Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “PLASMINOGEN”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 433 records · Page 24Linked to original sources

The structure basis of the poor fibrin specificity of urokinase (II)--The inhibition of urokinase A chain 149-157 on the fibrin stimulated activation of plasminogen by tissue type plasminogen activator.

In view of the similarity of the charge distribution between fibrin A alpha 148-161 and A chain 149-157 of urokinase, the latter might compete with fibrin A alpha 148-161 when single chain pro-urokinase is converted to double chain urokinase. To test this, the stretch of urokinase A chain 135-157 was separated from the low molecular weight urokinase, a competitive binding between this stretch and fibrin to tPA kringle-2 was shown by radio-binding assay. The inhibition of the stretch on the fibrin stimulated activation of plasminogen was demonstrated in the caseinolytic system. The synthesized novapeptide urokinase A chain 149-157 (R-peptide) showed a significant inhibition on the activation of plasminogen in the presence of fibrin. By contrasting finely with R-peptide, a synthesized novapeptide in which Arg154 and Arg156 were replaced by Asp (D-peptide) did not show any inhibition effect on the fibrin stimulated activation of plasminogen by tPA. These results suggest that the positively charged residues in the stretch 149-157 of urokinase are crucial for the inhibition of fibrin binding with the kringle domain of urokinase.

Amino Acid Sequence↗

The tissue plasminogen activator-plasminogen proteolytic cascade accelerates amyloid-beta (Abeta) degradation and inhibits Abeta-induced neurodegeneration.

Accumulation of the amyloid-beta (Abeta) peptide depends on both its generation and clearance. To better define clearance pathways, we have evaluated the role of the tissue plasminogen activator (tPA)-plasmin system in Abeta degradation in vivo. In two different mouse models of Alzheimer's disease, chronically elevated Abeta peptide in the brain correlates with the upregulation of plasminogen activator inhibitor-1 (PAI-1) and inhibition of the tPA-plasmin system. In addition, Abeta injected into the hippocampus of mice lacking either tPA or plasminogen persists, inducing PAI-1 expression and causing activation of microglial cells and neuronal damage. Conversely, Abeta injected into wild-type mice is rapidly cleared and does not cause neuronal degeneration. Thus, the tPA-plasmin proteolytic cascade aids in the clearance of Abeta, and reduced activity of this system may contribute to the progression of Alzheimer's disease.

Alzheimer Disease↗

Biochemical and biologic properties of rt-PA del (K296-G302), a recombinant human tissue-type plasminogen activator deletion mutant resistant to plasminogen activator inhibitor-1.

A mutant of recombinant tissue-type plasminogen activator (rt-PA), obtained by deletion of residues Lys296 to Gly302 [rt-PA del(K296-G302)], was previously shown to be resistant to inhibition by plasminogen activator inhibitor-1 (PAI-1) (Madison et al, Nature 339:721, 1989). This mutant was obtained by expression of its cDNA in Chinese hamster ovary cells and purification to homogeneity from conditioned cell culture medium. It was obtained as a single chain molecule with amidolytic activity, specific fibrinolytic activity, and binding to fibrin and lysine, which were comparable or somewhat lower than those of wild-type rt-PA obtained in the same expression system. The plasminogen-activating potential of rt-PA del(K296-G302) in the presence of CNBr-digested fibrinogen was about twofold lower than that of wild-type rt-PA. The inhibition rate of rt-PA del(K296-G302) by recombinant PAI-1 (rPAI-1) was more than 500-fold lower than that of wild-type rt-PA. In a human plasma milieu in vitro, rt-PA del(K296-G302) induced dose-dependent lysis of a 125I-fibrin-labeled plasma clot; equi-effective concentrations (causing 50% clot lysis in 2 hours) were 0.28 micrograms/mL and 0.36 micrograms/mL for mutant and wild-type rt-PA, respectively. In this system, addition of rPAI-1 to the plasma resulted in a concentration-dependent reduction of the fibrinolytic potency of rt-PA del(K296-G302) and of rt-PA; a 50% reduction required 2.4 micrograms/mL and 0.15 micrograms/mL rPAI-1, respectively. Continuous infusion of mutant or wild-type rt-PA over 60 minutes in hamsters with a 125I-labeled plasma clot in the pulmonary artery resulted in dose-dependent clot lysis, with a thrombolytic potency (percent clot lysis per milligram of compound administered per kilogram of body weight) and a specific thrombolytic activity (percent clot lysis per microgram per milliliter steady state rt-PA-related antigen level in plasma) that were not significantly different. Bolus injection in hamsters of 1 mg/kg rPAI-1 followed by bolus injection of 1 mg/kg rt-PA del(K296-G302) or wild-type rt-PA resulted in neutralization of the thrombolytic potency of wild-type rt-PA, while the mutant retained approximately half of its thrombolytic potency. These results indicate that rt-PA del(K296-G302), with a known resistance to inhibition by rPAI-1 in purified systems, maintains this property both in a plasma milieu in vitro and in an experimental animal model of thrombolysis in vivo.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence↗

