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Enoxaparin versus tinzaparin in non-ST-segment elevation acute coronary syndromes: results of the enoxaparin versus tinzaparin (EVET) trial at 6 months.

BACKGROUND: We have previously reported significant benefits of using enoxaparin, compared to tinzaparin, in the 7- and 30-day incidence of the composite triple end point of death, myocardial infarction (MI), or recurrent angina in patients with non-ST-segment elevation acute coronary syndromes (NSTACS). In the present study, we aimed to determine whether the observed benefits of enoxaparin were maintained beyond the early phase and report the results of the 6-m follow-up of patients in the EVET study. METHODS: We recruited 438 patients with NSTACS. All patients received oral aspirin and were randomized to also receive enoxaparin, 100 IU/kg subcutaneously twice daily (equivalent to 1 mg/kg twice daily; n = 220), or tinzaparin, 175 IU/kg subcutaneously once daily (n = 218), for up to 7 days. RESULTS: At 6 m, the incidence of the composite triple end point of death, MI, or recurrent angina was lower among patients receiving enoxaparin compared to those receiving tinzaparin (25.5% vs 44.0%, P < .001). A lower incidence of the secondary composite end point of death or MI was also found in the enoxaparin group compared to tinzaparin group (2.7% vs 6.9%, P = .046). The need for revascularization procedures was also lower in the enoxaparin group compared to tinzaparin group (23.2% vs 37.2%, P = .002). CONCLUSIONS: In patients with NSTACS, enoxaparin significantly reduced the rates of recurrent ischemic events and therapeutic procedures in the short term, with sustained benefit at 6 m compared to tinzaparin.

Acute Disease↗

Pharmacodynamics of intravenous and subcutaneous tinzaparin and heparin in healthy volunteers.

The pharmacodynamics of i.v. and subcutaneous (s.c.) tinzaparin sodium compared with heparin in healthy volunteers were studied. A randomized, open-label, five-treatment, five-period-crossover study with a Latin square design was performed in 30 healthy men to estimate tinzaparin pharmacodynamics (anti-Xa and anti-IIa activities) after single-dose i.v. and s.c. administration, to evaluate absolute bioavailability, to determine the effect of a preservative (benzyl alcohol), to evaluate the dose-activity relationship, and to compare tinzaparin with unfractionated heparin. Treatments were (1) heparin 5,000 units s.c., (2) tinzaparin 4,500 anti-Xa IU without preservative s.c., (3) tinzaparin 4,500 anti-Xa IU without preservative i.v., (4) tinzaparin 12,250 anti-Xa IU with preservative s.c., and (5) tinzaparin 4,500 anti-Xa IU with preservative s.c. Blood samples for the measurement of anti-Xa and anti-IIa activities were drawn over 24 hours. Anti-Xa and anti-IIa activities were determined by chromogenic methods; data were analyzed by using a noncompartmental approach. The clearance of tinzaparin based on anti-Xa activity ranged from 1.14 to 2.04 L/hr. The volume of distribution was 3.1-5.0 L, suggesting that the molecular entities responsible for anti-Xa and anti-IIa activities are confined to the intravascular space. Mean peak anti-Xa activity occurred three to four hours after s.c. injection, independent of the dose. The mean half-life of anti-Xa activity after s.c. injection ranged from 3.41 to 4.13 hours and was independent of the dose. The mean absolute bioavailability of s.c. tinzaparin was 86.7%. Intersubject pharmacodynamic variability was low for tinzaparin compared with heparin. Benzyl alcohol did not affect tinzaparin pharmacodynamics. A clear dose-activity relationship was seen for the two fixed doses of tinzaparin (12,250 and 4,500 IU). Single doses of tinzaparin were safe and well tolerated after administration by either route. The anti-Xa profile of tinzaparin supports the pharmacodynamic superiority of low-molecular-weight heparins over standard i.v. heparin administration. This pharmacodynamic study in healthy volunteers indicates that s.c. tinzaparin sodium was well absorbed; the presence of a preservative, benzyl alcohol, did not affect the activity of tinzaparin; and tinzaparin activity is dose-related.

Adult↗

Comparison between tinzaparin and standard heparin for chronic hemodialysis in a Canadian center.

