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 1,135 records · Page 63Linked to original sources

Fibrin-bound lipoprotein(a) promotes plasminogen binding but inhibits fibrin degradation by plasmin.

Conflicting results have been obtained from studies of the effects of lipoprotein(a) [Lp(a)] on plasminogen binding to fibrin and fibrin-dependent activation by tissue plasminogen activation (t-PA). We performed binding studies of Glu-plasminogen (0-16 microM) to immobilized D-dimer +/- Lp(a) (0.20 microM). In the absence of Lp(a), Scatchard analysis revealed a binding constant of KD = 1.01 +/- 0.18 microM, with two plasminogen binding sites per D-dimer. In the presence of Lp(a), a lower affinity (KD 3.10 +/- 0.23 microM) was found, but five binding sites were present, suggesting that plasminogen bound to fibrin-bound Lp(a) rather than to D-dimer. Consistent with this explanation was the finding that when D-dimer-coated plates were first precoated with Lp(a) before plasminogen was added, similar lower affinity plasminogen binding was found. This binding to Lp(a) was fibrin-dependent since, in its absence, plasminogen failed to bind to Lp(a). Therefore, a conformational change in Lp(a) appeared to be required for plasminogen binding to occur. This finding of two types of binding sites of different affinities helps to explain why Lp(a) has been reported to inhibit plasminogen binding to fibrin in studies in which only low concentrations of plasminogen (< 0.4 microM) were used. At these concentrations, few of the low-affinity binding sites on fibrin-bound Lp(a) will be occupied by plasminogen, an effect that was found to be exaggerated by the omission of NaCl.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Identification of an inhibitor of tissue-type plasminogen activator-mediated fibrinolysis in human neutrophils. A role for defensin.

An inhibitor of tissue-type plasminogen activator (tPA)-mediated and plasminogen-dependent fibrinolysis was isolated from human neutrophils. On a G-50 gel filtration column, the antifibrinolytic activity present in neutrophil homogenates comigrated with proteins of < 13 kDa. The inhibitory fraction had only a slight effect on urokinase with plasminogen- or plasmin-mediated fibrinolysis and no effect on urokinase- or plasmin-mediated cleavage of H-D-valyl-L-leucyl-L-lysine-p-nitroanilide (S-2251). The neutrophil-derived fraction inhibited tPA with plasminogen activity on S-2251 but not on H-D-isoleucyl-L-prolyl-L-arginine-p-nitroanilide (S-2288). The inhibition of tPA-mediated and plasminogen-dependent fibrinolysis or S-2251 cleavage showed a competitive pattern and could be relieved by increasing the concentration of plasminogen. The same fraction also inhibited binding of plasminogen to fibrin. Consecutive purification steps revealed that the molecular mass of the inhibitor was 1-5-kDa. Polylysine-Sepharose affinity chromatography indicated that the inhibitor is a protein of 4 kDa, migrating as one band on SDS-polyacrylamide gel electrophoresis. Amino acid sequence analysis of this band showed the presence of two sequences, differing by one amino acid, which are identical to defensin I and II. Comparison of the sequences of plasminogen and defensin showed homology of defensin to the plasminogen kringles known to contain the lysine binding sites. The close structural similarity between defensin and plasminogen kringles and the ability of defensin to compete with plasminogen on binding to fibrin explain the ability of defensin to inhibit tPA-mediated, plasminogen-dependent fibrinolysis. These results suggest that the antifibrinolytic activity of defensin may have a biological function in preventing the spread of infection.

Amino Acid Sequence↗

Binding of Lys-plasminogen to monocytes/macrophages.