Characterization of domain deletion and/or duplication mutants of a recombinant chimera of tissue-type plasminogen activator and urokinase-type plasminogen activator (rt-PA/u-PA).

Chimeric molecules comprising the A-chain of tissue-type plasminogen activator (t-PA) and the catalytic domain of urokinase-type plasminogen activator (u-PA) have intact enzymatic characteristics of u-PA, but only partial fibrin-binding properties of t-PA (Nelles et al., J Biol Chem 1987; 262: 10855-62). The following domain deletion and/or duplication mutants of such a t-PA/u-PA chimera were constructed, purified and characterized: rt-PA-delta FE/u-PA, with deletion of the finger-like (F) and epidermal growth factor-like (E) domains, rt-PA-delta K1 delta K2/u-PA, with kringle 1 (K1) replaced by a second copy of kringle 2 (K2), and rt-PA-delta FEK1 delta K2/u-PA, with F and E domain deletions in rt-PA-delta K1 delta K2/u-PA. The specific activities on fibrin plates of the single-chain (sc) chimeras ranged between 68,000 IU/mg for rt-PA-delta K1 delta K2/scu-PA and 200,000 IU/mg for rt-PA-delta FEK1 delta K2/scu-PA, as compared to 120,000 IU/mg for rscu-PA. The specific activities of their plasmin-generated two-chain (tc) derivatives ranged between 120,000 IU/mg for rt-PA-delta K1 delta K2/tcu-PA and 240,000 IU/mg for rt-PA-delta FEK1 delta K2/tcu-PA, as compared to 100,000 IU/mg for rtcu-PA. All two-chain chimeras activated plasminogen following Michaelis-Menten kinetics, with catalytic efficiencies between 0.072 microM-1s-1 for rt-PA-delta K1 delta K2/tcu-PA and 0.081 microM-1 s-1 for rt-PA-delta FEK1 delta K2/tcu-PA, as compared to 0.088 microM-1 s-1 for rtcu-PA.(ABSTRACT TRUNCATED AT 250 WORDS)

Affinity Labels↗

Identification of determinants involved in binding of tissue-type plasminogen activator-plasminogen activator inhibitor type 1 complexes to HepG2 cells.

Complexes between tissue-type plasminogen activator (t-PA) and its rapidly acting inhibitor plasminogen activator inhibitor type 1 (PAI-1) are bound, internalized, and degraded by HepG2 cells. The mechanism involves endocytosis mediated by a specific high-affinity receptor. However, the particular domains of the complex that are recognized by the receptor have not been elucidated. To identify the determinants involved in ligand binding to the receptor, several variants of t-PA were assessed for their ability to form complexes with PAI-1 and thereby to inhibit specific cellular binding of complexes between structurally unmodified 125I-t-PA and PAI-1. Catalytically active variants lacking selected structural domains form complexes with PAI-1 and inhibit 125I-t-PA.PAI-1 binding to HepG2 cells. In addition, several forms of the plasminogen activator urokinase (u-PA), which shares partial structural homology with t-PA, were evaluated as competitors of cellular binding. The catalytically active two-chain forms of u-PA, but not the inactive proenzyme single-chain form, complex with PAI-1 and inhibit specific binding of 125I-t-PA.PAI-1, suggesting that the serine protease domain, rather than other domains, may confer the determinants required for cellular binding. However, a mutant t-PA with markedly reduced catalytic activity, resulting from replacement of the active site serine with threonine, not only forms complexes with PAI-1 but also inhibits specific cellular binding of unmodified 125I-t-PA.PAI-1. These data indicate that specific binding of t-PA.PAI-1 to HepG2 cells does not require a serine-containing catalytic site in the protease domain. To determine whether binding of the complex is mediated through other components of t-PA or through structural elements of PAI-1, both t-PA and PAI-1 were examined separately for capacity to bind directly to HepG2 cells. To exclude potential interactions with components of the extracellular matrix which contains binding sites for PAI-1, ligand binding to HepG2 cells in suspension was assessed. Although neither t-PA nor PAI-1 alone binds specifically to HepG2 cells, the preformed t-PA.PAI-1 complexes do. These findings suggest that specific binding of t-PA.PAI-1 requires elements of the PAI-1 moiety and/or parts of the protease domain of t-PA.