BACKGROUND: Low-molecular-weight heparins offer several advantages over standard heparins, but their use for maintenance hemodialysis has been limited in North America because of their higher cost. Our objective was to compare tinzaparin to standard heparin during maintenance hemodialysis over an 8-week period, in regard to the visual aspect of the extracorporeal circuit, filter reuse, bleeding and time for compression of vascular access at the end of hemodialysis session, nursing time devoted to anticoagulation administration, level of satisfaction of patients and nurses, and relative cost. METHODS: Thirty-two chronic hemodialysis adult patients with peripheral accesses were randomly divided into two groups in a cross-over design: tinzaparin for 4 weeks followed by standard heparin for 4 weeks, or vice versa. Hemodialysis was performed thrice weekly over 3.5-4 h using large surface reused filters. Standard heparin was administered as an initial bolus of 50-75 units per kilogram followed by an infusion to maintain an activated clotting time (ACTESTER) between 150 and 200 s and discontinued 30-45 min before the end of the session. The initial dose of tinzaparin was 3,500 IU anti-Xa for patients usually receiving 7,500 units or less of standard heparin, or 4,500 IU anti-Xa for patients receiving more than 7,500 units of standard heparin, and it was injected as a bolus in the arterial line at the beginning of hemodialysis. Dosage adjustments were made by increments or decrements of 500 IU. RESULTS: A total of 6 patients did not require any adjustment in their dose of tinzaparin and remained at the initial dose, while the remaining 26 necessitated adjustments of the initial dose of tinzaparin: 20 patients required increments from the initial dose whereas 6 required reductions. For most patients, 27 of them, the standard heparin dose was kept at the same level throughout the study period (since it was their usual regimen and they were in stable medical conditions). According to the monitoring scale, the visual aspects of the tubing of the extracorporeal circuit and of the dialyzers at the end of the session were similar for both tinzaparin and standard heparin. The time of compression of the vascular access at the end of the hemodialysis sessions was not significantly different with tinzaparin than with standard heparin. However, as indicated below, most patients noted less bleeding (or oozing) from their access (during compression and thereafter, in the few hours after hemodialysis) with tinzaparin than with standard heparin. Clotting was observed more frequently in the arterial and venous bubble traps with tinzaparin than with standard heparin. The presence of clot(s) was observed in the arterial and venous bubble traps in, respectively, 18 +/- 12 and 10 +/- 6% of the sessions with tinzaparin, while in, respectively, 3 +/- 4 and 2 +/- 4% of the sessions with standard heparin (p < 0.005). Despite a tendency for a reduced reuse number of the dialyzers, the difference did not reach statistical significance. Among the 30 patients who completed the study, 2 reported excessive bleeding from their vascular access with tinzaparin whereas 8 reported such an excessive bleeding with standard heparin. The level of satisfaction of patients and nurses for tinzaparin was extremely good. The main reasons stated by the patients was reduced bleeding from their access after dialysis. The nurses preferred tinzaparin because of the simplicity and the rapidity of its administration, the lack of monitoring required, and the decreased bleeding/oozing tendency from the vascular access sites. The time spent for anticoagulation during a hemodialysis session was reported as 5 min with standard heparin (if no ACTESTER monitoring), 25-30 min with standard heparin (if ACTESTER monitoring required), and 1 min with tinzaparin. The cost analysis revealed that although tinzaparin is more than six times more expensive than standard heparin, the use of tinzaparin becomes similar to the use of standard heparin (USD 7.33 vs. USD 7.62 Canadian dollars for one hemodialysis session) if ACTESTER monitoring is performed (assuming that 22% of the sessions are routinely monitored and that one ACTESTER device is necessary for 8-10 dialysis stations, as applied in our unit). CONCLUSION: Our experience with tinzaparin was positive: it represents a simple and easy way to offer anticoagulation during maintenance hemodialysis, it seems associated with less postdialysis bleeding, it saves precious nursing time and is widely appreciated by patients and staff.

Aged↗

Tinzaparin sodium: a review of its pharmacology and clinical use in the prophylaxis and treatment of thromboembolic disease.

