Variants of tissue-type plasminogen activator (t-PA) were constructed with selected cysteines replaced by alanine to evaluate the role of an unpaired cysteine, which has been presumed to be in the growth factor module. C75A, C83A, C84A and CC83-84AA variants of t-PA were expressed transiently in human embryonic kidney cells. The biochemical properties of these variants provided experimental evidence to identify the unpaired cysteine in t-PA. Assays of amidolytic activity, plasminogen activation (in the presence or absence of fibrinogen or fibrin), plasma clot lysis, fibrin binding, clearance in mice, and interaction with a panel of monoclonal antibodies were performed as the basis for comparing these variants with wild-type t-PA. In all assays, C83A t-PA was biochemically equivalent to wild-type t-PA. C75A t-PA, C84A t-PA and CC83-84AA t-PA variants exhibited reduced activities in a variety of functional assays. These variants displayed two-to threefold lower activity in fibrinogen or fibrin stimulated plasminogen activation, and fivefold reduced plasma clot lysis activity compared with that of wild-type t-PA. The affinity of C75A t-PA and C84A t-PA for fibrin was decreased more than two orders of magnitude compared with C83A t-PA or wild-type t-PA. Plasma clearance of C75A t-PA and C84A t-PA was reduced 2-fold in mice. The C75A, C84A and CC83-84AA variants displayed significantly decreased reactivity with anti-tPA monoclonal antibodies specific for finger/growth factor domain epitopes. These data are consistent with a disulfide linkage of Cys75 with Cys84 and that Cys83 exists as an unpaired sulfhydryl. The significance of the unpaired cysteine is as yet undetermined since C83A t-PA and wild-type t-PA are functionally equivalent.
Clinical experience suggests that thrombolytic-induced bleeding is associated with systemic activation of the thrombolytic system, Using fibrin specific variants of tissue-type plasminogen activator (t-PA) and making use of the apparent fibrin specificity of streptokinase (SK) in the rabbit we tested the hypothesis that minimizing systemic plasmin production and fibrinogenolysis will decrease hemorrhages in models of peripheral bleeding and embolic stroke. t-PA consumed 51% of the available fibrinogen; caused cerebral bleeds and increased peripheral bleeding time. Fibrin-specific variants of t-PA depleted less than 20% of the fibrinogen and did not cause peripheral or cerebral bleeding. However, an equipotent dose of SK converted only 12% of the available fibrinogen but increased bleeding time and caused hemorrhagic conversion in 75% of embolic stroke model animals treated. The data suggest that bleeding associated with tissue-type plasminogen activators is linked to systemic plasmin generation and subsequent fibrinogenolysis. This hypothesis does not explain the mechanism(s) of SK-induced bleeding.
BACKGROUND:The thrombolytic properties of a new variant of tissue plasminogen activator (TPA) (T103N, N117Q, KHRR 296-299 AAAA, or TNK-TPA) with longer plasma half-life, greater fibrin specificity, and increased resistance to inhibition by plasminogen activator inhibitor (PAI-1) were investigated in a rabbit thrombosed carotid artery model.METHODS AND RESULTS:After 60 minutes of arterial occlusion, TPA (1.5, 3.0, 6.0, or 9.0 mg/kg as a front-loaded IV infusion for 90 minutes; n = 22) or TNK-TPA (0.38, 0.75, or 1.5 mg/kg as IV bolus; n = 16) was administered. Blood flow through the artery was monitored for an additional 120 minutes. Bleeding was assessed by weighing the amount of blood absorbed in a gauze pad placed in a subcutaneous muscular incision. Recanalization rates and duration of recanalization were dose dependent. The doses that produced > 80% recanalization rates with the longest duration of recanalization were 9.0 mg/kg for TPA and 1.5 mg/kg for TNK-TPA. At these doses, time to reperfusion (mean +/- SEM) was significantly faster (11 +/- 2 versus 23 +/- 7 minutes) and duration of recanalization longer (77 +/- 9 versus 51 +/- 18 minutes) for TNK-TPA compared with TPA (P < .025). Weights of the residual thrombi of the TPA group were greater than those of the TNK-TPA group (P = .004). Concentrations of fibrinogen, plasminogen, and alpha 2-antiplasmin at 120 minutes were significantly higher for TNK-TPA-treated animals compared with TPA-treated animals (P < .001). ANOVA of the blood loss data determined that there were significant differences between thrombolytic agents but not between doses. After correction for saline controls, total blood loss for pooled doses of TPA and TNK-TPA was 82 +/- 6 mg and 40 +/- 4 mg, respectively (P < .01).CONCLUSIONS:From these data, we conclude that TNK-TPA, given as a bolus, produces faster and more complete recanalization of occluded arteries in a rabbit experimental model compared with TPA, without increasing systemic plasmin generation or peripheral bleeding. In addition, we observed that TNK-TPA, unlike TPA, did not potentiate collagen-induced aggregation of platelets obtained from human plasma. This lack of effect on platelet aggregation by TNK-TPA potentially could be associated with a decreased risk of reocclusion after successful thrombolysis.
