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Differences in the clinically effective molar concentrations of four direct thrombin inhibitors explain their
Theodore E Warkentin1, Andreas Greinacher, Sharon Craven
1Department of Pathology and Molecular Medicine, McMaster University, Hamilton, Ontario, Canada. twarken@mcmaster.ca
Insights
Direct thrombin inhibitors (DTIs) vary in their prothrombin time (PT) prolongation effects. Higher plasma concentrations, not just thrombin affinity, drive greater PT prolongation for these anticoagulants.
Area of Science:
- Pharmacology
- Hematology
- Biochemistry
Background:
- Four direct thrombin inhibitors (DTIs) are used clinically: lepirudin, bivalirudin, argatroban, and melagatran.
- These DTIs exhibit varying degrees of prothrombin time (PT) prolongation, with argatroban paradoxically causing the greatest effect despite low thrombin affinity.
Purpose of the Study:
- To compare the effects of four DTIs on clotting assays and factor Xa (FXa) inhibition.
- To elucidate the mechanisms behind the differential PT prolongation observed with various DTIs.
Main Methods:
- Comparative analysis of DTI effects on prothrombin time (PT), activated partial thromboplastin time (APTT), and thrombin clotting time (TCT).
- Assessment of human and bovine factor Xa (FXa) inhibition by DTIs.
- Evaluation of DTI concentrations required to double APTT and their corresponding PT prolongation.
Main Results:
- Lepirudin showed the most potent prolongation of PT, APTT, and TCT on a molar basis.
- At concentrations doubling APTT, the rank order for PT prolongation was argatroban > melagatran > bivalirudin > lepirudin.
- FXa inhibition did not fully explain PT prolongation, as argatroban prolonged bovine PT despite weak bovine FXa inhibition.
Conclusions:
- The primary driver of differential PT prolongation by DTIs is the molar plasma concentration needed for therapeutic effect.
- DTIs requiring higher concentrations to achieve anticoagulation (e.g., doubling APTT) result in greater PT prolongation due to increased thrombin quenching.
Abstract:
Four direct thrombin inhibitors (DTIs), lepirudin, bivalirudin, argatroban, and melagatran, differ in their ability to prolong the prothrombin time (PT). Paradoxically, the DTI in clinical use with the lowest affinity for thrombin (argatroban) causes the greatest PT prolongation. We compared the effects of these DTIs on various clotting assays and on inhibition of human and bovine factor Xa (FXa). On a mole-for-mole basis, lepirudin was most able to prolong the PT, activated partial thromboplastin time (APTT), and thrombin clotting time (TCT), whereas argatroban had the least effect. At concentrations that doubled the APTT (argatroban, 1 micromol/l; melagatran, 0.5 micromol/l; bivalirudin, 0.25 micromol/l; lepirudin, 0.06 micromol/l), the rank order for PT prolongation was: argatroban > melagatran > bivalirudin > lepirudin. Although the Ki's associated with inhibition of human FXa by melagatran (1.4 micromol/l) and argatroban (3.2 micromol/l) approach their therapeutic concentrations, inhibition of FXa did not appear to be a major contributor to PT prolongation, since argatroban also prolonged the PT of bovine plasma (despite a Ki for bovine FXa of 2,600 micromol/l). Only melagatran inhibited prothrombinase-bound FXa. We conclude that the differing effects of the DTIs on PT prolongation are primarily driven by their respective molar plasma concentrations required for clinical effect. DTIs with a relatively low affinity for thrombin require high plasma concentrations to double the APTT; these higher plasma concentrations, in turn, quench more of the thrombin generated in the PT, thereby more greatly prolonging the PT.
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