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Thrombin specificity.

A model of thrombin interaction with distinct substrates or ligands has been derived from the crystallographic studies of thrombin-inhibitors complexes, and buttressed by functional studies with mutant thrombins, thrombin proteolytic derivatives or antibodies against thrombin. The unique specificity of thrombin for its substrates and ligands may be ascribed to multiple interactions with both the active site cleft and exosite(s) distinct from the active site. Two prominent insertion loops around Trp 50 and Trp 148 project over the active site cleft and play an important role in the substrates selection. Several substrates (fibrinogen, thrombin receptor, heparin cofactor II) or ligands (thrombomodulin, glycoprotein Ib) interact with a large exosite located on the surface of the loop segment 65-76, mainly constituted of basic amino acids, designated anion binding exosite 1. Interaction with these various macromolecules appears to involve a limited number of residues within the large exosite 1. It is conceivable that exosite 1 contains distinct subsites, although most of them may overlap. A second basic exosite (anion binding exosite 2) is located close to the carboxy-terminal B chain helix. Exosite 2 interacts with heparin, the chondroitin sulfate moiety of thrombomodulin and prothrombin activation fragment 2. Interaction of ligands with either exosite 1 or exosite 2 leads to conformational changes of the thrombin molecule, that may be important determinants of thrombin specificity. Whether exosite 2 cooperates with exosite 1 for thrombin interaction with fibrin(ogen) or the thrombin receptor remains to be determined.

Amino Acid Sequence↗

Thrombin-activated human endothelial cells support monocyte adhesion in vitro following expression of intercellular adhesion molecule-1 (ICAM-1; CD54) and vascular cell adhesion molecule-1 (VCAM-1; CD106).

Thrombin, a central molecule in coagulation, is also involved in inflammation. Notably, thrombin induces endothelial neutrophil adhesion, P- and E-selectin expression, and chemokine production. We show here that thrombin induces expression of intercellular adhesion molecule-1 (ICAM-1; CD54) and vascular cell adhesion molecule-1 (VCAM-1; CD106) on human umbilical vein endothelial cells (HUVECs) associated with increased adhesion of monocytes. Thrombin increased mRNA steady-state levels and expression of ICAM-1 over 24 hours. Thrombin-induced VCAM-1 expression exhibited unusual kinetics, reaching maximum levels after 6 to 12 hours, but decreasing to near baseline after 24 hours. Thrombin activity on HUVECs was mediated through interaction with its specific receptor, because ICAM-1 and VCAM-1 expression were similarly induced by the 14-amino acid thrombin receptor-activating peptide. Thrombin-induced ICAM-1 and VCAM-1 expression was significantly inhibited by hirudin, but not by interleukin-1 receptor antagonist or anti-tumor necrosis factor alpha monoclonal antibody (MoAb). Thrombin-activated HUVECs significantly increased greater numbers of adhering THP-1 macrophagic cells, peripheral blood mononuclear cells, or purified monocytes than unstimulated HUVECs. This adhesion was inhibited by anti-CD18 and anti-CD49d MoAb, demonstrating that thrombin-induced ICAM-1 and VCAM-1 were functional. These results show that, in addition to selectins, thrombin directly induces a cytokine-independent expression of adhesion molecules of the Ig superfamily on HUVECs that may support firm leukocyte attachment during inflammation.

Antibodies, Monoclonal↗

von Hippel-Lindau tumor suppressor protein stimulation by thrombin involves RhoA activation.

Inactivation of the von Hippel-Lindau (VHL) tumor suppressor gene is associated with the development of vascular tumors including renal cell carcinoma. Aside from the role played by the VHL protein (pVHL) in negative regulation of hypoxia-inducible factor, 41F-1alpha, pVHL also takes part in cytoskeletal organization. Thrombin is a serine protease involved in angiogenesis and in cancer progression and its action is mediated by the protease-activated receptors (PARs). In several cell types, thrombin induces reorganization of the cytoskeleton along with RhoA activation. Thus, we conducted an investigation on the capacity of thrombin to regulate pVHL expression. Our results demonstrated that VHL mRNA and protein levels were increased by thrombin in cultured renal cancer cells. Cytoplasmic pVHL was redistributed to perinuclear regions and membrane fractions following thrombin treatments. Stimulation of Caki-1 cells with PAR1, PAR2 and PAR4 agonist peptides demonstrated that PAR1 was the receptor involved in thrombin-induced pVHL expression. Western blot analysis confirmed that these cells express PAR1 and that its expression was increased by thrombin. PAR1 activation by both thrombin and an agonist peptide stimulated renal cancer cell invasion through Matrigel. Interestingly, the upregulation of pVHL was dependent on RhoA because C3 exotoxin abolished pVHL induction. However, the pharmacological Rho kinase inhibitor, Y27632, did not influence pVHL expression in the presence of thrombin, suggesting that other RhoA effectors were involved in the process. Together, these results demonstrate that thrombin induces both pVHL expression via PAR1/RhoA activation as well as the stimulation of renal cancer cell invasion suggesting a role for thrombin in tumor invasion.