Background: We have previously demonstrated that radiolabeled tissue-type plasminogen activator (tPA) in which the plasminogen-activating catalytic site has been inactivated binds avidly to thrombi and can be used for scintigraphic detection of pulmonary thrombi in vivo. The present study was performed to overcome identified limitations of the initially developed approach and to determine whether a tracer made with a molecular variant of tPA, TNK-tPA, would provide superior images of pulmonary thrombi and hence facilitate differential diagnosis of pulmonary embolism from acute myocardial infarction. It was thought that TNK-tPA may be superior in view of its longer biological half-life and less avid uptake by macrophages that would otherwise contribute to high background because of non-clot-selective(1) uptake of the tracer.Methods: I-123-tyrosylprolylarginyl chloromethyl ketone (I-123-YPACK-TNK-tPA) was infused into the systemic circulation of dogs with either pulmonary or right ventricular thrombi induced with thrombogenic tips of modified guide wires. Planar and single-photon emission computed tomography (SPECT) scintigraphic data were obtained, and blood and tissue samples were acquired for analysis of the distribution of the radiotracer over time.Results: Tracer cleared from blood with an a phase half-life of 10+/-1 min, paralleling the clearance of unlabeled TNK-tPA. Only minimal release of labeled fragments from liver into blood occurred during the entire time course of the imaging studies. Pulmonary thrombi were visualized with SPECT within 30-120 min in all dogs. Images were superior to those obtained after infusion of labeled wild-type tPA, primarily because of diminished background radioactivity and consequently increased scintigraphic contrast. In one dog which had a right ventricular thrombus, the thrombus was readily detectable in both planar and SPECT images.Conclusions: Radiolabeled TNK-tPA in which plasminogen-activating activity has been inhibited biochemically is an excellent radiopharmaceutical for prompt scintigraphic detection of pulmonary and ventricular thrombi in vivo, and an attractive candidate for rapid, sensitive and non-invasive diagnosis of pulmonary thromboembolic disease in patients.
Current treatment with tissue plasminogen activator (tPA) requires an intravenous infusion (1.5-3 h) because the clearance of tPA from the circulation is rapid (t 1/2 approximately 6 min). We have developed a tPA variant, T103N,N117Q, KHRR(296-299)AAAA (TNK-tPA) that has substantially slower in vivo clearance (1.9 vs. 16.1 ml per min per kg for tPA in rabbits) and near-normal fibrin binding and plasma clot lysis activity (87% and 82% compared with wild-type tPA). TNK-tPA exhibits 80-fold higher resistance to plasminogen activator inhibitor 1 than tPA and 14-fold enhanced relative fibrin specificity. In vitro, TNK-tPA is 10-fold more effective at conserving fibrinogen in plasma compared to tPA. Arterial venous shunt models of fibrinolysis in rabbits indicate that TNK-tPA (by bolus) induces 50% lysis in one-third the time required by tPA (by infusion). TNK-tPA is 8- and 13-fold more potent in rabbits than tPA toward whole blood clots and platelet-enriched clots, respectively. TNK-tPA conserves fibrinogen and, because of its slower clearance and normal clot lysis activity, is effective as a thrombolytic agent when given as a bolus at a relatively low dose.