Binding Sites↗

Catabolism of tissue-type plasminogen activator by the human hepatoma cell line Hep G2. Modulation by plasminogen activator inhibitor type 1.

Catalytic activity of tissue-type plasminogen activator (t-PA) in plasma is regulated in part by formation of complexes with specific inhibitors as well as by hepatic clearance. Potential interaction of these two regulatory mechanisms was examined in the human hepatoma cell line Hep G2. These cells secrete plasminogen activator inhibitor type-1 (PAI-1) and initiate catabolism of exogenous t-PA by receptor-mediated endocytosis. Specific binding of 125I-t-PA to cells at 4 degrees C results in dose-dependent formation of a 95-kDa species recognized by monospecific anti-PAI-1 and anti-t-PA antibodies and stable in the presence of low (0.2%) concentrations of sodium dodecyl sulfate (SDS). Specific binding of 125I-t-PA and formation of the 95-kDa SDS-stable species are inhibited in a concentration-dependent manner following preincubation of cells with anti-PAI-1 antibodies. High and low molecular weight forms of urokinase plasminogen activator (u-PA) capable of forming specific complexes with PAI-1 complete for 125I-t-PA binding sites. However, the proenzyme form of u-PA (scu-PA), incapable of forming complexes with PAI-1, does not compete for 125I-t-PA binding sites. The role of the serine protease active site of t-PA in mediating both interaction with PAI-1 and specific binding was examined using 125I-t-PA that had been functionally inactivated with D-phenylalanyl-L-propyl-L-arginyl-chloromethyl ketone (PPACK). 125I-t-PA-PPACK, despite a 6-fold lower affinity than active 125I-t-PA, exhibited specific binding to cells without detectable formation of SDS-stable complexes with PAI-1. Both surface-bound 125I-t-PA and 125I-t-PA-PPACK are internalized and degraded by cells at 37 degrees C. 125I-t-PA is internalized as a stable complex with PAI-1, whereas 125I-t-PA-PPACK is internalized with similar kinetics but without the presence of an SDS-stable complex. Thus, PAI-1 appears capable of modulating t-PA catabolism in the human hepatocyte.

Antibodies, Monoclonal↗

Inhibition of one-chain and two-chain forms of human tissue-type plasminogen activator by the fast-acting inhibitor of plasminogen activator in vitro and in vivo.

The inhibition of one-chain and two-chain molecular forms of human tissue-type plasminogen activator (t-PA) by the fast-acting inhibitor of plasminogen activator (PA-inhibitor) present in plasma was studied in vitro and in vivo in rabbits. In vitro, both one-chain and two-chain forms of t-PA were neutralized very rapidly in rabbit plasma with high levels of PA-inhibitor. The rate constant of the interaction between two-chain t-PA and PA-inhibitor was estimated to be 3.10(7) L/mol/sec. The presence of CNBr-digested fibrinogen, which mimics the effect of fibrin on the activation of plasminogen by t-PA, did not influence the rate constant. Moreover, PA-inhibitor-rich plasma inhibited in a very similar way in vitro thrombolysis by one-chain or two-chain t-PA incorporated into the clot. Injection of one-chain or two-chain t-PA into rabbits with increased levels of PA-inhibitor, induced by endotoxin, resulted in very rapid inhibition of t-PA activity. Within 30 seconds after injection, no residual free t-PA could be demonstrated. Gel filtration analysis showed that the disappearance of t-PA activity was associated with the generation of t-PA-PA-inhibitor complex with an apparent Mr of 100,000. This enzyme-inhibitor complex, like free t-PA, was cleared from the circulation with a half-life of approximately 2 minutes, mainly via the liver. It is concluded that PA-inhibitor neutralizes one-chain and two-chain molecular forms of t-PA in plasma at very similar rates, both in vitro and in vivo.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Modulation of urokinase-type plasminogen activator and plasminogen activator inhibitor-2 expression by U-937 mononuclear phagocytes. Effects of 1 alpha, 25-dihydroxyvitamin D3 and phorbol ester.

