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Updated: Mar 17, 2026

Simple and Effective Procedure for Hemostasis in Mouse Arteries
Published on: November 28, 2025
A rapid pro-hemostatic approach to overcome direct oral anticoagulants
Nabil K Thalji1,2,3, Lacramioara Ivanciu1,2,3, Robert Davidson1,2
1Division of Hematology, Department of Pediatrics, Children's Hospital of Philadelphia (CHOP), Philadelphia, Pennsylvania, USA.
Abstract:
Direct inhibitors of coagulation factor Xa (FXa) or thrombin are promising oral anticoagulants that are becoming widely adopted. The ability to reverse their anticoagulant effects is important when serious bleeding occurs or urgent medical procedures are needed. Here, using experimental mouse models of hemostasis, we show that a variant coagulation factor, FXa(I16L), rapidly restores hemostasis in the presence of the anticoagulant effects of these inhibitors. The ability of FXa(I16L) to reverse the anticoagulant effects of FXa inhibitor depends, at least in part, on the ability of the active site inhibitor to hinder antithrombin-dependent FXa inactivation, paradoxically allowing uninhibited FXa to persist in plasma. Because of its inherent catalytic activity, FXa(I16L) is more potent (by >50-fold) in the hemostasis models tested than a noncatalytic antidote that is currently in clinical development. FXa(I16L) also reduces the anticoagulant-associated bleeding in vivo that is induced by the thrombin inhibitor dabigatran. FXa(I16L) may be able to fill an important unmet clinical need for a rapid, pro-hemostatic agent to reverse the effects of several new anticoagulants.
Insights
A novel variant, FXa(I16L), effectively reverses anticoagulant effects from FXa inhibitors and dabigatran in mouse models. This potent pro-hemostatic agent shows promise for managing bleeding complications associated with new oral anticoagulants.
Area of Science:
- Biochemistry
- Hematology
- Pharmacology
Background:
- Direct oral anticoagulants targeting FXa or thrombin are increasingly used.
- Reversal agents are crucial for managing bleeding or urgent procedures during anticoagulant therapy.
Purpose of the Study:
- To evaluate the efficacy of a variant coagulation factor, FXa(I16L), as a reversal agent for direct oral anticoagulants.
- To investigate the mechanism by which FXa(I16L) reverses anticoagulant activity.
Main Methods:
- Experimental mouse models of hemostasis.
- Assessment of hemostasis restoration in the presence of FXa inhibitors and dabigatran.
- Comparison of FXa(I16L) with a noncatalytic antidote.
Main Results:
- FXa(I16L) rapidly restored hemostasis in mouse models.
- Reversal efficacy is partly due to FXa inhibitor hindering antithrombin-dependent inactivation of FXa.
- FXa(I16L) demonstrated >50-fold greater potency than a noncatalytic antidote.
- FXa(I16L) reduced bleeding induced by dabigatran.
Conclusions:
- FXa(I16L) is a potent and rapid pro-hemostatic agent.
- It effectively reverses the anticoagulant effects of FXa inhibitors and dabigatran.
- FXa(I16L) may address a significant clinical need for reversing new oral anticoagulants.
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