Carcinoma, Renal Cell↗

Thrombin stimulates arachidonate metabolism in murine tumor cells.

Thrombin can be formed in the tumor cell microenvironment following activation of the clotting cascade by procoagulants of cancer or host cells. We have tested here the effects of thrombin, either "endogenous" or "exogenous" (see below), on arachidonate mobilization from membrane phospholipids of mouse mammary tumor virus-induced (MMTV) carcinoma cells. These tumor cells exhibit in vitro a tissue type procoagulant activity (130 thromboplastin units/10(4) cells) and are therefore able to induce thrombin formation in a plasmatic milieu. To verify the effect of thrombin formation by tumor cell procoagulant ("endogenous thrombin"), either human or mouse platelet-free plasma (20% in DMEM) was added to the cell layer (prelabelled for 5 hr with a trace amount (0.013 microM) of 3H-arachidonate) and the system was recalcified (15 mM CaCl2). Thin-layer radiochromatography of the culture medium showed a significant release of 3H-labelled arachidonate products PGE2, PGF2 alpha and 6-ketoPGF1 alpha after 1 hr of incubation. To verify the effect of thrombin formation from host sources ("exogenous thrombin"), either bovine or purified human alpha-thrombin (0.1-10 U/ml) was added to the cells for different periods (from 5 min to 20 hr). Exogenous thrombin stimulated arachidonate release and metabolism in a dose-related manner. With short labelling periods (0.013 microM 3H-arachidonate for 30 min-1 hr) thrombin stimulated the release of unmetabolized 3H-arachidonate, but not of 3H-arachidonate metabolites. These processes were inhibited by a specific inhibitor of thrombin enzymatic activity (alpha-NAPAP, 140 microM) and by a cyclo-oxygenase inhibitor (ASA 4mM). Tumor-associated procoagulants may thus contribute not only to fibrin deposition but also to generation of multipotent mediators such as arachidonate metabolites.

Animals↗

Thrombin-induced chemotaxis and aggregation of neutrophils.

Thrombin-induced neutrophil chemotaxis and aggregation were studied using cells isolated from either human or sheep blood. Sheep neutrophils (10(8) cells/ml) exhibited maximum chemotactic migration towards 10(-8)M human alpha-thrombin, 10(-8)M gamma-thrombin (which lacks the fibrinogen site), and 10(-12)MD-Phe-Pro-Arg-CH2-alpha-thrombin (catalytically inactive thrombin). Chemotactic responses of the same magnitude were obtained with human neutrophils (10(8) cells/ml). The chemotactic responses to thrombin were comparable to those obtained with diluted (1:200 v/v) zymosan activated serum (ZAS) and 10(-11)M FMLP. Premixing of the thrombin forms with hirudin in 1:1 stoichiometric amounts abolished the chemotaxis but not chemokinesis Aggregatory responses of human and sheep neutrophils were comparable for ZAS, alpha-thrombin, and gamma-thrombin. The responses of both human and sheep neutrophils to D-Phe-Pro-Arg-CH2-alpha-thrombin were attenuated, indicating that the proteolytic site may be involved in the aggregatory response. The results suggest that thrombin-induced neutrophil chemotaxis and aggregation are mediated by different mechanisms, since chemotaxis is a catalytically independent response whereas aggregation is an active site independent response.

Animals↗

Thrombin-induced prostacyclin biosynthesis in human endothelium: role of guanine nucleotide regulatory proteins in stimulus/coupling responses.