Mononuclear phagocytes are known to produce both urokinase-type plasminogen activator (u-PA) and a specific PA inhibitor, PAI-2. In this study we have investigated the effects of calcitriol and PMA-induced differentiation on the comparative expression of PA and PAI in monoblast-like U937 cells. Cells were incubated for 96 h in the presence or absence of 50 nM calcitriol. After transfer into serum-free medium, the cells were cultured for 48 h with PMA (0 to 50 ng/ml). PA and PAI activities of conditioned media and cell lysates were measured with a plasminogen dependent colorimetric assay. Control cells uniformly secreted PAI activity (70.3 +/- 24.9 PAI U/ml), while calcitriol pretreatment induced the cells to secrete PA activity (52.6 +/- 47.2 milli-Ploug unit/ml). PMA induced secretion of PAI activity in calcitriol-pretreated cells to levels 4.6- to 8.3-fold greater than controls (p less than 0.05). Parallel effects on PA and PAI activities were seen in cell lysates. To determine how changes in the expression of u-PA and PAI-2 might account for these effects, mRNA for u-PA and PAI-2 were assessed by Northern blot analysis. Calcitriol induced an increase in u-PA mRNA with a marked reduction in PAI-2 mRNA. PMA alone induced modest increases in both mRNA species. In calcitriol pre-treated cells, PMA induced a moderate increase in u-PA mRNA and a marked increase in PAI-2 mRNA. We conclude that agonist-specific differentiation of U937 cells modulates the expression of PA and PAI activities by altering the proportionate biosynthesis of u-PA and PAI-2 proteins. The ability of mononuclear phagocytes to control plasminogen activation at inflammatory foci may therefore be contingent on the independent regulation of u-PA and PAI-2 gene expression.

Blotting, Northern↗

Vampire bat salivary plasminogen activator evokes minimal bleeding relative to tissue-type plasminogen activator as assessed by a rabbit cuticle bleeding time model.

Cuticle bleeding time (CBT) measurements in anesthetized rabbits were performed to assess the potential bleeding risks which may accompany the administration of tissue-type plasminogen activator (tPA) or vampire bat salivary plasminogen activator (BatPA). The dose of BatPA or tPA used in this study, 42 nmol/kg, was previously shown to be efficacious using a rabbit femoral artery thrombosis model (Gardell et al, Circulation 84:244, 1991). CBT was determined by severing the apex of the nail cuticle and monitoring the time to cessation of blood flow. CBT was minimally elevated (1.6-fold, p = NS) following bolus intravenous administration of BatPA; in contrast, bolus intravenous administration of tPA dramatically elevated CBT (6.2-fold, p < 0.05). Rabbits treated with tPA, but not BatPA, displayed profound activation of systemic plasminogen and consequent degradation of Factor VIII and fibrinogen. Elevations in CBT after the administration of tPA were reversed by the replenishment of plasma Factor VIII activity to 40% of control, but were unaffected by complete replenishment of plasma fibrinogen. The results of this study suggest that the administration of BatPA, at a dose that promotes thrombolysis, may evoke a minimal bleeding risk, relative to an equi-efficacious dose of tPA. In addition, the tPA-provoked proteolytic consumption of Factor VIII may be a key contributor to the heightened bleeding risk.

Animals↗

The tissue plasminogen activator finger domain confers fibrin-dependent enhancement of catalytic activity to single-chain urokinase-type plasminogen activator.