The ability of mononuclear phagocytes to assemble and activate components of the fibrinolytic system on their surfaces may be crucial in effecting an efficient inflammatory response. Lys-plasminogen, the plasmin modified form of this zymogen, was found to bind specifically and with high affinity to murine peritoneal macrophages and to cells of the human monocytoid line U937. This modified plasminogen has been shown to be a more efficient substrate for plasminogen activators than native Glu-plasminogen. Binding was lysine binding site dependent, rapid and reversible. In contrast, although native Glu-plasminogen bound specifically to these cells, affinity was low. Lys-plasminogen inhibited the binding of Glu-plasminogen but the opposite was not true. Molecular analysis of the bound ligands indicated that Glu-plasminogen was converted to Lys-plasminogen and Lys-plasminogen to plasmin on the cell surface but not in the supernatant. Peritoneal macrophages from patients with indwelling catheters and tissue macrophages in chronic inflammatory lesions were shown to express immunologically identified Lys-plasminogen on their surfaces. Therefore binding and surface activation of kinetically favored Lys-plasminogen may provide an important physiological mechanism for localizing proteolytic activity on the surface of inflammatory cells.

Animals↗

Difficulties in the mutation analysis of plasminogen gene: a study in two patients with ligneous conjunctivitis.

The absence or very low levels of plasminogen cause a rare disabling disease called ligneous conjunctivitis, characterized by the growth of fibrin-rich pseudomembranes in the conjunctiva and on other mucosal surfaces. Several mutations have been detected in the plasminogen gene of patients affected with ligneous conjunctivitis. The human plasminogen gene, located on chromosome 6, has a marked homology with the genes belonging to the plasminogen-apo(a) family, and with a number of pseudogenes and plasminogen-like genes located on chromosome 2. This work describes a series of nucleotide variations related to genes other than the plasminogen one, found during the genetic characterization of plasminogen defect in two unrelated patients with ligneous conjunctivitis. The results of automated sequences of each exon and intron-exon boundaries were compared with those of the human plasminogen gene from the NCBI gene bank. In particular, a co-amplified gene on chromosome 2 mimicking a 14 bp deletion in exon 5 of the plasminogen gene was identified by sequencing two different bands obtained from a long run of the PCR exon 5 product in NuSieve agarose gel, and by PstI restriction enzyme analysis of the same amplicons. Moreover, 21 single nucleotide exchanges due to plasminogen-like genes co-amplification were observed, namely one in exon 1, two in exon 4, three in exons 3, 5 and 16, four in exon 13, and five in exon 17. In conclusion, these data confirm the difficulty of plasminogen genetic analysis and may help researchers to better identify the true plasminogen gene mutations causing molecular defects.

Conjunctivitis↗

Plasminogen inhibits TNFalpha-induced apoptosis in monocytes.

Monocytes are major mediators of inflammation, and apoptosis provides a mechanism for regulating the inflammatory response by eliminating activated macrophages. Furthermore, as a consequence of apoptosis, plasminogen binding is markedly increased on monocytoid cells. Therefore, we investigated the ability of plasminogen to modulate monocyte apoptosis. Apoptosis of monocytoid cells (human monocytes and U937 cells) was induced with either TNFalpha or cycloheximide. When apoptosis was induced in the presence of increasing concentrations of plasminogen, apoptosis was inhibited in a dose-dependent manner with full inhibition achieved at 2 microM plasminogen. Plasminogen treatment also markedly reduced internucleosomal DNA fragmentation and reduced levels of active caspase 3, caspase 8, and caspase 9 induced by TNFalpha or by cycloheximide. We examined the requirement for plasmin proteolytic activity in the cytoprotective function of plasminogen. A plasminogen active site mutant, [D(646)E]-Plg, failed to recapitulate the cytoprotective effect of wild-type plasminogen. Furthermore, antibodies against PAR1 blocked the antiapoptotic effect of plasminogen. Our results suggest that plasminogen inhibits monocyte apoptosis. The cytoprotective effect of plasminogen requires plasmin proteolytic activity and requires PAR1. Because apoptosis of monocytes plays a key role in inflammation and atherosclerosis, these results provide insight into a novel role of plasminogen in these processes.

Amino Acid Substitution↗

Cytokeratin 8 functions as a major plasminogen receptor in select epithelial and carcinoma cells.