The regulation of prostacyclin (PGI2) synthesis by cultured human umbilical vein endothelium (HUVEC) was investigated. HUVEC monolayer generation of PGI2 was monitored by RIA of 6-keto PGF1 alpha and dose-dependent increases observed with human alpha- and gamma-thrombins, histamine, or arachidonate. Alpha thrombin (10 nM) produced levels of 6-keto PGF1 alpha approximating responses with 1 microM gamma-thrombin, 5 microM arachidonate, or 10 microM histamine. Diisopropyl phosphorofluoridate-inactivated alpha-thrombin did not stimulate PGI2 release, demonstrating that catalytic activity was required for thrombin-stimulated PGI2 release. Sodium fluoride (NaF), at concentrations known to activate guanine nucleotide regulatory proteins (G proteins), directly stimulated HUVEC PGI2 synthesis in a dose-dependent and time-dependent manner (20 mM NaF, 4.4 +/- 0.5-fold increase at 10 min, 11.9 +/- 1.5-fold increase at 30 min). Neither alpha-thrombin nor NaF-stimulated PGI2 release was dependent upon the availability of extracellular Ca++). The hypothesis that G proteins are involved in agonist-stimulated PGI2 synthesis was further supported by studies using digitonin-permeabilized HUVEC monolayers challenged with another G protein activator, guanosine 5'-0-3-thiotrisphosphate (GTP gamma S), which effected significant dose-dependent increases in PGI2 synthesis compared with control levels of 6-keto PGF1 alpha. In contrast, the G-protein inhibitor GDP beta S, (guanosine 5'-0-2-thiodiphosphate), attenuated alpha-thrombin-mediated prostaglandin generation. Treatment of HUVEC monolayers with pertussis toxin (1 microgram/ml) did not inhibit the PGI2 synthesis stimulated by either alpha-thrombin, NaF, or histamine but catalyzed the ADP ribosylation of a 40 kDa membrane protein which cross-reacted with antisera against a synthetic peptide corresponding to an amino acid sequence common to the alpha-subunit of other G-proteins. Preincubation of HUVEC microsomal membranes with alpha-thrombin diminished pertussis toxin-catalyzed ADP ribosylation in a time-dependent manner. These data suggest that thrombin stimulation of PGI2 synthesis by HUVEC monolayers requires the catalytically functional enzyme and further suggests that the thrombin-occupied receptor is coupled to phospholipase activities by a pertussis toxin-insensitive guanine nucleotide regulatory protein in human endothelial cell membranes.

Adenosine Diphosphate↗

Thrombin inhibits proliferation of the human megakaryoblastic MEG-01 cell line: a possible involvement of a cyclic-AMP dependent mechanism.

Thrombin, a potent platelet activating agent, has previously been found to increase intracellular calcium levels and/or thromboxane A2 synthesis in leukemic cell lines exhibiting specific markers of the megakaryocyte/platelet lineage. However, its functional role on these cells has not been defined. As thrombin is implicated in the regulation of cellular proliferation or differentiation in various other cell types, we investigated the functional effects of thrombin on the megakaryoblastic MEG-01 cell line, and further explored its receptor coupling mechanisms on these cells. We observed that thrombin caused in 1% serum containing culture medium, a reduction in the proliferation of MEG-01 cells, without affecting their differentiation stage as determined by the expression of platelet glycoproteins GPIIb/IIIa and GPIb, FVIII-related-antigen and cell-size measurement, which are specific markers for megakaryocyte maturation. In addition, incubation of MEG-01 cells with thrombin resulted in dose-dependent increases in cAMP levels, and in inositol-trisphosphate formation and intracellular Ca2+ levels. All these responses required thrombin proteolytic activity. The lipoxygenase inhibitor, nordihydroguaiaretic acid, blunted thrombin-induced calcium increase without affecting thrombin-induced increase in cAMP levels, suggesting different thrombin coupling mechanisms with these two second messenger pathways. In addition, the inhibitory effect of thrombin on MEG-01 cell growth was mimicked by cAMP level enhancing agents such as forskolin, prostaglandin E1 and Bt2cAMP. These results suggest the involvement of a cAMP-dependent mechanism in the thrombin-induced reduction in MEG-01 cell growth.

Calcium↗

Comparison of the structures of the cyclotheonamide A complexes of human alpha-thrombin and bovine beta-trypsin.