To determine whether the fibrin-binding domains of tissue plasminogen activator (tPA) can confer enhanced catalytic activity to single-chain urokinase-type plasminogen activator (scuPA), we constructed, expressed, and characterized the kinetics of five recombinant tPA/scuPA hybrid molecules. The hybrid molecules are: 1) tPA3-50 (tPA finger)/scuPA138-411, 2) tPA177-256 (tPA kringle2)/scuPA140-411 (scuPA catalytic), 3) tPA3-50/tPA177-256/scuPA140-411, 4) scuPA1-47 (scuPA growth factor)/tPA177-256/scuPA140-411, and 5) scuPA1-138 (scuPA growth factor and kringle)tPA127-256/scuPA139-411. The amidolytic activity of all hybrids was comparable, as were the kinetics for conversion from single-chain to two-chain plasminogen activator. We found that 1) the lag time prior to achieving maximal velocity among these hybrids varied, 2) hybrids 2, 3, 4, and 5 were 2-134-fold more potent (by kcat/Km) than hybrid 1, and 3) those hybrid proteins containing the tPA finger domain (hybrids 1 and 3) gave a 2-fold increase in catalytic efficiency in the presence of DESAFIB (reptilase-digested fibrinogen). These kinetic differences are likely mediated by changes in the tertiary structure of the scuPA catalytic domain resulting from interactions between catalytic and noncatalytic domains in the presence of fibrin.

Animals↗

Livedoid vasculopathy associated with plasminogen activator inhibitor-1 promoter homozygosity (4G/4G) treated successfully with tissue plasminogen activator.

BACKGROUND: Livedoid vasculopathy (LV) is an occlusive thrombotic disease that affects primarily the small blood vessels of the lower extremities and often is associated with recurrent painful ulcerations. The pathogenesis of LV is unclear, but the disease is largely attributed to a hypercoagulable state. Factor V Leiden mutation, heterozygous protein C deficiency, homozygous hyperhomocysteinemia, and other inherited thrombophilias have been associated with LV. Plasminogen activator inhibitor-1 (PAI-1) is an important inhibitor of the fibrinolytic system. Elevated levels of PAI-1 are found in some patients with thrombotic diseases. Some of these patients are homozygous for an allele of PAI-1 containing a stretch of 4 guanines at base -675 in the promoter region. This variant is associated with elevated PAI-1 protein levels, impaired fibrinolysis, and increased risk of thrombosis. OBSERVATIONS: A 33-year-old white woman had a 3-month history of painful enlarging ulcers on both ankles. Various therapies, including administration of oral antibiotic agents and prednisone up to 100 mg/d, to treat presumed vasculitis, were unsuccessful. Skin biopsy specimens revealed numerous thick-walled small blood vessels, many of which were filled with fibrin thrombi, in association with minimal perivascular inflammatory infiltrate, extensive epidermal necrosis, and focal ulceration. A diagnosis of thrombotic vasculopathy was made. Clinical workup revealed an elevated plasma level of PAI-1 (31 microM/mL; reference range, <25 microM/mL) and PAI-1 promoter 4G/4G homozygosity detected at DNA sequencing. Treatment with heparin sodium and tissue plasminogen activator dramatically improved the lesions, resulting in complete healing of the ulcerations. Continuation of anticoagulant therapy with warfarin sodium and episodic administration of tissue plasminogen activator was required for symptomatic control. CONCLUSIONS: Patients with LV may have elevated plasma PAI-1 levels. This may be associated with the PAI-1 promoter 4G/4G genotype, which has not previously been linked with LV. Further studies in patients with LV are warranted to determine how frequently this genotype is present because it may identify responsiveness to fibrinolytic therapy.

Adult↗

Mice lacking tissue plasminogen activator and urokinase plasminogen activator genes show attenuated matrix metalloproteases activity after sciatic nerve crush.

Plasminogen activators (PAs), tissue PA (tPA) and urokinase PA (uPA), have been shown to be induced in sensory neurons after sciatic nerve crush. These findings suggested that PAs facilitate peripheral nerve regeneration by digesting adhesive cell contacts and by activation of other proteases, thereby initiating a proteolytic cascade. Both tPA and uPA activate some matrix metalloproteases (MMPs), indirectly via plasminogen activation or directly, such as the uPA activation of MMP-2. In this study, we demonstrated, by using tPA and uPA knockout mice, that a lack of a plasminogen activator affected MMP-9 and MMP-2 activity after crushing of the sciatic nerve. These findings show that the PAs are important for MMP-9 and MMP-2 activity at the crush site.