Tinzaparin sodium (tinzaparin; innohep) is a low molecular weight heparin (LMWH) formed by the enzymatic degradation of porcine unfractionated heparin (UFH). In clinical trials, once-daily subcutaneous (SC) tinzaparin was effective and generally well tolerated in the prophylaxis and treatment of thromboembolic disease. SC tinzaparin 75 anti-Xa IU/kg/day showed similar thromboprophylactic efficacy to adjusted-dosage oral warfarin in patients undergoing total hip arthroplasty; in patients undergoing knee replacement, the incidence of deep vein thrombosis (DVT) was significantly lower with tinzaparin. The drug had similar efficacy to equivalent-dosage SC enoxaparin sodium in orthopaedic surgery. In patients undergoing general surgery, SC tinzaparin 3500 anti-Xa IU/day was of equivalent thromboprophylactic efficacy to SC UFH 5000IU twice daily. Encouraging preliminary results have been obtained with tinzaparin in the prevention of DVT in patients with complete motor paralysis. In the initial treatment of acute proximal DVT and pulmonary embolism, SC tinzaparin 175 anti-Xa IU/kg/day was at least as effective as adjusted-dosage intravenous (IV) UFH. In the outpatient treatment of venous thromboembolism, tinzaparin has demonstrated similar efficacy to dalteparin sodium (dalteparin) and warfarin. Tinzaparin was effective in preventing clotting in haemodialysis circuits; the anticoagulant efficacy of tinzaparin in patients undergoing haemodialysis was similar to that of SC dalteparin and similar to or less than (although in this case the tinzaparin dose was too low for sufficient anticoagulant efficacy) that of IV UFH. Advantages of tinzaparin over UFH and warfarin include ease of administration and lack of need for laboratory monitoring. Tinzaparin is more cost effective than UFH in the treatment of established thromboembolic disease, and home-based treatment with tinzaparin may offer greater cost benefits than hospital-based therapy. Tinzaparin is well tolerated, including in elderly patients and those with renal impairment receiving long-term treatment. Incidences of major bleeding complications were low and reports of heparin-induced thrombocytopenia were infrequent in clinical studies. In conclusion, tinzaparin is a valuable LMWH in the prophylaxis and management of thromboembolic disease.

Age Factors↗

Anticoagulant pharmacodynamics of tinzaparin following 175 iu/kg subcutaneous administration to healthy volunteers.

Tinzaparin, a sodium salt of a low-molecular-weight heparin (LMWH) produced via heparinase digestion, is used for the treatment of deep vein thrombosis (DVT) and pulmonary embolism in conjunction with warfarin for the prevention of DVT in patients undergoing hip or knee replacement surgery, and as an anticoagulant in hemodialysis circuits. Its average molecular weight ranges between 5500 and 7500 daltons (Da); the percentage of chains with molecular weight lower than 2000 Da is not more than 10% in the marketed tinzaparin formulation. While this fraction is generally considered pharmacologically inactive, this has never been evaluated in vivo. The importance of the < 2000 Da fraction on the anticoagulant pharmacodynamics of tinzaparin assessed by anti-Xa and anti-IIa activity was studied in a two-way crossover trial. In this trial, 30 healthy volunteers received a single 175 IU/kg subcutaneous administration of tinzaparin containing approximately 3.5% of the < 2000 Da fraction and a tinzaparin-like LMWH containing 18.3% of the < 2000 Da fraction. The anti-Xa/anti-IIa ratios of the drug substances were comparable at 1.5 and 1.7 for tinzaparin and the tinzaparin-like LMWH, respectively. Both formulations were safe and well tolerated. Mean maximum plasma anti-Xa activity (A(max)) was approximately 0.818 IU/ml at 4 h following tinzaparin injection. Mean maximum plasma anti-IIa activity was 0.308 IU/ml at 5 h postdose. Intersubject variation was lower (< 18% for both anti-Xa and anti-IIa metrics) than in previous fixed-dose administration studies. There was no correlation between anti-Xa or anti-IIa AUC or A(max) and bodyweight in the present study supporting the weight-adjusted dosing regimen. Individual anti-Xa and anti-IIa profiles following the single 175 IU/kg subcutaneous administration of the tinzaparin-like LMWH were similar to that obtained with tinzaparin. Based on average equivalence criteria, the two LMWH preparations were determined to be bioequivalent using either anti-Xa or anti-IIa activity as biomarkers. The calculated intrasubject variabilities were low (< 14% for anti-Xa activity and < 18% for anti-IIa activity) yielding little evidence for a significant Subject x Formulation interaction. In summary, anti-Xa and anti-IIa activity following a single subcutaneous administration of tinzaparin 175 IU/kg to healthy volunteers yielded activity consistent with targeted therapeutic levels derived from previous trials in adult DVT patients. Weight-based dosing for the treatment of DVT appears rational based on the reduction in anti-Xa and anti-IIa variability consistent with the recommendation derived from earlier fixed-dose pharmacokinetic studies. Furthermore, differences in the percentage of molecules in the < 2000 Da molecular weight fraction of tinzaparin do not translate into differences in anti-Xa and anti-IIa activity in vivo.

Adult↗

Antimetastatic effect of tinzaparin, a low-molecular-weight heparin.

