +/- 4.4 micrograms/L, respectively; in men these values were 3.3 +/- 1.2 and 8.8 +/- 8.9 micrograms/L. Men had higher mean PAI levels than did women (5.0 vs. 2.5 kU/L). T-PA showed an inverse relationship to PAI in both sexes. There was a negative correlation of t-PA levels with age, whereas PAI levels were positively correlated. The ingestion of a single dose of aspirin (650 mg) did not alter PAI or t-PA activities. This study indicates that factors such as age and sex may need to be considered when reference populations are developed for clinical studies of fibrinolysis.

Adult↗

Binding of human plasminogen and urokinase-type plasminogen activator to the Lyme disease spirochete, Borrelia burgdorferi.

Many bacteria that spread in the skin produce enzymes that digest extracellular matrix components. Borrelia burgdorferi spreads from a skin inoculation site to form the characteristic erythema migrans skin lesion. It was determined that B. burgdorferi does not produce collagenase, elastase, hyaluronidase, or other enzymes that digest extracellular matrix components. However, B. burgdorferi bound human plasmin, plasminogen (Pgn), and urokinase-type plasminogen activator (uPA). When spirochetes were sequentially incubated with Pgn and uPA, bioactive plasmin was generated on the surface of B. burgdorferi. B. burgdorferi did not produce an endogenous Pgn activator. Fluorochrome-conjugated uPA and Pgn colocalized to the terminus of the spirochete. In a mouse model, uPA-treated B. burgdorferi were more infectious than control spirochetes. Binding of host uPA and Pgn to form a bioactive extracellular matrix protease on B. burgdorferi represents a mechanism that could facilitate dissemination and localization of spirochetes to sites of vascular injury.

Animals↗

Binding of human urokinase type plasminogen activator and plasminogen to Borrelia species.

Borrelia burgdorferi binds human urokinase plasminogen activator (uPA), which cleaves plasminogen (Pgn) to plasmin. The ability of other Borrelia species to bind uPA, Pgn, or both was investigated. Borrelia coriacae, Borrelia garinii, Borrelia parkeri, Borrelia anserina, and Borrelia turicatae were compared with infectious and noninfectious B. burgdorferi isolates. All Borrelia species lacked endogenous proteases capable of digesting casein, but all species bound human uPA and Pgn, generating Pgn-dependent proteolytic activity. There were no significant differences in the amount of plasmin, Pgn, or uPA bound per spirochete of the different species. On unfixed borreliae, fluorochrome-conjugated uPA bound to all species. Early binding was at the terminus of B. burgdorferi, whereas diffuse binding was observed on B. coriacae, B. garinii, B. parkeri, and B. turicatae. These studies demonstrate that binding of human uPA and Pgn to borreliae occurs on multiple species with apparent differences in surface distribution.

Borrelia↗

Tissue plasminogen activator, tissue plasminogen activator inhibitor and lipoprotein(a) in patients with coronary, epiaortic and peripheral occlusive artery disease.

In order to evaluate the relationship between the presence of atherosclerotic disease, documented by angiography, and the fibrinolytic profile, 262 consecutive patients affected by coronary (n = 90), epiaortic (n = 60) and peripheral (n = 104) artery disease have been included in the study. Twenty-two healthy subjects were used as controls for laboratory parameters determination. All patients were classified on the basis of the presence (S+) or absence (S-) of clinically significant stenosis, according to specific scoring systems. Lipoprotein(a), plasminogen activator inhibitor (PAI-1), tissue plasminogen activator (t-PA) and the PAI-1/t-PA ratio were significantly lower in controls than in coronary, epiaortic and peripheral artery disease patients. However, the levels of these parameters were not statistically different between S+ and S- subjects. These results confirm the association between lipoprotein(a), PAI-1 and t-PA levels and the presence of atherosclerotic disease independently of the arterial districts considered, while they do not appear to be directly linked to the severity of the morphological disease.