Thrombin, a trypsin-like serine protease present in blood, plays a central role in the regulation of thrombosis and hemostasis. A cyclic pentapeptide, cyclotheonamide A (CtA), isolated from sponges of the genus Theonella, inhibits thrombin, trypsin, and certain other serine proteases. Enzyme inhibition data for CtA indicate that it is a moderate inhibitor of alpha-thrombin (K(i) = 1.0 nM), but substantially more potent toward trypsin (K(i) = 0.2 nM). The comparative study of the crystal structures of the CtA complexes of alpha-thrombin and beta-trypsin reported here focuses on structure-function relationships in general and the enhanced specificity of trypsin, in particular. The crystal structures of the CtA complexes of thrombin and trypsin were solved and refined at 1.7 and 2.0 A resolution, respectively. The structures show that CtA occupies the active site with the Pro-Arg motif positioned in the S2 and S1 binding sites. The alpha-keto group of CtA is involved in a tetrahedral intermediate hemiketal structure with Ser 195 OG of the catalytic triad and is positioned within bonding distance from, and orthogonal to, the re-face of the carbonyl of the arginine of CtA. As in other productive binding modes of serine proteases, the Ser 214-Gly 216 segment runs in a twisted antiparallel beta-strand manner with respect to the diaminopropionic acid (Dpr)-Arg segment of CtA. The Tyr 60A-Thr 60I insertion loop of thrombin makes a weak aromatic stacking interaction with the v-Tyr of CtA through Trp 60D. The Glu 39 Tyr and Leu 41 Phe substitutions in trypsin produce an enhanced aromatic interaction with D-Phe of CtA, which also leads to different orientations of the side chains of D-Phe and the v-Tyr. The comparison of the CtA complexes of thrombin and trypsin shows that the gross structural features of both in the active site region are the same, whereas the differences observed are mainly due to minor insertions and substitutions. In trypsin, the substitution of Ile 174-Arg 175 by Gly 174-Gln 175 makes the S3 aryl site more polar because the Arg 175 side chain is directed away from thrombin and into the solvent, whereas Gln 175 is not. Because the site is occupied by the Dpr group of CtA, the occupancy of the S3 site is better in trypsin than in thrombin. In trypsin, the D-Phe side chain of CtA fits between Tyr 39 and Phe 41 in a favorable manner, whereas in thrombin, these residues are Glu 39 and Leu 41. The higher degree of specificity for trypsin is most likely the result of these substitutions and the absence of the fairly rigid Tyr 60A-Thr 60I insertion loop of thrombin, which narrows access to the active site and forces less favorable orientations for the D-Phe and v-Tyr residues.

Animals↗

Thrombin regulates interleukin-6 synthesis through phosphatidylcholine hydrolysis by phospholipase D in osteoblasts.

We previously reported that thrombin stimulates Ca2+ influx and activates phosphatidylcholine-hydrolyzing phospholipase D in osteoblast-like MC3T3-E1 cells. In this study, we investigated the effect of thrombin on interleukin-6 (IL-6) synthesis in these cells. Thrombin stimulated IL-6 synthesis dose-dependently in the range between 0.01 and 1 U/ml. The depletion of extracellular Ca2+ by EGTA suppressed the thrombin-induced IL-6 synthesis. TMB-8, an inhibitor of intracellular Ca2+ mobilization, also inhibited the IL-6 synthesis by thrombin. Propranolol, a phosphatidic acid phosphohydrolase inhibitor, enhanced the IL-6 synthesis by thrombin. Calphostin C, a highly potent and specific inhibitor for protein kinase C, significantly amplified the IL-6 synthesis by thrombin. The thrombin-induced IL-6 synthesis was enhanced in PKC down-regulated MC3T3-E1 cells. These results strongly suggest that thrombin stimulates IL-6 synthesis, which depends on intracellular Ca2+ mobilization mainly from extracellular space in osteoblasts, and that the IL-6 synthesis by thrombin is regulated due to thrombin-activated protein kinase C through phosphatidylcholine-hydrolyzing phospholipase D.

Animals↗

Identification of glycyrrhizin as a thrombin inhibitor.

Glycyrrhizin (GL), an anti-inflammatory compound isolated from Glycyrrhiza glabra, was identified as a new thrombin inhibitor: (a) It prolonged plasma recalcification and thrombin and fibrinogen clotting times, and (b) it inhibited thrombin-induced, but not collagen-, PAF- or convulxin-induced platelet aggregation. On the other hand, GL did not block thrombin's amidolytic activity upon S-2238. Furthermore, the fluorescence emission intensity of dansyl-thrombin was increased upon GL binding. Moreover, GL displaced hirudin as an inhibitor of thrombin-catalyzed hydrolysis of S-2238. Our data provide evidence that GL is a selective inhibitor of thrombin (the first one isolated from plants) that is able to exert its anti-thrombin action by interacting with the enzyme's anion binding exosite 1. A pharmacophoric search identified GL as a sialyl Lewis X (SLe[X]) mimetic compound able to inhibit selectin binding to SLe(X). However, SLe(X) did not affect thrombin clotting activities, which indicates a lack of its interaction with thrombin and distinguishes both molecules. It is suggested that the anti-inflammatory effect of GL may be due to its effective anti-thrombin action.