Cytokeratin 8 (K8) is a member of the intermediate filament (IF) gene family expressed by simple epithelial cells and by some carcinoma cells. The majority of the cellular K8 is assembled with its partner, K18, into highly insoluble 10 nm filaments that extend from the nucleus to the internal leaflet of the plasma membrane. At desmosomes and hemidesmosomes, K8, K18, and other IF proteins are bridged to proteins with transmembrane domains by a family of proteins called plakins. K8 does not have a signal peptide or a well-defined transmembrane domain; however, there is substantial evidence that this protein is available to bind plasminogen and K8-specific antibodies on the surfaces of certain epithelial cells in culture, including hepatocytes, hepatocellular carcinoma cells, and various breast cancer cell lines. This may reflect a novel mechanism of protein penetration through the plasma membrane or binding of secreted K8 to other cell-surface molecules. Cancer cells are known to secrete K8-containing protein complexes in vitro and in vivo. These complexes bind plasminogen as well. The plasminogen-binding activity of K8 is unique amongst IF proteins, probably because its sequence includes a carboxyl-terminal Lys residue. However, a K8 mutant that lacks the C-terminal Lys still binds plasminogen, albeit with decreased affinity. K18 does not bind plasminogen; however, K8 and K18 bind tissue-type plasminogen activator (tPA) equivalently. tPA-binding to K18 may be important in the mechanism whereby K8-K18 complexes promote plasminogen activation by tPA. Numerous studies have demonstrated correlations between high levels of K8 expression and increased migration and invasion of certain cancer cells. These correlations are most easily explained by the function of IF proteins in determining the rigidity of the cytoskeleton; however, the function of cell-surface K8 as a plasminogen receptor merits consideration. We have demonstrated that certain aggressive breast cancer cell lines, which have highly activated endogenous urokinase type-plasminogen activator (uPA)-uPA receptor (uPAR) systems, do not express high levels of cell-surface K8. The membrane macromolecule that is responsible for plasminogen-binding and for supporting activation of plasminogen by uPA on the surfaces of these cell types remains to be determined. This review focuses on the function of K8 as a plasminogen receptor and its potential role in cancer.

Animals↗

The cell-binding domains of plasminogen and their function in plasma.

Plasminogen binding sites are expressed by a wide variety of cell types and serve to promote fibrinolysis and local proteolysis. In this study, the recognition specificity of cells for plasminogen has been examined, primarily using platelets as models. Analyses with plasminogen fragments implicated residues 79-337 (or 353), comprising the first three kringles of plasminogen, as a primary recognition site for plasminogen binding to both thrombin-stimulated and nonstimulated platelets. Other regions of plasminogen, namely residues 354-439 and 442-790, can also participate in the interaction, and these other regions contribute differentially to the binding of the ligand to stimulated and nonstimulated platelets. Binding to nucleated cells, with U937 cells serving as the prototype, is dependent upon a recognition specificity similar to that of unstimulated platelets. Binding of Glu-plasminogen, the native form of the molecule, to thrombin-stimulated platelets has been shown previously to require platelet fibrin. By comparing the interaction of Glu-plasminogen and its degradation product, Lys-plasminogen, with thrombin-stimulated platelets, it is concluded that the cell surface uniquely enhances the affinity of Glu-, but not Lys-plasminogen, for fibrin. Finally, we have demonstrated that cellular receptors and interactive sites within plasminogen are available in the plasma environment. Thus, the functions ascribed to cellular plasminogen receptors can occur within a physiologic setting.

Binding Sites↗

Complexes between tissue-type plasminogen activator and proteinase inhibitors in human plasma, identified with an immunoradiometric assay.