Adult↗

Evidence for increased levels of plasminogen activator inhibitor and tissue plasminogen activator in plasma of patients with angiographically verified coronary artery disease.

We studied 234 consecutive patients who underwent coronary angiography because of severe angina pectoris. Tissue plasminogen activator (tPA), plasminogen activator inhibitor (PAI), and lipoprotein Lp(a) were measured in citrated plasma samples. The 214 patients showing significant coronary artery stenosis (greater than 50% reduction of luminal area in any of the great coronary arteries) had higher mean levels of tPA (P less than 0.001) and PAI (P less than 0.01) than a random population sample of similar age. PAI and tPA levels were higher in smokers than in either non-smokers or ex-smokers, and in patients with hypertension tPA was increased. Subjects with blood group A had a higher mean Lp(a) level than subjects with blood group O. There were positive correlations of PAI and tPA levels with serum triglycerides and with body mass index; Lp(a) correlated weakly with plasma fibrinogen concentrations. The findings suggest an impairment of the fibrinolytic system in patients with coronary artery disease, which offers a link between established risk factors and a plausible pathophysiological mechanism, namely thrombus turnover.

Adult↗

Increased plasminogen activator inhibitor and tissue plasminogen activator levels in subjects with electrocardiographic abnormality indicative of ischaemic heart disease: a cross-sectional study in Norsjö, Sweden.

The plasma levels of tissue plasminogen activator (tPA) antigen concentration and plasminogen activator inhibitor (PAI) activity were measured in a random sample of 260 subjects, 30, 40, 50, or 60 years of age. Electrocardiographic Q, ST and/or ST-T changes, suggestive of definite or possible ischaemic heart disease (IHD), were found in 21% of the 50-year-old and 37% of the 60-year-old subjects. As compared to subjects lacking such signs, plasma tPA and PAI levels were significantly increased in the 60-year-old group, and PAI tended to be increased in the 50-year-old group. Previous case-control studies, usually performed at specialized centres and liable to sampling biases, have suggested an association between increased PAI levels and ischaemic heart disease. This cross-sectional population study provides independent data that patients with electrocardiographic signs of IHD have increased levels of both PAI and tPA antigen.

Adult↗

Interactions between the finger and kringle-2 domains of tissue-type plasminogen activator and plasminogen activator inhibitor-1.

We have shown that plasminogen activator inhibitor-1 (PAI-1) inhibits the fibrin binding of both the single chain and two chain forms of tissue-type plasminogen activator (tPA) through two different mechanisms. PAI-1 inhibits the finger domain-dependent fibrin binding of diisopropylfluorophosphate-inactivated single chain tPA and the kringle-2 domain-dependent fibrin binding of diisopropylfluorophosphate-inactivated two chain tPA. In accordance with the data, preformed complexes of single chain tPA/PAI-1 and of two chain tPA/PAI-1 lost the fibrin binding abilities mediated by the finger and kringle-2 domains, respectively. These effects of PAI-1 appear to be mediated by steric hindrance of the fibrin binding sites after PAI-1 binding to adjacent regions in the functional domains of tPA. We thus propose a model in which a PAI-1 binding site resides in the finger domain of a single chain, and plays a role in the reversible association of single chain tPA and PAI-1. Conformational changes may take place during the conversion of single chain tPA to two chain tPA, resulting in burying of the original PAI-1 binding site and exposure of an alternate PAI-1 binding site on the surface of the kringle-2 domain.

DNA-Binding Proteins↗

Prolactin regulation of tissue type plasminogen activator and plasminogen activator inhibitor type-I gene expression in eCG-primed rat granulosa cells in culture.