Animals↗

Deletion of residues K296-G302 from the slowly-cleared tissue-type plasminogen activator t-PA del (G) leads to partial loss of plasminogen activating activity.

Plasmids encoding tissue-type plasminogen activators lacking residues K296-G302 were constructed and were expressed in a Hela cell transient expression system. Conditioned media from the cultures were tested in a number of systems designed to detect function or antigen. Functional assays comprised the chromogenic substrate S2288 and three plasminogen activation assays. All t-PA variants were active in all assays but to varying degrees. The results are consistent with the conclusion that deletion of residues K296-G302 from the slowly-cleared t-PA mutant t-PA del(G) adversely affects the plasminogen activating ability of the molecule without altering the integrity of the active site. This is in contrast to the situation in native t-PA where the same mutation has little overall effect on activity.

Binding Sites↗

Clot-selective coronary thrombolysis with low-dose synergistic combinations of single-chain urokinase-type plasminogen activator and recombinant tissue-type plasminogen activator. The Pro-Urokinase for Myocardial Infarction Study Group.

The effect of simultaneous infusions of low-dose recombinant tissue-type plasminogen activator (t-PA) and single-chain urokinase-type plasminogen activator (scu-PA, pro-urokinase) on coronary arterial thrombolysis was investigated in 23 patients treated within 6 hours (mean 2.6 +/- 1.1, range 1.2 to 5.9) of symptoms of an acute myocardial infarction. Infarct artery patency at 90 minutes was achieved in 16 (70%, 95% confidence limits of 0.47 to 0.87) of 23 patients after a 1-hour intravenous infusion of 20 and 16.3 mg of t-PA and scu-PA, respectively. At 90 minutes, the fibrinogen concentration decreased from 369 +/- 207 to 316 +/- 192 mg/dl (p = not significant), while plasminogen decreased to 69 +/- 24% (p = 0.001) and alpha-2-antiplasmin to 77 +/- 24% (p = 0.001) of pretreatment values. Although no bleeding requiring termination of drug infusion or transfusion occurred, 1 patient with cerebrovascular amyloidosis had a fatal intracerebral hemorrhage. These findings suggest that combination therapy may allow substantial reductions in total thrombolytic doses while still achieving effective fibrin-specific coronary thrombolysis.

Adult↗

A monoclonal antibody to the epsilon-aminocaproic acid binding site on the kringle 4 region of human plasminogen that accelerates the activation of Glu1-plasminogen by urokinase.

A monoclonal antibody, 10-F-1, previously shown [V. A. Ploplis, H. S. Cummings, and F. J. Castellino (1982) Biochemistry 21, 5891-5897] to interact with a particular epsilon-aminocaproic acid (EACA)3 binding site on the kringle 4 (K4) region of human Glu1-plasminogen (Glu1-Pg), has been employed to assess the contribution of this particular EACA site toward the enhancement, by EACA and its analogs, of the urokinase (UK)-catalyzed activation of Glu1-Pg. As is the case with EACA-like compounds, the presence of antibody 10-F-1 accelerates the activation of Glu1-Pg by UK, but does not enhance the similar activation of Lys77-plasminogen. In the presence of concentrations of antibody 10-F-1 which saturate its binding site on Glu1-Pg, the Km of Glu1-Pg activation by UK is raised from 1.4 +/- 0.2 microM, a value obtained in the absence of antibody, to 17.0 +/- 2.0 microM. On the other hand, the kcat for this activation, 0.038 +/- 0.005 s-1, is elevated to 2.45 +/- 0.2 s-1 at saturating concentrations of antibody 10-F-1. The kcat/Km for activation under these conditions is 0.027 s-1 microM-1 in the absence of antibody, and 0.144 s-1 microM-1 in the presence of saturating levels of antibody 10-F-1. This demonstrates that the interaction of this antibody with its epitope results in a fivefold stimulation of the activation rate of Glu1-Pg by UK. The availability of antibody 10-F-1 allows for a specific means of probing the function of one of the four to five thermodynamically equivalent weak EACA sites on human plasminogen. From this particular study, it is concluded that the weak binding site for EACA on the K4 domain of Glu1-Pg is either in-part or in-whole responsible for the enhancing effect of EACA on human Glu1-Pg activation by UK.