Extrinsic (tissue-type) plasminogen activator antigen in human plasma, as measured by a two-site immunoradiometric assay, is composed of a fibrin-adsorbable and a nonadsorbable fraction. Gel filtration on Ultrogel AcA 44 in 1.6M KSCN of the fibrin-adsorbable fraction showed a peak with Mr congruent to 70,000, which contained plasminogen activator activity and was assumed to represent free extrinsic plasminogen activator. The nonadsorbable fraction showed a broad peak with Mr congruent to 140,000 without plasminogen activator activity. Overnight incubation at 37 degrees C of postexercise plasma revealed a shift of the Mr congruent to 70,000 peak to the Mr congruent to 140,000 position, suggesting that the Mr congruent to 140,000 peak consists of extrinsic plasminogen activator-protease inhibitor complex(es). alpha 2-Antiplasmin is the main inhibitor of extrinsic plasminogen activator in plasma 13 and is therefore most probably at least in part responsible for the generation of the Mr congruent to 140,000 component. A possible involvement of other plasma proteinase inhibitors was explored by incubation of 125I-labeled extrinsic plasminogen activator in alpha 2-antiplasmin-depleted plasma. A complex was formed with a t1/2 of about 1 hr, which was identified by immunoprecipitation as extrinsic plasminogen activator-alpha 1-antitrypsin complex. Additional evidence for the presence of extrinsic plasminogen activator complexes with alpha 2-antiplasmin and alpha 1-antitrypsin in plasma was obtained from two-site immunoradiometric assays, in which solid-phase anti-inhibitor antibody bound the corresponding complex, which was then detected with radiolabeled, affinospecific antibody against extrinsic plasminogen activator. It was concluded that plasma contains both free extrinsic plasminogen activator and plasminogen activator complexes with alpha 2-antiplasmin and alpha 2-antitrypsin. These complexes are also present in plasma collected on the active site inhibitor, D-Phe-Pro-Arg-CH 2Cl, at rest and after exercise and are therefore assumed to circulate in vivo.

Chromatography, Gel↗

Plasminogen: an important hemostatic parameter in septic patients.

BACKGROUND: Previously we observed in some but not all septic patients a low plasma concentration of plasminogen. OBJECTIVES: To investigate prospectively whether plasma levels of plasminogen or the ratio of plasminogen to alpha-2-antiplasmin have a prognostic value for survival from sepsis and to study the variation of other hemostatic parameters during septicemia. PATIENTS: The study population consisted of 45 consecutive patients with septicemia, 15 non-septic patients from the same intensive care unit and 30 healthy volunteers. MEASUREMENTS AND MAIN RESULTS: Plasminogen concentrations were significantly lower (p < 0.001) in plasma of septic patients (median 0,62 IU/ml range: 0.15-1,06) than in plasma of healthy controls (median 1.00 IU/ml, range: 0.75-1.10) or of non-septic intensive care patients (median 1.00 IU/ml, range: 0.82-1.08). Among the other parameters tested, plasminogen activator inhibitor (PAI-1) antigen concentration and PAI activity were similar in septic and non-septic intensive care patients, but higher than in healthy controls. Concentrations of elastase-alpha-1-protease inhibitor or of thrombin-antithrombin complexes were higher in septic patients than in non-septic intensive care patients or healthy controls. A degraded form of plasminogen of 38 kDa was detected by Western blot analysis in the plasma of septic patients, but not in plasma of non-septic intensive care patients or controls. Plasminogen alone or the ratio of plasminogen to antiplasmin were good markers for survival from septicemia. E.g. for plasminogen at a cut off of 0.65 IU/ml, sensitivity was 90.5% and specificity 66.7%, whereas for the ratio of plasminogen over antiplasmin at a cut off ratio of 0,65 IU/ml, sensitivity was 95.2% and specificity 70.8%. CONCLUSION: Plasminogen or the ratio of plasminogen to antiplasmin are sensitive markers for survival in patients with septicemia.

Adult↗

Clot accumulation characteristics of plasminogen-bearing liposomes in a flow-system. Groningen Utrecht Institute for Drug Exploration.

In this study, the clot accumulation properties of liposome-coupled plasminogen were compared to those of free (non-liposomal) plasminogen in an in vitro, closed-loop, flow-system. After introduction of a clot into the closed system, double-radiolabelled plasminogen-liposomes were administered and the accumulation of radiolabel on the entire clot was measured. Liposomal plasminogen showed improved accumulation over free plasminogen, on both a fibrin clot and a whole blood clot. Moreover, once liposomal plasminogen was fibrin associated, it could not be washed away with buffer, in contrast to free plasminogen. Liposomal plasminogen was able to compete successfully with an excess of free plasminogen. The plateau levels for the accumulated amount of plasminogen depended on the incubated amount of plasminogen and were influenced by partial degradation of the clot. Furthermore, it was shown that a threshold liposomal plasminogen surface-density was needed for optimum clot accumulation.