The importance of coagulation activation in cancer patients is suggested by the clinical finding of hypercoagulability, experimental enhancement of metastasis and angiogenesis by coagulation factors such as tissue factor (TF) and thrombin and the possible antitumor effects of anticoagulant agents. Tinzaparin is a low-molecular-weight heparin (LMWH) with a relatively high molecular weight distribution and high sulfate to carboxylate ratio. In addition to its ability to inhibit thrombin and factor Xa, tinzaparin is particularly effective at releasing endothelial tissue factor pathway inhibitor (TFPI), the natural inhibitor of both procoagulant and non-coagulant effects of TF. The present study was undertaken to investigate the effect of tinzaparin on lung metastasis using a B16 melanoma model in experimental mice. Tinzaparin's anticoagulant effect in mice and its ability to release TFPI from human endothelial cells at various time points were demonstrated. Subcutaneous (s.c.) injection of tinzaparin (10 mg kg-1) 4 h before intravenous administration of melanoma cells (2.0 x 105) markedly (89%) reduced lung tumor formation (3 +/- 2) compared with controls (31 +/- 23; P < 0.001). In a second group of animals, tinzaparin (10 mg kg-1, s.c.) administered daily for 14 days following the initial (pretumor cell) dose, before assessment of lung seeding, reduced tumor formation by 96% (P < 0.001). No bleeding problems were observed in any of the tinzaparin-treated animals, despite a 4-fold prolongation of the whole blood clotting time after a single s.c. dose of tinzaparin (10 mg kg-1). Administration of tumor cells (2 x 106) caused a rapid and significant fall in platelet count 15 min after injection (a sensitive marker of intravascular coagulation) in controls (939 +/- 37 vs. 498 +/- 94 x 106 mL-1, P < 0.01), but this was prevented by tinzaparin treatment (921 +/- 104 x 106 mL-1). These data provide further experimental evidence to support the potential for LMWH as antimetastatic agents.

Animals↗

Tinzaparin sodium: a low-molecular-weight heparin.

The chemistry, pharmacokinetics, pharmacodynamics, clinical efficacy, dosage and administration, adverse effects, and therapeutic role of tinzaparin are reviewed. Tinzaparin is a low-molecular-weight heparin (LMWH) with antithrombotic properties. It has FDA-approved labeling for use in the treatment of acute symptomatic deep-vein thrombosis (DVT) with or without pulmonary embolism (PE) when administered in conjunction with warfarin sodium. Tinzaparin works by inhibiting reactions that lead to the clotting of blood. The much-improved pharmacokinetics of tinzaparin compared with unfractionated heparin (UFH) are due to its lower affinity for heparin-binding proteins and endothelial cells, shorter fractionated heparin chain (which allows for better bioavailability), and unsaturable renal elimination. Clinical trials have demonstrated that tinzaparin is at least as safe and effective as UFH for the treatment of DVT. Tinzaparin may also be effective for unlabeled uses, such as prophylaxis of venous thromboembolism (VTE) after orthopedic, general, and abdominal surgery, although more data are needed to define the optimal dose for this indication. The recommended dosage of tinzaparin for the treatment of established DVT with or without PE is 175 anti-factor Xa IU per kilogram of body weight administered subcutaneously once daily for at least six days until the patient achieves adequate anticoagulation with warfarin. As with other LMWHs, the most common complication of tinzaparin therapy is bleeding. Tinzaparin offers an additional treatment option for VTE.

Biological Availability↗

Tinzaparin: considerations for use in clinical practice.

OBJECTIVE: To evaluate the safety and effectiveness of tinzaparin for the prevention and treatment of venous thromboembolism (VTE). DATA SOURCES: A MEDLINE and PubMed database search (1980-December 2002) was conducted. Only articles written in English were reviewed. STUDY SELECTION AND DATA EXTRACTION: Articles reporting the safety, efficacy, and cost-effectiveness of tinzaparin in humans were evaluated. Emphasis was placed on randomized, controlled trials. DATA SYNTHESIS: Tinzaparin sodium is a low-molecular-weight heparin (LMWH) that exerts its anticoagulant effect through inhibition of factors Xa and IIa and release of tissue factor pathway inhibitor from the vascular epithelium. Tinzaparin is indicated for treatment of acute symptomatic deep-vein thrombosis (DVT), with or without pulmonary embolism. Clinical studies suggest that tinzaparin is also effective for VTE prophylaxis, as well as other indications. Once-daily subcutaneous tinzaparin is equally or more effective than intravenous unfractionated heparin (UFH) for prevention and treatment of VTE, at least as safe as UFH for bleeding complications, and requires little or no monitoring. No dose "cap" is required for obese patients, and no initial dosing adjustments are necessary in elderly and/or renally impaired patients, although some monitoring is recommended. The few comparative data available suggest that tinzaparin efficacy may be comparable to that of other LMWHs; more comparative studies are needed. Pharmacoeconomic studies indicate a favorable cost-benefit ratio. CONCLUSIONS: Tinzaparin is safe and effective for prevention and treatment of DVT. Consistent once-daily dosing may facilitate self-administration of tinzaparin in the outpatient setting.