The present study was designed to investigate the effect of prolactin (PRL) on plasminogen activator inhibitor-I (PAI-I) and tissue type plasminogen activator (tPA) gene expression in eCG-primed granulosa cells in vitro. At 46 h after the hormone treatment, ovaries were removed, and granulosa cells were prepared for culture. Cells were incubated for various times in serum-free medium in the presence or absence of LH and PRL alone or in combination. tPA and PAI-I activities in the media were assayed by fibrin overlay and reverse fibrin autograph, respectively. Cytoplasmic RNA from granulosa cells was prepared using the NP-40 method and was assayed for PAI-I and tPA mRNA levels. We demonstrated the following. 1) PRL increased PAI-I mRNA production in cultured granulosa cells. Inclusion of LH with PRL had a synergistic effect on increasing PAI-I mRNA levels. After 48-h culture, 3-fold increases in PAI-I mRNA levels were seen with LH in combination with PRL as compared with PRL alone. The synergistic increase in PAI-I mRNA levels occurred in a dose- and time-dependent manner. 2) The increase in PAI-I mRNA synthesis by PRL alone, or by PRL in combination with LH, was well correlated with the changes in PAI-I activity and antigen levels in the conditioned media. 3) PRL in the culture also dramatically decreased LH-induced tPA mRNA and activity in a dose- and time-dependent fashion. The decrease in the tPA activity by PRL was also correlated with an increase in the amount of PA-PAI-I complexes in the cell-conditioned media. 4) In situ hybridization of tPA and PAI-I mRNAs in the cultured granulosa cells also showed that PRL was capable of enhancing PAI-I mRNA while diminishing tPA mRNA production induced by LH. This suggests that the dose- and time-dependent decrease in the gonadotropin-induced tPA activity in the culture by the presence of PRL may be due to decreasing tPA mRNA synthesis on one hand and to neutralization of the tPA activity by the increased PAI-I activity on the other.

Animals↗

Human endothelial cell migration is stimulated by urokinase plasminogen activator:plasminogen activator inhibitor 1 complex released from endometrial stromal cells stimulated with transforming growth factor beta1; possible mechanism for paracrine stimulation of endometrial angiogenesis.

Human endometrial stromal cell cultures, stimulated for two days with recombinant transforming growth factor beta1 (TGFbeta1; 10 ng/ml), contained conditioned medium concentrations of urokinase plasminogen activator (uPA), plasminogen activator inhibitor 1 (PAI1), and uPA:PAI1 complex. Since a number of cellular effects have been reported to follow a binding of enzymatically inactive uPA to the receptor in different cell types, we studied the influence of uPA:PAI1 complex on human umbilical vein endothelial cells (HUVEC) and human microvascular endothelial cells (HMEC-1). Increasing concentrations of uPA:PAI1 complex as well as free uPA resulted in a dose-dependent stimulation of endothelial cell migration. Stimulation by the complex was of the same magnitude as that of free uPA on a molar basis and reached its maximum at 1 nM in both cell types. PAI1 by itself, however, had no effect on cell migration. The migratory response to both uPA and the uPA:PAI1 complex was inhibited by antibody adhesion to the cell surface receptor for uPA. In addition, we found that TGFss1 had a direct stimulatory effect on migration in both HUVEC and HMEC-1. This response did not, however, involve the binding of uPA to the uPA receptor. Since TGFbetas are expressed in endometrial tissue and reportedly stimulate angiogenesis in other tissues in vivo, though not endothelial cell proliferation in vitro, they may engage in the regeneration of endometrial vasculature indirectly via perivascular cells. We found that the uPA:PAI1 complex, when released from endometrial stromal cells in response to TGFbeta1, stimulated endothelial cell migration. This suggests a possible mechanism for paracrine stimulation of endometrial angiogenesis.

Cell Line↗

Dehydroepiandrosterone reduces plasma plasminogen activator inhibitor type 1 and tissue plasminogen activator antigen in men.