Buffers↗

Collagen dissolution by keratinocytes requires cell surface plasminogen activation and matrix metalloproteinase activity.

Matrix metalloproteinase-14 is required for degradation of fibrillar collagen by mesenchymal cells. Here we show that keratinocytes use an alternative plasminogen and matrix metalloproteinase-13-dependent pathway for dissolution of collagen fibrils. Primary keratinocytes displayed an absolute requirement for serum to dissolve collagen. Dissolution of collagen was abolished in plasminogen-depleted serum and could be restored by the exogenous addition of plasminogen. Both plasminogen activator inhibitor-1 and tissue inhibitor of metalloproteinase blocked collagen dissolution, demonstrating the requirement of both plasminogen activation and matrix metalloproteinase activity for degradation. Cell surface plasmin activity was critical for the degradation process as aprotinin, but not alpha(2)-antiplasmin, prevented collagen dissolution. Keratinocytes with single deficiencies in either urokinase or tissue plasminogen activator retained the ability to dissolve collagen. However, collagen fibril dissolution was abolished in keratinocytes with a combined deficiency in both urokinase and tissue plasminogen activator. Combined, but not single, urokinase and tissue plasminogen activator deficiency also completely blocked the activation of the fibrillar collagenase, matrix metalloproteinase-13, by keratinocytes. The activation of matrix metalloproteinase-13 in normal keratinocytes was prevented by plasminogen activator inhibitor-1 and aprotinin but not by tissue inhibitor of metalloproteinase-1 and -2, suggesting that plasmin activates matrix metalloproteinase-13 directly. We propose that plasminogen activation facilitates keratinocyte-mediated collagen breakdown via the direct activation of matrix metalloproteinase-13 and possibly other fibrillar collagenases.

Animals↗

The topology of plasminogen binding and activation on the surface of human breast cancer cells.

The urokinase-dependent activation of plasminogen by breast cancer cells plays an important role in metastasis. We have previously shown that the metastatic breast cancer cell line MDA-MB-231 over-expresses urokinase and binds and efficiently activates plasminogen at the cell surface compared to non-metastatic cells. The aim of this study was to further characterise plasminogen binding and determine the topology of cell surface-bound plasminogen in terms of its potential for activation. The lysine-dependent binding of plasminogen at 4 degrees C to MDA-MB-231 cells was stable and resulted in an activation-susceptible conformation of plasminogen. Topologically, a fraction of bound plasminogen was co-localised with urokinase on the surfaces of MDA-MB-231 cells where it could be activated to plasmin. At 37 degrees C plasmin was rapidly lost from the cell surface. Apart from actin, other candidate plasminogen receptors were either not expressed or did not co-localise with plasminogen at the cell surface. Thus, based on co-localisation with urokinase, plasminogen binding is partitioned into two functional pools on the surface of MDA-MB-231 cells. In conclusion, these results shed further light on the functional organisation of the plasminogen activation cascade on the surface of a metastatic cancer cell.

Actins↗

Levels of plasminogen activators and their inhibitors in maternal and umbilical cord plasma in severe preeclampsia.

OBJECTIVE: The purpose of this study was to evaluate the plasminogen activator system in maternal and umbilical cord plasma in patients with severe preeclampsia compared with control subjects with normotensive pregnancies. STUDY DESIGN: Maternal blood was sampled from 42 patients at a median gestational age of 32 weeks; after delivery, arterial and venous umbilical cord blood was sampled from 37 and 36 of these patients, respectively. Maternal blood from women with uncomplicated pregnancies was sampled at the gestational age of 32 weeks (n = 18, group I), and umbilical cord blood was sampled after premature deliveries of normotensive pregnancies (n = 5, group II). Data were analyzed with the use of Mann-Whitney U tests. RESULTS: Patients had significantly higher tissue plasminogen activator (P <.01) and unchanged urokinase plasminogen activator plasma levels compared with control subjects at 32 weeks of gestation; lower plasminogen activator inhibitor type 2 (P < 0.01) and no different plasminogen activator inhibitor type 1 concentrations were observed compared to control subjects at 32 weeks of gestation. In the arterial and venous umbilical cord plasma of patients, plasminogen activator inhibitor type 1 levels were significantly higher(P <.01) compared with control subjects at 32 weeks of gestation, although urokinase plasminogen activator levels in arterial and venous umbilical cord plasma (P < 0.01) were significantly lower. CONCLUSION: Lower plasminogen activator inhibitor type 2 levels are associated with placental insufficiency, and higher tissue plasminogen activator levels are associated with endothelial dysfunction in patients with severe preeclampsia. The higher plasminogen activator inhibitor type 1 levels and lower urokinase plasminogen activator levels in umbilical cord of these patients are suggestive of decreased fibrinolysis in the fetal circulation.