Animals↗

Glycoprotein Ibalpha-bound thrombin functions as a serine protease to produce macromolecular activators of phagocytosis from platelets.

Production of macromolecular activators of phagocytosis from platelets (MAPPs) was observed when the lysate of fresh platelets was incubated with MAPP precursors and thrombin. An 800-Da MAPP activator (PMA-II) was obtained by Superdex peptide gel filtration of the lysate after thrombin treatment. The necessity of thrombin in MAPP production in fresh platelets was confirmed by the action of anti-thrombin monoclonal antibody or anti-thrombin III and heparin. To specify the thrombin receptor on which the thrombin forming PMA-II binds, the effects of thrombin-receptor-derived peptides and anti-thrombin receptor antibodies on MAPP production by stored platelets which have lost their thrombin content were investigated. DYYPEEDTEGD involved in glycoprotein Ibalpha and anti-glycoprotein Ibalpha antibody prevented stored platelets from producing MAPP. These observations suggest that thrombin bound to glycoprotein Ibalpha functions as a serine protease in MAPP formation.

Amino Acid Sequence↗

Thrombin modulation of natural killer activity in human peripheral lymphocytes.

In addition to its pivotal role in the coagulation cascade, thrombin is mitogenic for fibroblasts and endothelial cells, and activates a number of inflammatory cells including monocytes and T-lymphocytes. To determine if other immune functions are modulated by thrombin and if this modulation is direct or indirect, we investigated whether highly purified human alpha-thrombin affects natural killer (NK) and lymphokine-activated killer (LAK) cell-mediated cytotoxicity. Thrombin enhanced NK cell-mediated cytotoxicity by more than 60% and enhanced IL-2 production and NK 3.3 cell responsiveness to IL-2. Unexpectedly, thrombin and the receptor activating "tethered ligand" domain of the thrombin receptor (TRP-7:SFLLRNP) inhibited LAK cell-mediated cytotoxicity by 50%. DIP-thrombin (a proteolytically inactive form of alpha-thrombin) had no inhibitory activity, suggesting that proteolytic activation of thrombin receptor is requisite for inhibition. These results indicate that cell-mediated cytotoxicity may be enhanced by thrombin through a mechanism involving stimulation of cytokine production and NK cell responsiveness, but that activation of thrombin receptor may also inhibit cytotoxic effects of LAK cells. The role of this dual regulation in processes of cell surveillance, would healing, and inflammation remains to be determined.

Cell Line↗

Conformational transitions linked to active site ligation in human thrombin: effect on the interaction with fibrinogen and the cleavable platelet receptor.

An experimental strategy based on solution viscosity perturbation allowed us to study the energetics of amide-substrates, p-aminobenzamidine (p-ABZ) and proflavin binding to the catalytic site of two proteolyzed forms of alpha-thrombin, i.e. zeta- and gamma T-thrombin. These thrombin derivatives are cleaved at the Leu144-Gly150 loop and at the fibrinogen recognition exosite (FRS), respectively. A phenomenological analysis of thermodynamic data showed that the amide substrates and p-ABZ interactions with zeta-thrombin were respectively, associated with a chemical compensation (i.e. the linear relationship between entropy and enthalpy of binding) and a hydrophobic phenomenon (i.e. a change in the standard heat capacity). The latter was slightly lower than that previously observed for a alpha-thrombin (0.78 +/- 0.25 versus 1.01 +/- 0.17 kcal/mol K). Both phenomenon were absent in gamma T-thrombin. The interaction of a alpha-, zeta- and gamma T-thrombin with macromolecular substrates that "bridge-bind" to both the catalytic site (CS) and fibrinogen recognition exosite (FRS), such as fibrinogen and the cleavable platelet receptor (CPR), was also evaluated. These interactions were studied by following fibrinopeptide A (FpA) release and by measuring intraplatelet Ca2+ changes induced by thrombin-CPR interaction. It was found that the free energy of activation (RT ln Kcat/Km) for both fibrinogen and CPR hydrolysis followed the same hierarchy, i.e. alpha > zeta > gamma. Moreover, the values of delta Cp for alpha-, zeta- and gamma T-thrombin interaction with p-ABZ were found to be linearly correlated to the free energy of activation for both fibrinogen and CPR cleavage. In conclusion, these data demonstrate that: (1) the Leu144-Gly150 loop and the FRS are both involved in the conformational transition linked to the binding of p-aminobenzamidine to the thrombin active site; (2) the extent of thrombin's capacity to undergo conformational transitions in alpha-, zeta- and gamma T forms is positively correlated to the free energy of activation for hydrolysis of macromolecular substrates interacting with both the catalytic domain and the FRS.