Dehydroepiandrosterone (DHEA) may help prevent heart disease in men. To test the hypothesis that DHEA might exert its effects by enhancing endogenous fibrinolytic potential, a double-blind, placebo-controlled study was conducted that assessed the effects of DHEA administration on plasma plasminogen activator inhibitor type 1 (PAI-1) and tissue plasminogen activator (tPA) antigen. Eighteen men received 50 mg DHEA orally and 16 men received a placebo capsule thrice daily for 12 days. Serum DHEA-sulfate and plasma PAI-1 and tPA antigen were measured before and after treatment. In the DHEA group, serum DHEA-sulfate (from 7.5 +/- 1.2 micromol/L to 20.2 +/- 1.5 micromol/L (P < 0.0001), androstenedione (from 2.6 +/- 0.2 nmol/L to 4.0 +/- 0.4 nmol/L; P < 0.005) and estrone (from 172 +/- 21 pmol/L to 352 +/- 28 pmol/L; P < 0.005) increased, whereas plasma PAI-1 (from 55.4 +/- 3.8 ng/mL to 38.6 +/- 3.3 ng/mL; P < 0.0001) and tPA antigen (from 8.1 +/- 1.9 ng/mL to 5.4 +/- 1.3 ng/mL; P < 0.0005) decreased. In the placebo group, serum DHEA-sulfate declined slightly from 8.0 +/- 3.3 micromol/L to 7.3 +/- 3.4 micromol/L (P < 0.05), but no other measured steroid changed. Plasma PAI-1 and tPA antigen did not change in the placebo group. These findings suggest that DHEA administration reduces plasma PAI-1 and tPA antigen concentrations in men.

Aged↗

In-vitro effect of oncostatin M on the release by endothelial cells of von Willebrand factor, tissue-type plasminogen activator and plasminogen activator inhibitor-1.

Epidemiological studies have demonstrated that levels of plasma fibrinogen, von Willebrand factor (vWf), plasminogen activator inhibitor-1 (PAI-1) and tissue-type plasminogen activator (tPA) are associated with the incidence of vascular disease. Since oncostatin M dramatically induces fibrinogen biosynthesis by hepatocytes and could be implicated in vascular injury leading to atherosclerosis, we have analyzed the effect of oncostatin M on PAI-1, vWf and tPA secretion by endothelial cells. A 2-h incubation of human umbilical vein endothelial cells with oncostatin M increases thrombin-induced secretion of vWf to the same extent as tumour necrosis factor-alpha or interleukin-1 (137+/-26% of control for 5 ng/ml oncostatin M, P < 0.001, n=5). The effects on tPA and PAI-1 secretion were different depending on the type of endothelial cells tested. On human umbilical vein endothelial cells, oncostatin M induced an increase in PAI-1 and a decrease in tPA secretion, which could explain the thrombogenicity of oncostatin M on large vessels. On a human microvasculature endothelial cell line, oncostatin M did not modify PAI-1 but induced an increase in tPA secretion. This observation of the effects of oncostatin M on both macro- and microvasculature could explain the increased levels of vWf, PAI-1 and tPA in the plasma of atherosclerotic subjects identified in epidemiological studies, suggesting that oncostatin M could play a key role in the development of atherosclerotic lesions.

Arteriosclerosis↗

Mean transit times and the sites of synthesis and catabolism of tissue plasminogen activator and plasminogen activator inhibitor type 1 in young subjects.