Female↗

Characterization of the high-affinity interaction between human plasminogen and pro-urokinase.

Activation of human Glu-plasminogen, Lys-plasminogen and low-Mr plasminogen (lacking lysine-binding sites) by pro-urokinase (pro-UK), obtained from a human lung adenocarcinoma cell line (Calu-3, ATCC), obeys Michaelis-Menten kinetics. Activation occurs with a comparable affinity (Km 0.40-0.77 microM), while the catalytic rate constant (kcat) is comparable for Glu-plasminogen (0.0022s-1) and low-Mr plasminogen (0.0034 s-1), but is somewhat higher for Lys-plasminogen (0.0106 s-1). The rate of activation of plasminogen by pro-UK is not significantly influenced by the presence of 6-aminohexanoic acid, purified fragments LBS I or LBS II or histidine-rich glycoprotein, indicating that the high affinity of pro-UK for plasminogen is not mediated via the high-affinity lysine-binding site of plasminogen located in kringles 1-3 (LBS I) nor via the low-affinity lysine-binding site comprised within kringle 4 (LBS II). The site(s) in plasminogen involved in the high-affinity interaction with pro-UK thus appear to be located within the low-Mr plasminogen moiety.

Adenocarcinoma↗

Modulation of the plasminogen activator activity of a transformed cell line by cell density.

The effects of variations in cell density on the expression of the plasminogen activator activity of a tumorigenic rat cell line were analyzed. At low cell densities, the plasminogen activator activity per cell was high and independent of cell density. As the cell density increased, the plasminogen activator activity per cell decreased until it eventually became inversely proportional to cell density. Inhibition of the plasminogen activator activity per cell by increases in cell density was not the result of the presence of a soluble inhibitor but seemed to require cell-to-cell contact. The V(max) per cell for the activation of plasminogen changed at high cell densities, but the K(m) did not change. This change in the V(max) per cell was in part the result of a change in the catalytic rate constant for the conversion of plasminogen to plasmin. This was inferred from studies on the kinetics of inhibition of plasminogen activator activity by diisopropyl fluorophosphate as a function of cell density. For cells growing at high densities, the rate of inhibition was constant, exhibiting a second-order rate constant of 2.6 x 10(-2)M(-1) s(-1). For cells growing at low densities, the plasminogen activator activity was inhibited at two different rates, one exhibiting a second-order rate constant of 2.6 x 10(-2)M(-1) s(-1) and the other exhibiting a second-order rate constant of 9.4 x 10(-2)M(-1) s(-1). We discuss the importance of cell density in assays of the plasminogen activator activity of cells, the use of this cell line to study the biochemical basis of the density dependence of plasminogen activator activity, and the density-dependent role of plasminogen activator activity in tumor formation and metastasis.

Animals↗

Plasminogen-mediated activation and release of hepatocyte growth factor from extracellular matrix.