Aminocaproates↗

Half-life of single-chain urokinase-type plasminogen activator (scu-PA) and two-chain urokinase-type plasminogen activator (tcu-PA) in patients with acute myocardial infarction.

The pharmacokinetics of urokinase (two-chain urokinase-type plasminogen activator, tcu-PA) and single-chain urokinase-type plasminogen activator (scu-PA) were studied in 20 patients with acute myocardial infarction (AMI). Ten consecutive patients received 2.5 million units tcu-PA by bolus injection within 5 min during the first 6 h after AMI (group I). Ten further consecutive patients received 250,000 U tcu-PA within 5 min, followed by 4.5 million U scu-PA by intravenous infusion over 40 min (group II). An enzyme immunoassay was developed for urokinase antigen determinations, and a fibrin plate assay for determinations of fibrinolytic activity was applied. Using a 3-compartment model, in group I 98% of urokinase antigen were cleared with a half-life of 60.8 min. After scu-PA, urokinase antigen was cleared with half-lives (area under the curve in parentheses) of 6.9 min (74.8%), 26.5 min (23.6%), and 329.7 min (2.2%). The half-disappearance times of fibrinolytic activity were 18 and 8 min in group I and II, respectively. A more pronounced decrease of plasminogen was observed after tcu-PA.

Half-Life↗

Urokinase-type plasminogen activator release after DDAVP in von Willebrand disease: different behaviour of plasminogen activators according to the synthesis of von Willebrand factor.

Nine healthy volunteers and 23 patients with various types of von Willebrand disease were studied before and after DDAVP infusion. We investigated the behaviour of factor VIII/von Willebrand factor measurements, and of tissue plasminogen activator and urokinase-type plasminogen activator. In mild von Willebrand disease the increase of both plasminogen activators was similar to that seen in normal controls. A different fibrinolytic behaviour was found in the type I platelet low and in the type III von Willebrand disease patients. An impaired and absent fibrinolytic response to DDAVP was seen in the former and in the latter von Willebrand disease, respectively. A close relation between either u-PA and t-PA or von Willebrand factor was observed. The possibility of a linkage among these three proteins was discussed.

Adolescent↗

Calcium regulation of tissue plasminogen activator and plasminogen activator inhibitor-1 release from cultured human vascular endothelial cells.

Tissue plasminogen activator (t-PA) produced by vascular endothelial cells converts plasminogen to plasmin which degrades fibrin. Since t-PA activity is greatly potentiated in the presence of fibrin (1,2), the activator is implicated in intravascular fibrinolysis. On the other hand, endothelial cells also produce plasminogen activator inhibitor-1 (PAI-1) (3). The inhibitor associated with vascular endothelium rapidly inhibits t-PA, while that released into the liquid phase has a little anti-activator activity (4). However, clinical studies have shown that elevation of plasma PAI-1 level is a risk factor of thrombosis (5,6). It is thus suggested that the balance between t-PA and PAI-1 is important for the regulation of fibrinolysis. The release of t-PA and PAI-1 from vascular endothelial cells is regulated by physiological factors including thrombin (3,7), histamine (8), vasoconstrictor peptide endothelins (9,10) and cytokines (11). In addition, the regulation of the t-PA release and that of the PAI-1 release are not necessarily coupled. It has been shown that activated protein kinase C and cyclic AMP are involved in the stimulation and suppression, respectively, of the endothelial t-PA and PAI-1 production (12,13). However, the role of intracellular calcium in the regulation of endothelial t-PA and PAI-1 release has remained to be elucidated. In the present study, we investigated the effect of calcium ionophore A23187 on the release of t-PA antigen (t-PA:Ag) and PAI-1 antigen (PAI-1:Ag) from cultured vascular endothelial cells derived from human umbilical vein.

Antigens↗