Animals↗

Tinzaparin. A review of its pharmacology and clinical potential in the prevention and treatment of thromboembolic disorders.

Tinzaparin, a low molecular weight (LMW) heparin with an average molecular weight of 4.5 +/- 1.5 kD, has greater bioavailability and a longer duration of action than unfractionated heparin, allowing it to be administered once daily by subcutaneous injection for both prophylaxis and treatment of deep venous thrombosis (DVT). Like other members of its class, tinzaparin has a greater ratio of antifactor Xa/anti-factor IIa activity than unfractionated heparin, providing the theoretical advantage of similar antithrombotic efficacy with a diminished risk of haemorrhagic complications. In a small number of clinical trials, tinzaparin was found to be more effective than intravenous dextran or oral warfarin sodium as prophylaxis against DVT in high-risk patients undergoing orthopaedic surgery, and more effective than subcutaneous heparin in both general surgical patients and medical patients with an immobilising illness. When used for the treatment of established DVT, tinzaparin was more effective in preventing DVT recurrence than intravenous heparin, both initially and during a 3-month follow-up period when patients received warfarin sodium. Tinzaparin was also used successfully in one small study to maintain the patency of haemodialysis circuits over a 6-month period, with favourable effects on the lipid profile of such patients. Tinzaparin is well tolerated, the most frequent complication being injection site haematoma. In comparative trials, tinzaparin was associated with fewer major haemorrhagic complications than intravenous heparin (when used for treatment of venous thrombosis), but more than warfarin sodium. Other adverse events which have been reported in tinzaparin-treated patients include elevated liver enzyme levels and thrombocytopenia. Thus, although clinical experience is limited at present, available data suggest that, in common with other LMW heparins, tinzaparin is likely to prove an effective alternative to unfractionated heparin for both the prevention and treatment of DVT, with the advantage of more convenient administration and decreased monitoring requirements.

Animals↗

Long-term treatment of deep venous thrombosis with a low molecular weight heparin (tinzaparin): a prospective randomized trial.

OBJECTIVES: Evaluation of the effectiveness and safety of the low molecular weight heparin (LMWH) tinzaparin versus unfractionated heparin (UFH) followed by acenocoumarol in proximal deep venous thrombosis (DVT). DESIGN: Prospective, randomized clinical trial. MATERIAL AND METHODS: Consecutive patients (n=108) with acute leg DVT, confirmed by duplex, were randomized to either tinzaparin alone or UFH and acenocoumarol for 6 months. Patients were evaluated ultrasonographically at entry, 1, 3, 6 and 12 months. Thrombus regression, reflux distribution and the incidence of complications were studied. A cost-analysis, comparing the two treatments, was performed. RESULTS: The overall incidence of major events (mortality, DVT recurrence, pulmonary embolism, major bleeding, heparin-induced thrombocytopenia) was significantly different (p=0.035) in favor of tinzaparin (7 versus 17 events). The ultrasonographic clot volume score (an index of recanalization) decreased significantly in both treatment groups. However, tinzaparin produced significantly more extended overall recanalization from 3 months onwards (p<0.02). Thrombus regression was equivalent or in favor of tinzaparin in the different DVT subgroups and venous segments, but the statistical significance varied. Reflux showed non-significant differences overall or in subgroups. A cost-analysis resulted in favor of LMWH. CONCLUSIONS: A fixed daily dose of tinzaparin for 6 months was at least as effective and safe as UFH and acenocoumarol. Regarding major events and recanalization, there was a significant benefit in favor of tinzaparin. Long-term DVT treatment with tinzaparin could represent an alternative to conventional treatment.

Acenocoumarol↗

Tinzaparin in acute ischaemic stroke (TAIST): a randomised aspirin-controlled trial.