Interventions that enhance plasminogen activation within the lung consistently limit the fibrosis that follows alveolar injury. However, this protective effect cannot be attributed solely to accelerated clearance of fibrin that forms as a provisional matrix after lung injury. To explore other mechanisms, we considered interactions between the plasminogen activation system and hepatocyte growth factor (HGF). HGF is known to have antifibrotic activity, but to do so, it must be both released from its sites of sequestration within extracellular matrix (ECM) and activated by proteolytic cleavage. A recent study using bleomycin-exposed mice showed that manipulations of the plasminogen activation system influenced the amount of free HGF within bronchoalveolar lavage fluid without affecting total lung HGF mRNA or protein. To elucidate the mechanisms, we studied the role of plasminogen activation in fibroblast-mediated HGF release and activation. We found that NIH3T3 and mouse lung fibroblasts release ECM-bound HGF in a plasminogen-dependent fashion. The plasminogen effect was lost when lung fibroblasts from urokinase-type plasminogen activator (uPA)-deficient mice were used, and was increased by fibroblasts from plasminogen activator inhibitor (PAI)-1-deficient mice. Plasminogen addition to NIH3T3 or mouse lung fibroblasts increased conversion of pro-HGF to its active form. The plasminogen effect on activation was lost when uPA-deficient fibroblasts were used and accentuated by PAI-1-deficient fibroblasts. In conjunction with the previous in vivo study, these results suggest that plasminogen activation can protect the lung against fibrosis by increasing the availability of active HGF.

Animals↗

Regulation of the single-chain urokinase-urokinase receptor complex activity by plasminogen and fibrin: novel mechanism of fibrin specificity.

Activation of plasminogen by urokinase plasminogen activator (uPA) plays important roles in several physiologic and pathologic conditions. Cells secrete uPA as a single-chain molecule (scuPA). scuPA can be activated by proteolytic cleavage to a 2-chain enzyme (tcuPA). scuPA is also activated when it binds to its receptor (uPAR). The mechanism by which the enzymatic activity of the scuPA/suPAR complex is regulated is only partially understood. We now report that the plasminogen activator activity of the scuPA/suPAR complex is inhibited by Glu- and Lys-plasminogen, but not by mini-plasminogen. In contrast, neither Glunor Lys-plasminogen inhibits the activation of plasminogen by 2-chain uPA. Inhibition of scuPA/suPAR activity was evident at a Glu-plasminogen concentration of approximately 100 nM, and at physiologic plasma concentrations inhibition was nearly complete. A plasminogen fragment containing kringles 1-3 inhibited the enzymatic activity of scuPA/suPAR with an inhibition constant (Ki) equal to 1.9 microM, increased the Michaelis constant (Km) of scuPA/suPAR from 18 nM to 49 nM, and decreased the catalytic constant (Kcat) approximately 3-fold from 0.035 sec(-1) to 0.011 sec(-1). Inhibition of scuPA/suPAR by plasminogen was completely abolished in the presence of fibrin clots. These studies provide insight into the regulation of uPA-mediated plasminogen activation and identify a novel mechanism for its fibrin specificity.

Animals↗

Effect of TGF-beta 1 and TNF-alpha on the plasminogen system of rat proximal tubular epithelial cells.

Rat proximal tubular epithelial cells derived from Wistar-Kyoto and spontaneously hypertensive rats were grown to confluency on semipermeable tissue culture inserts, and the plasminogen system of these cells was analyzed using enzyme assays, Western analysis, zymography, and reverse transcriptase-polymerase chain reaction. The tubular epithelial cells are capable of activating exogenous plasminogen to plasmin by endogenous plasminogen activators. The cells produce tissue-plasminogen activator, urokinase-plasminogen activator, plasminogen activator inhibitor-1, and urokinase-plasminogen activator receptor. These cells also produce the Heymann nephritis autoantigen, gp330 (megalin), and an associated protein of 45 kd (RAP). Incubation with transforming growth factor-beta 1 resulted in a decrease in plasminogen activation, primarily because of an increase in plasminogen activator inhibitor-1 RNA and protein and a decrease in u-PA RNA as noted by quantitative reverse transcriptase-polymerase chain reaction, Western analysis, and zymography. Incubation of these cells with tumor necrosis factor-alpha resulted in an increase in plasminogen activating ability, presumably through an increase in urokinase. Gp330 and the associated 45-kd protein (RAP) RNA were decreased in cells treated with tumor necrosis factor-alpha. The data presented indicates that these transformed proximal tubular epithelial cells may be used to study changes that may occur during Heymann nephritis with respect to the plasminogen system and the autoantigen gp330.

Animals↗