Using an invasive technique, we studied the mean transit time, the net quantitative turnover rate, and the sites of synthesis and catabolism of tissue plasminogen activator (t-PA) and plasminogen activator inhibitor type 1 (PAI-1) in healthy young volunteers in the fasting, steady state. Blood was sampled simultaneously from a large hepatic vein, an artery and the inferior caval vein, while measuring the splanchnic plasma flow rate and the plasma volume. We found that the catabolism of active t-PA and t-PA antigen took place in the splanchnic circulation with net rates of 7.2 and 6.3 pmol/min, respectively. The extraction fraction and the mean transit time in the splanchnic circulation were, respectively, 0.63 and 5.6 min for active t-PA and 0.17 and 21 min for t-PA antigen. Active PAI-1 was synthesized in the splanchnic circulation at a rate of 890 IU/min and had a mean transit time of about 9.8 min. No net extraction of PAI-1 antigen took place in the splanchnic circulation. In conclusion, we demonstrated that active t-PA and t-PA antigen are catabolized and active PAI-1 produced in the splanchnic circulation in young healthy subjects during steady state. Furthermore, our data show that active t-PA was also eliminated outside the splanchnic region with a catabolism rate of about 8.4 pmol/min. No net complex formation could be demonstrated in the peripheral circulation. We therefore suggest that active t-PA is eliminated by a re-uptake in the endothelium in the peripheral vessels or in the lung circulation.

Adult↗

Regulation of tissue-type plasminogen activator-mediated fibrinolysis by plasminogen activator inhibitor type-1 in patients with ischaemic heart disease: possible unfavourable effect of diuretics.

BACKGROUND: Impaired endogenous tissue-type plasminogen activator (t-PA)-mediated fibrinolysis may be involved in the evolution of myocardial infarction. t-PA-mediated fibrinolysis is believed to depend on the amount of active t-PA present in the circulation. Accordingly, we investigated the possible mechanisms responsible for impaired t-PA-mediated fibrinolysis in patients with ischaemic heart disease. METHODS: Forty-five survivors of acute myocardial infarction were examined 8 weeks after discharge from hospital. Intravenous infusion of 1-desamino-8-D-arginine vasopressin (DDAVP; 0.4 micrograms/kg bodyweight) was used to stimulate the endogenous fibrinolytic system, and blood samples were collected before and after infusion. We compared the response of the t-PA-plasminogen activator inhibitor type-1 (PAI-1) fibrinolytic system in patients with preinfusion levels of active t-PA below or at the detection limit of the assay with that in patients with higher preinfusion levels of active t-PA. RESULTS: All patients responded to DDAVP infusion with an increase in plasma concentration of t-PA antigen. This response did not differ between the two groups. In contrast, the preinfusion levels of PAI activity were significantly higher in patients with undetectable plasma levels of active t-PA compared with patients with higher levels of active t-PA (22.3 versus 12.8 IU/ml; P < 0.01). Subgroup analyses demonstrated that patients treated with diuretics had significantly higher plasma concentrations of PAI-1 antigen (28.5 versus 17.9 ng/ml; P < 0.03) and a trend towards higher PAI activity (24.0 versus 14.6 IU/ml; P = 0.07) compared with patients not receiving diuretics. CONCLUSION: Our study strongly suggests that a high plasma level of PAI-1, the main inhibitor of t-PA, is responsible for impaired t-PA-mediated fibrinolysis in patients with ischaemic heart disease, and that treatment with diuretics may be associated with an unfavourable effect on the fibrinolytic system.

Aged↗

Does long-term angiotensin converting enzyme inhibition affect the concentration of tissue-type plasminogen activator-plasminogen activator inhibitor-1 in the blood of patients with a previous myocardial infarction.