Summaryrt-PA-K, a variant of recombinant tissue-type plasminogen activator (rt-PA) with substitution of amino acids 296 to 299 with alanine (KHRR296-299AAAA) has increased fibrin-specificity and reduced sensitivity to plasminogen activator inhibitor-1; rt-PA-T, with threonine 103 replaced by asparagine has an additional glycosylation site and a reduced clearance; and rt-PA-N, with asparagine 117 mutagen-ized to glutamine lacks the high mannose carbohydrate side chain. We have investigated whether combination of these properties in a single molecule might yield an improved thrombolytic agent.The thrombolytic potency and fibrin-specificity of the combination mutant rt-PA-TNK was compared with that of rt-PA in a combined venous whole blood clot model and platelet-rich arterial eversion graft thrombosis model in dogs given intravenous heparin and aspirin. Infusion of 0.125 to 1.0 mg/kg over 60 min in groups of 4 to 5 dogs produced dose-dependent fibrin-specific venous clot lysis. The thrombolytic potency (percent lysis per mg compound administered per kg body weight) of rt-PA-TNK was significantly higher than that of rt-PA as evidenced by a higher maximal rate of lysis of 480 ± 100% versus 140 ± 40% within the 2 h observation period per mg of compound administered per kg body weight (mean ± SEM, p = 0.004) and a significantly lower dose of 0.08 ± 0.01 versus 0.21 ± 0.04 mg/kg body weight at which the maximal rate of lysis was obtained (p = 0.004). This higher thrombolytic potency was the result of a significantly reduced clearance (240 ± 32 versus 540 ± 49 ml/min, p = 0.002) and a similar specific thrombolytic activity (percent lysis per |ig/ml plasma antigen level). Arterial reflow was obtained with 1 mg/kg rt-PA and with 0.5 mg/kg rt-PA-TNK, but with each agent recanalization was consistently associated with cyclic reocclusion and reflow. The frequency of arterial recanalization was somewhat higher with rt-PA-TNK (10/12) than with rt-PA (4/12) (p = 0.07) but the total patency times during a 2 h observation period were similar.
The fibrin specificity of tissue-type plasminogen activator can be increased by mutagenesis within at least four sites in the protease domain. These sites include residue I276, the new N-terminus formed by conversion to a two-chain structure, residues on either side of the active site cleft, KHRR 296-299 or DDD 364-366, a charged surface involved in fibrin interactions, which includes residues H432, R434, D460, R462 and a loop structure, PQANL 466-470, near the fibrin-binding patch. Variants with mutations at any of these sites have low fibrinogen-stimulated activity, whereas fibrin-stimulated activity is at least normal. Kinetic analysis reveals that mutations at these positions reduce the kcat in the presence of fibrinogen, but leave the molecules with normal kinetic constants in the presence of fibrin. A significant exception is found at positions 296-299, where the presence of fibrin manifests significant increases in both kcat and Km. Combinations of mutations at these sites appear to be additive with respect to fibrin specificity.
Summary In the accompanying paper, we reported that the properties of decreased plasma clearance rate, increased fibrin specificity, and resistance to inactivation by PAI-1 could be effectively combined in the t-PA variant T103N, KHRR 296-299 AAAA. In the current study we evaluated the in vivo efficacy of this variant as well as variants containing the individual mutations T103N and KHRR 296-299 AAAA. Plasma clearance and in vivo lysis of whole blood and platelet-rich clots were determined in a rabbit arterio-venous shunt model. The T103N containing variants were administered as an intravenous (i.v.) bolus. KHRR 296-299 AAAA and t-PA were infused i.v. over 90 min. The clearance rate of the KHRR 296-299 AAAA variant was similar to t-PA. However, the clearance of the T103N and T103N, KHRR 296-299 AAAA variants were 8 and 6-fold reduced, respectively. Potency of the variants relative to t-PA on whole blood clots ranged from 0.9 (T103N, KHRR 296-299 AAAA) to 1.7 (T103N). Relative potency on platelet-rich clots ranged from 2.4 (T103N) to 4.2 (T103N, KHRR 296-299 AAAA). Fibrinogen concentrations in rabbits 120 min after dosing with a 2.5 mg/kg bolus were: 24, 16, 82, and 77% of initial for t-PA; T103N; KHRR 296-299 AAAA; and T103N, KHRR 296-299 AAAA treatment groups, respectively. These results suggest that the T103N, KHRR 296-299 AAAA variant of t-PA, given as a bolus, could result in greater efficacy, particularly on refractory platelet-rich clots, without inducing the severe systemic lytic state produced by a bolus of a less fibrin specific variant.