Amino Acid Sequence↗

Effect of sodium on the energetics of thrombin-thrombomodulin interaction and its relevance for protein C hydrolysis.

Measurements of the apparent affinity constant for thrombomodulin (TM) binding to human alpha-thrombin as a function of both NA+ and temperature at constant ionic strength (0.15 M) showed that TM affinity increases in the presence of Na+ and vice versa. Moreover, this experimental strategy allowed us to accurately split the free energy of sodium binding into its entropic and enthalpic components for both the TM-free and TM-bound enzyme. Namely, at 25 degrees C, the value of delta G of sodium binding was found equal to -2.4 kcal/mol in the absence of TM and -3.6 kcal/mol for the thrombin-TM complex. The enthalpic contribution to the free energy of sodium binding is equal to -27 kcal/mol and -21 kcal/mol in the TM-free and TM-bound thrombin forms, respectively. Finally, the entropy change for sodium binding was also affected by TM, being equal to -83 cal/(mol deg) and -58 cal/(mol deg) in TM-free and TM-bound thrombin species, respectively. Moreover, the thermodynamic parameters for TM binding to Na+-free thrombin species were solved. TM binding is characterized by an enthalpy and entropy change equal to -10 kcal/mol and 2 cal/(mol deg), respectively, for Na+-free thrombin. It is well known that Na+ binding to thrombin causes conformational transitions and functional activation of the enzyme molecule. The finding that binding of thrombomodulin enhances thrombin affinity for sodium and vice versa raises the question as to whether the change of Na+ ligation induced by TM binding could contribute to the change in thrombin specificity for the hydrolysis of Protein C. Therefore, the effect of sodium binding to thrombin on the hydrolysis of human Protein C was extensively investigated. At both 25 and 37 degrees C the value of kcat/Km for Protein C hydrolysis by thrombin in the absence of TM was found to be enhanced by Na+ over a concentration ranging from 0 to 150 mM. Application of thermodynamic principles demonstrated that the Na+-thrombomodulin linkage contributes, under physiological conditions of sodium activity and temperature, to reduce significantly the transition-state stabilization free energy for Protein C hydrolysis.

Amino Acid Sequence↗

Thrombin activity on dissected and anastomosed human arteries.

The mechanism of anastomotic thrombosis in microvascular surgery remains poorly understood. We hypothesized that thrombin activity at anastomoses plays a major role in this process. To study this, a surgically relevant human artery anastomosis model was used to (i) measure surface thrombin activity on anastomoses and on intact vessel, (ii) determine the inhibitability of surface thrombin by heparin and recombinant hirudin (r-hirudin), and (iii) determine the anastomotic and intact vessel binding capacity for additional thrombin. Human placental artery segments were placed in chambers in which 0.2 cm2 of luminal surface was exposed to citrated platelet-poor plasma for 10 min at 37 degrees C. The fibrinopeptide A (FPA) concentration (indicating the action of thrombin on fibrinogen) in the supernatant was then measured using an ELISA assay. Intact vessels and anastomoses expressed equivalent thrombin activity that could not be inhibited by heparin at a concentration (0.3 U/ml) that is sufficient to prolong the activated partial thromboplastin time two-fold. Conversely, the concentration of heparin routinely used in intraoperative vessel irrigation solutions (50 U/ml) was able to completely block thrombin activity at both sites. r-Hirudin (0.3 heparin equivalent anti-IIa U/ml) was able to inhibit nearly all of the thrombin activity on each site. Each site was able to bind and express the activity of additional thrombin, indicating the potential for increased vessel thrombogenicity after local clot has formed and has been removed. These data indicate the presence of thrombin on dissected human vessels and its presence in equal amounts on intact and anastomosed vessels when measurement is made before blood flow resumes. Furthermore, vessel-associated thrombin is resistant to a standard systemic concentration of heparin but is susceptible to the much higher heparin concentration that can be delivered locally by the surgeon during vessel irrigation.