BACKGROUND: Large-scale studies have indicated that treatment with angiotensin converting enzyme (ACE) inhibitors reduces the incidence of myocardial infarction and unstable angina pectoris among patients with recent myocardial infarction and moderate left ventricular dysfunction. An improved endogenous fibrinolysis might be responsible for this effect. OBJECTIVES: To investigate the effect of trandolapril on the endogenous tissue-type plasminogen activator (t-PA) in patients with a recent myocardial infarction and moderate left ventricular dysfunction. METHODS: Fifty-six patients with acute myocardial infarction and a wall motion index < or = 1.2 were allocated randomly either to administration of trandolapril or to placebo. When possible, the study drug dose was increased gradually to 4 mg trandolapril or a corresponding amount of placebo during the first month after randomization. Blood samples for determination of the variables of the fibrinolytic system, ACE activity and ACE genotype were collected prior to randomization and during out-patient visits in months 1, 3, 6, 9 and 12. After the subject had fasted overnight, blood samples were collected in the morning (0800-1000 h) after the subject had rested supine for at least 15 min, from a venous cannula inserted into the forearm. The effect of trandolapril on the fibrinolytic variables was evaluated by calculating the area under the curve (AUC1-12) from month 1 to month 12. RESULTS: The trandolapril group and the placebo group were similar with respect to baseline clinical characteristics, baseline fibrinolytic variables and baseline plasma ACE activity. The trandolapril group did not differ significantly from the placebo group with respect to AUC1-12 t-PA antigen [11.67 (3.95-26.45) versus 10.34 ng/ml (3.71-19.62), P = 0.19] and AUC1-12 plasminogen activator inhibitor type-1 (PAI-1) antigen [27.57 (8.38-89.49) versus 24.40 ng/ml (7.94-90.62), P = 0.92]. A significant and clear trend in variation with time of t-PA antigen was observed for the trandolapril group, but not for the placebo group. The fibrinolytic variables were similar at baseline for the different ACE genotype insertion (I) and deletion (D) groups (II, ID and DD). Trandolapril treatment was associated with a significant (P < 0.04) increase in the AUC1-12 of t-PA antigen in the ID group compared with that of the placebo-treated ID group, whereas PAI-1 antigen concentration did not differ between the groups. Trandolapril treatment was not associated with any significant change in the fibrinolytic variables for the other genotype groups. CONCLUSIONS: Chronic ACE-inhibitor treatment with trandolapril was not associated with any significant difference in the blood concentrations of t-PA and PAI-1 compared with placebo. The suggested specific interaction between ACE inhibition and the increase in t-PA in patients with ACE genotype ID will require further confirmation.

Aged↗

Synthesis, purification, and properties of a peptide that enhances the activation of human [Glu1]plasminogen by tissue plasminogen activator and retards fibrin polymerization.

Solid phase synthesis of the hexapeptide, GPRVVE, which represents the amino terminal six amino acids of the alpha-chain of human fibrin, yielded a product that contained a modified glutamic acid. The nature of the modification was established as the Friedel-Crafts acylation product of the peptide and anisole, the latter reagent employed in the HF deblocking step. The anisoylated peptide selectively enhanced the activation rate of native [Glu1]plasminogen by recombinant tissue plasminogen activator, accelerated clot lysis, and retarded the polymerization of nascent fibrin.

Amino Acid Sequence↗

Synthesis of urokinase-type plasminogen activator and of type-1 plasminogen activator inhibitor in neuronal cultures of human fetal brain: stimulation by phorbol ester.

Human neuronal brain cultures established from 12- and 14-week-old fetuses synthesize and secrete urokinase-type plasminogen activator (uPA) and limited amounts of tissue-type plasminogen activator (tPA). These cells also produce and secrete the endothelial cell-type PA inhibitor (PAI-1), which forms sodium dodecyl sulfate-stable tPA/PAI-1 complexes in the culture medium. Immunocytochemistry shows a predominant localization of uPA, tPA, and PAI-1 in neuronal cells, with only a very weak positivity detectable in the few glial cells present in these cultures. The protein kinase C (PKC) activator 12-O-tetradecanoylphorbol 13-acetate (TPA) stimulates the synthesis of both uPA and PAI-1, resulting in a final increase in the plasmin-generating capacity of neuronal cell cultures. No significant effect is observed, however, when cells are treated with the TPA analogue 4 alpha-phorbol 12,13-didecanoate, which is inactive as a PKC inducer, or with the neurotrophic polypeptide basic fibroblast growth factor. These data represent the first characterization of the plasmin-generating system in human fetal brain neurons and suggest a role for PKC in the modulation of uPA and PAI-1 synthesis.

Brain↗