Electrospray ionization mass spectrometry utilizing a single quadrupole on line with reversed-phase HPLC (LC/MS) enables the characterization of glycoproteins in a relatively short period of time. In this approach the protein is digested with a suitable protease and the peptides are separated by reversed-phase HPLC and detected by electrospray ionization mass spectrometry. The glycopeptides are initially observed as a cluster of negatively sloping ions in a contour plot of data from the LC/MS run (m/z vs retention time) or as a characteristic series of masses at different elution times. The search for a particular glycopeptide is based on previously known carbohydrate structures and on consensus glycosylation sites. Further structural information is obtainable with glycosidase digestion and LC/MS analysis. The mass shifts following glycosidase digestion allow further confirmation of the structure. This approach identifies the site of attachment of two hybrid glycoforms to the T11 tryptic peptide in a reversed-phase tryptic map of recombinant tissue plasminogen activator (rt-PA). Use of selected ion extraction of the LC/MS data files allows one to graphically describe the elution order of closely related glycopeptides. The potential of LC/MS for the characterization of small amounts of unknown glycoproteins is shown by the study of an rt-PA mutant. A new potential site for glycosylation is created by site directed mutagenesis of wild type rt-PA with replacement of a threonine residue with asparagine at residue 103. An examination of a tryptic map shows that the mutant contains two new complex carbohydrate chains. The introduction of the new asparagine proximal to asparagine 117 changes this native high-mannose site in rt-PA to a complex-type glycosylation. This method allows rapid identification of carbohydrate containing peptides and yields useful structural information on microgram amounts of material.
Site directed mutagenesis was used to construct a t-PA variant that contains an additional glycosylation site in the first kringle domain (T103N) combined with a tetra-alanine substitution in the protease domain (KHRR 296-299 AAAA). This combination variant has a plasma clearance rate that is 4.5-fold slower in rats and 5.4-fold slower in rabbits than t-PA. It is also less than one tenth as active as t-PA towards plasminogen in the presence of fibrinogen, and has approximately twice the normal activity in the presence of fibrin. It shows substantial resistance to the fast acting inhibitor, plasminogen activator inhibitor-1 (PAI-1), requiring a 10-fold greater molar excess of PAI-1 to reduce its activity by 50%, compared to t-PA. This is the result of a reduction of nearly 100-fold in the second order rate constant for PAI-1 inactivation. These results show that it is possible to combine mutations in different domains of t-PA to construct a variant which is simultaneously slower clearing, less reactive towards plasminogen in the absence of a fibrin clot, and resistant to inactivation by PAI-1.
The dose-dependent effects of tissue-type plasminogen activator (t-PA) on the kinetics of cerebral clot lysis in a rabbit model of middle cerebral artery embolic stroke were investigated. The clots were formed in vitro and tagged with 99Tc for gamma-scintigraphic imaging. After embolization, groups of animals were treated with t-PA. Dose-response curves for the t-PA were generated, and in addition, long and short dosing schedules were assessed. The optimal doses for frequency and rate of cerebral clot lysis in this model are approximately 6.3 mg/kg given over 2 hr or 3.3 mg/kg given over 30 min. These dosing regimens for t-PA were accompanied by approximately 50% consumption of plasma plasminogen, fibrinogen and alpha 2-antiplasmin. Doses of t-PA on either side of this optimum caused attenuation in both the frequency and rate of cerebral clot lysis. Treatment with t-PA under either dosing regimen did not augment the frequency of hemorrhagic transformation, but the size of the resultant hemorrhage in those animals where intracranial bleeding occurred was reduced by 3.3 mg/kg t-PA given over 30 min.