Anastomosis, Surgical↗

Effect of sulfated xylans during the interaction of [125I]-thrombin with antithrombin III or heparin cofactor II of human plasma.

[125I]-Labeled thrombin was incubated with human plasma and its interactions with the two plasma protease inhibitors antithrombin III (AT-III) or heparin cofactor II (HC-II) were investigated in the presence of oat spelts xylan sulfate (OSXS), sodium pentosan polysulfate (SP-54), and the results were compared with heparin and dermatan sulfate. Addition of OSXS or SP-54 enhanced the complexation of thrombin with HC-II or with both AT-III and HC-II depending upon the concentration and the duration of the interactions of the sulfated compounds with plasma. During the 30 s interaction, OSXS and SP-54 enhanced both AT-III-thrombin and HC-II-thrombin interaction while heparin was more selective and enhanced only the AT-III-thrombin interaction. However after a 2 min interaction, heparin showed an increase in the HC-II-thrombin interaction at higher concentrations. The complexations of AT-III-thrombin and HC-II-thrombin were reversed in the presence of 200 micrograms/ml of SP-54 during a 30 s interaction or in presence of 100 micrograms/ml of OSXS during a 2 min interaction. The Western blotting method of detecting thrombin showed that during the 10 s interaction, heparin enhanced the thrombin-AT-III complex formation while OSXS enhanced the thrombin-HC-II complex formation.

Antithrombin III↗

Covalent binding of human thrombin to a human endothelial cell-associated protein.

Binding of 125I-thrombin to endothelial cells derived from human umbilical vein was studied in tissue culture. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) and autoradiography revealed covalent binding of thrombin in a 72-kDa complex. This binding is specific and requires the catalytically active site of the enzyme. Formation of the complex could be detected as early as 3 min after addition of thrombin or with a thrombin concentration as low as 0.5 nM. This irreversible binding exhibits thrombin dose-dependence and reaches maximum levels at a concentration of 50 nM (10 fmol/10(5) cells). Some characteristics of the 72-kDa complex were compared to those of the complexes formed between thrombin and protease nexin originating from fibroblasts or platelets: (i) its electrophoretic mobility on SDS-PAGE is identical to that of the thrombin-platelet protease nexin complex, (ii) heparin prevents the appearance of the complex on the cell surface, (iii) plasmin in a 100-fold molar excess prevents the covalent linkage of thrombin, suggesting that the protease specificity of the endothelial component involved in the complex might not be restricted to thrombin. Yet no release, nor any secretion of the endothelial protein, could be detected. These results indicate that active thrombin binds covalently to a specific endothelial protein that is in several respects similar to fibroblast or platelet protease nexin and provides a thrombin binding site distinct from thrombomodulin and glycosaminoglycans.

Amyloid beta-Protein Precursor↗

Thrombin inactivation on surfaces with covalently bonded heparin.

About 8000 Daltons porcine mucosa heparin fragments were covalently bonded by end-point attachment to polyethylene. The interaction between the immobilized heparin, added thrombin, and antithrombin III [AT] was investigated. The heparin surface was adsorbed with either albumin, AT dissolved in albumin or Tyrode, or platelet free plasma. Irrespective of the pre-treatment procedure, exposure of the surface to thrombin resulted in the same substantial decrease of thrombin in solution and the same degree of surface-confined thrombin activity. It was concluded that the heparin surface has a large capacity to bind thrombin and that the thrombin inhibitory capacity of high affinity heparin fragments is limited. On exposure of the thrombin-loaded surfaces to defibrinogenated plasma or AT, the surface-confined thrombin was inhibited within 30 seconds. Successive dilutions of plasma or AT decreased the inhibition rate but not the inhibition capacity. It is concluded that inhibition of thrombin adsorbed on the heparin surface occurs as follows: Added AT adheres to high affinity heparin fragments on the surface whereupon adsorbed thrombin migrates in the hydrophilic heparin coating towards the reaction site of AT and becomes inhibited. The inactivated thrombin-AT complex leaves then the surface, thus enabling the process to be repeated.

Antithrombin III↗