BACKGROUND: Low-molecular-weight heparins and heparinoids are superior to unfractionated heparin in the prevention and treatment of venous thromboembolism, but their safety and efficacy in acute ischaemic stroke are inadequately defined. METHODS: This randomised, double-blind, aspirin-controlled trial tested the safety and efficacy of treatment with high-dose tinzaparin (175 anti-Xa IU/kg daily; 487 patients), medium-dose tinzaparin (100 anti-Xa IU/kg daily; 508 patients), or aspirin (300 mg daily; 491 patients) started within 48 h of acute ischaemic stroke and given for up to 10 days. Primary intracerebral haemorrhage was excluded by computed tomography. Outcome was assessed, with treatment allocation concealed, by the modified Rankin scale at 6 months (independence [scores 0-2] vs dependence or death [scores 3-6]). FINDINGS: Of 1486 randomised patients, two did not receive treatment and 46 were lost to follow-up. The proportions independent at 6 months were similar in the groups assigned high-dose tinzaparin (194/468 [41.5%]), medium-dose tinzaparin (206/486 [42.4%]), or aspirin (205/482 [42.5%]). There was no difference in effect in any predefined subgroup, including patients with presumed cardioembolic stroke. Other outcome measures were similar between the treatment groups (disability, case-fatality, and neurological deterioration rates). During the in-hospital treatment period no patient assigned high-dose tinzaparin developed a symptomatic deep-vein thrombosis compared with nine assigned aspirin. Conversely, seven patients assigned high-dose tinzaparin developed symptomatic intracerebral haemorrhage compared with one in the aspirin group. INTERPRETATION: Treatment with tinzaparin, at high or medium dose, within 48 h of acute ischaemic stroke did not improve functional outcome compared with aspirin. Although high-dose tinzaparin was superior in preventing deep-vein thrombosis, it was associated with a higher rate of symptomatic intracranial haemorrhage.

Aged↗

Comparative study of the pharmacokinetic profiles of two LMWHs--bemiparin (3500 IU, anti-Xa) and tinzaparin (4500 IU, anti-Xa)--administered subcutaneously to healthy male volunteers.

Pharmacokinetic profiles of bemiparin (3500 IU, anti-Xa) and tinzaparin (4500 IU, anti-Xa) administered subcutaneously to 12 healthy male volunteers were compared in a monocentric study. Each of the 12 subjects underwent successively the two low-molecular-weight heparin (LMWH) preparations in a randomised order and was considered as its own control. Anti-Xa activity, free and total tissue factor pathway inhibitor (TFPI), and thromboplastin-thrombomodulin-mediated time were determined as main variables. Activated partial thromboplastin time (APTT), thrombin clotting time, and anti-IIa activity were also determined. Bemiparin (3500 IU, anti-Xa) exerts a significantly more rapid, more potent, and more prolonged anti-Xa activity than tinzaparin (4500 IU, anti-Xa). The plasma level increase for free and total TFPI is significantly lower with bemiparin than with tinzaparin. Free and total TFPI peak levels occur earlier than anti-Xa activity peak levels for both LMWH preparations, but no statistical difference appeared between the two preparations for TFPI T(max). No significant effect was observed for both preparations for thromboplastin-thrombomodulin-mediated time. Subcutaneous injection of bemiparin exerts only minimal anti-IIa activity and does not prolong thrombin time, whereas tinzaparin elicits significant anti-IIa activity and prolongs thrombin clotting time. Bemiparin exerts a significantly lower prolongation of APTT than tinzaparin. No difference was observed for APTT prolongation T(max) between the two preparations. Globally, the overall tolerability of both formulations revealed no relevant adverse effects. In conclusion, bemiparin and tinzaparin are not bioequivalent. Bemiparin exerts an important and more prolonged anti-Xa activity in comparison with tinzaparin. An original finding of this study is the difference observed between the two formulations for free TFPI release.

Adolescent↗

Pharmacodynamic considerations in the selection of dosage of tinzaparin for various indications: experimental studies in primates.

Like unfractionated heparin (UFH), low-molecular-weight heparins (LMWHs) are polypharmacologic agents that can modulate the hemostatic system at multiple points. Thus, to select an optimal dose of LMWH for a given indication, it is necessary to consider multiple actions of the drug. In this study, nonhuman primates were treated with intravenous or subcutaneous boluses of the LMWH tinzaparin or UFH. Doses were selected on the basis of the expected prophylactic (75 U/kg) and therapeutic (175 U/kg) dosing of tinzaparin. Blood samples were drawn periodically up to 24 hours after administration. Circulating anti-Xa and anti-thrombin (anti-IIa) activities determined using amidolytic assays were used to estimate plasma tinzaparin (heparin) concentrations. In addition, total tissue factor pathway inhibitor (TFPI) levels were measured in these primates. Subcutaneous administration of 75 U/kg tinzaparin resulted in plasma levels of approximately 0.2 to 0.3 U/mL, concentrations sufficient for DVT prophylaxis. Such drug levels were not associated with a significant release of TFPI. Intravenous administration of the same dose resulted in a peak drug level of approximately 1.5 anti-Xa U/mL. The elimination half-life was approximately 1 hour. Thus, intravenously administered tinzaparin may be useful for providing anticoagulation during coronary interventions. Subcutaneous administration of 175 U/kg resulted in tinzaparin levels of approximately 0.7 anti-Xa U/mL and a significant increase in TFPI levels. Interestingly, the increase in TFPI levels occurred over a different time frame than anticoagulant activity. Intravenous administration of 175 U/kg resulted in peak drug concentrations of almost 5 anti-Xa U/mL. The pharmacokinetic behavior of intravenously administered tinzaparin was comparable to that of UFH. The data show that the pharmacokinetic and pharmacodynamic effects measured using different assays widely differ. For a proper pharmacodynamic analysis, multiple assays should be considered, given that both UFH and LMWHs are polycomponent in nature.

Animals↗

Laboratory analysis of blood samples from patients treated with tinzaparin.

Tinzaparin at two dosages, 175 anti-Xa U/kg subcutaneously administered for 7 days, followed by warfarin, and 175 anti-Xa U/kg subcutaneously given for 90 days was compared with continuous intravenous unfractionated heparin (UFH) for 5 days, followed by warfarin for 3 months, were tested in the treatment of patients with proximal deep vein thrombosis. Several laboratory assays were used to monitor the effects of tinzaparin and UFH. The tinzaparin only study arm produced a 4- to 6-second prolongation of the activated partial thromboplastin time (aPTT). However, in the anti-Xa chromogenic assay and the Heptest assays, there was a prolongation after the administration of all three agents. In the two groups treated for 7 days, the anti-Xa and Heptest values returned to baseline after cessation of therapy. In the patients treated with tinzaparin for 90 days, the anti-Xa and Heptest remained elevated throughout the treatment period. The anti-IIa (anti-thrombin) results were considerably lower values in the tinzaparin-treated groups. Tissue factor pathway inhibitor (TFPI) antigen levels were elevated 2- to 2.5-fold in all three groups. In addition, the thrombin/antithrombin (TAT) complexes were also measured. After treatment, the TAT levels decreased over time. Tinzaparin was more effective in decreasing these levels. These results suggest that both Heptest and anti-Xa assays can be used to monitor patients receiving tinzaparin. TAT may be a useful test in monitoring the resolution of the clots. However, additional clinical validation is required to demonstrate the relevance of these parameters with the clinical outcome.

Biomarkers↗

Anti-angiogenic mechanisms and efficacy of the low molecular weight heparin, tinzaparin: anti-cancer efficacy.

Inhibitors of angiogenesis are potential anti-cancer agents in that they deprive tumors of the blood necessary for growth and metastasis. The anti-angiogenic efficacy of tinzaparin, a known anticoagulant low molecular weight heparin (LMWH), was examined in vitro in endothelial cell tube formation assay and in vivo in the chick chorioallantoic membrane model. The observed anti-angiogenic effects of tinzaparin were shown to be dose-related and dependent on the relatively higher molecular weight tinzaparin fragments. These experiments demonstrated that tinzaparin is a potent inhibitor of angiogenesis (ED90-100 range, 0.05-0.1 mg) regardless of the angiogenic factor and suggest that its effect is mediated via cellular release of tissue factor pathway inhibitor (TFPI). This was evident by the reversal of either tinzaparin or r-TFPI anti-angiogenesis efficacy by a specific monoclonal TFPI antibody. The ED90-100 for the inhibition of angiogenesis for r-TFPI ranged from 0.01 to 0.03 mg in the chorioallantoic membrane model regardless of the proangiogenic factor. In addition, either tinzaparin or r-TFPI inhibited the growth of colon carcinoma tumors, human fibrosarcoma tumors, and human lung carcinoma in the chorioallantoic membrane tumor implant model. Thus, the LMWH tinzaparin, in addition to its anticoagulant effects, may offer important benefits in treatment of cancer and other disorders supported by pathologic angiogenesis.

Angiogenesis Inhibitors↗

Tissue distribution of the low molecular weight heparin, tinzaparin, following administration to rats by the oral route.

Heparins are antithrombotic drugs given by intravenous and subcutaneous routes. However, we have observed that heparins have antithrombotic activity in a rat model when administered orally despite low plasma levels, with low molecular weight heparins (LMWHs) being effective at lower single doses than unfractionated heparins (UFH). Since LMWHs may have other pharmaceutical uses and little is known regarding the pharmacokinetics of oral LMWHs, our objectives were to determine the distribution of the LMWH tinzaparin (Logiparin) following oral dosing. To study distribution at different doses, 0.025-15 mg/kg tinzaparin was given by stomach tube to rats. Gut and non-gut tissues were sampled 4 h later. In a time course study, plasma and tissue samples were collected at eight time points within 24 h after oral administration (60 mg/kg, 4 rats/time interval). Accumulated urine and faeces were collected over 4 and 24 h using metabolic cages. Gut tissue and washes, faeces, urine and non-gut tissue were extracted and analysed for heparin by agarose gel electrophoresis with toluidine blue staining. Activated partial thromboplastin time (APTT) and anti-Xa activity, by Heptest and chromogenic assay, estimated plasma tinzaparin concentrations. Stomach and lung tinzaparin concentrations demonstrated a dose-effect. Peak concentrations in tissue and washes of stomach, duodenum, jejunum, ileum and colon were at 6-30, 15-30, 30 min, 2 and 4 h, respectively. Amounts found at peak times in combined tissue and washes accounted for 46% and 0.5% in stomach (15 min) and colon (4 h), respectively. Tinzaparin was recovered from liver, lung, endothelial samples, and urine at 24 h, but not in faeces. Non-significant increases were seen in APTT and the Heptest, however, anti-Xa activity was significantly greater than control at all times examined, peaking at 2 h. No bleeding was observed. Results are consistent with oral absorption of tinzaparin with wide tissue distribution, likely on endothelium with little in plasma, as previously observed for UFH. Oral administration of LMWHs should be further studied.

Administration, Oral↗

Inhibition of endothelial cell tube formation by the low molecular weight heparin, tinzaparin, is mediated by tissue factor pathway inhibitor.

Heparin and low molecular weight heparins (LMWHs) have both antithrombotic and anti-angiogenic activities. The anti-angiogenic activity of LMWH may be associated with the release of endothelial tissue factor pathway inhibitor (TFPI), an important endogenous inhibitor of tissue factor/Factor VIIa (TF/fVIIa). To evaluate the effects of LMWH, tinzaparin, and TFPI in a model of angiogenesis-mediated processes, we compared the effects of tinzaparin, and recombinant TFPI in inhibiting either basic fibroblast growth factor-2 (FGF2)- or TF/fVIIa-induced endothelial cell tube formation in human umbilical vein endothelial cells (HUVEC). Our results show that tinzaparin and recombinant TFPI both blocked endothelial tube formation induced by either FGF2 or TF/fVIIa, in a concentration-dependent manner. Endothelial tube formation was only marginally inhibited by a potent and specific anti-Factor Xa, recombinant tick anticoagulant protein (rTAP). A monoclonal anti-TFPI anti-body reversed the inhibitory effects of either tinzaparin or recombinant-TFPI on HUVEC tube formation. Tinzaparin fractions in the range of 8,000 to 12,600 Da were most effective in stimulating the release of TFPI from HUVEC. These results suggest that the inhibitory effect of the LMWH tinzaparin on endothelial tube formation is associated with stimulation of the release of TFPI, but not to anti-Factor Xa activity.

Cells, Cultured↗

Tinzaparin in outpatients with pulmonary embolism or deep vein thrombosis.

BACKGROUND: The low-molecular-weight heparins (LMWHs) have been shown to be effective in the outpatient treatment of deep vein thrombosis (DVT). Data regarding outpatient use of any LMWH in pulmonary embolism (PE) or tinzaparin in DVT while transitioning therapy to a vitamin K antagonist are limited. OBJECTIVE: To determine the safety and efficacy of tinzaparin in patients with either DVT or PE being transitioned to warfarin during LMWH therapy in the outpatient setting. METHODS: All patients who were treated with at least one outpatient dose of tinzaparin for venous thromboembolism (VTE) were identified. Charts of all patients followed within the University of California Davis healthcare system were reviewed. The incidence of bleeding and recurrent thromboembolism over a minimum of the first 4 weeks to a maximum of 12 weeks after initiating anticoagulation was assessed. RESULTS: A total of 178 patients with acute VTE were treated with tinzaparin, and outcomes could be determined in 140 cases. Forty-seven percent of these patients had objectively documented PE. Only one (0.7%) case of recurrent VTE was observed. Major bleeding was documented in 5 (3.6%) and minor bleeding in 8 (5.8%) patients. Two bleeding events, both major, occurred during tinzaparin therapy. CONCLUSIONS: Outpatient use of tinzaparin during transition to warfarin therapy in the treatment of VTE, including PE, appears to be feasible in patients who are judged candidates for home therapy.

Adolescent↗