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Updated: Dec 30, 2025

Author Spotlight: High-Sensitivity Tissue Factor Activity Assay for Plasma Diagnosis
Published on: December 29, 2023
Red blood cell microvesicles activate the contact system, leading to factor IX activation via 2 independent pathways
Denis F Noubouossie1,2, Michael W Henderson2,3, Micah Mooberry1,2
1Department of Medicine.
Abstract:
Storage lesion-induced, red cell-derived microvesicles (RBC-MVs) propagate coagulation by supporting the assembly of the prothrombinase complex. It has also been reported that RBC-MVs initiate coagulation via the intrinsic pathway. To elucidate the mechanism(s) of RBC-MV-induced coagulation activation, the ability of storage lesion-induced RBC-MVs to activate each zymogen of the intrinsic pathway was assessed in a buffer system. Simultaneously, the thrombin generation (TG) assay was used to assess their ability to initiate coagulation in plasma. RBC-MVs directly activated factor XII (FXII) or prekallikrein, but not FXI or FIX. RBC-MVs initiated TG in normal pooled plasma and in FXII- or FXI-deficient plasma, but not in FIX-deficient plasma, suggesting an alternate pathway that bypasses both FXII and FXI. Interestingly, RBC-MVs generated FIXa in a prekallikrein-dependent manner. Similarly, purified kallikrein activated FIX in buffer and initiated TG in normal pooled plasma, as well as FXII- or FXI-deficient plasma, but not FIX-deficient plasma. Dual inhibition of FXIIa by corn trypsin inhibitor and kallikrein by soybean trypsin inhibitor was necessary for abolishing RBC-MV-induced TG in normal pooled plasma, whereas kallikrein inhibition alone was sufficient to abolish TG in FXII- or FXI-deficient plasma. Heating RBC-MVs at 60°C for 15 minutes or pretreatment with trypsin abolished TG, suggesting the presence of MV-associated proteins that are essential for contact activation. In summary, RBC-MVs activate both FXII and prekallikrein, leading to FIX activation by 2 independent pathways: the classic FXIIa-FXI-FIX pathway and direct kallikrein activation of FIX. These data suggest novel mechanisms by which RBC transfusion mediates inflammatory and/or thrombotic outcomes.
Insights
Storage lesion-induced red cell-derived microvesicles (RBC-MVs) activate coagulation factors FXII and prekallikrein, initiating thrombin generation through both intrinsic and kallikrein-dependent pathways, suggesting new mechanisms for transfusion-related outcomes.
Area of Science:
- Hematology
- Biochemistry
- Thrombosis Research
Background:
- Red cell-derived microvesicles (RBC-MVs) from stored blood contribute to coagulation.
- Previous studies suggest RBC-MVs activate coagulation via the intrinsic pathway.
Purpose of the Study:
- To elucidate the precise mechanisms of RBC-MV-induced coagulation activation.
- To assess RBC-MV interaction with intrinsic pathway zymogens and plasma coagulation.
Main Methods:
- Assessed RBC-MV activation of intrinsic pathway zymogens (FXII, prekallikrein, FXI, FIX) in buffer.
- Utilized thrombin generation (TG) assay in plasma and deficient plasmas.
- Investigated the role of kallikrein and specific inhibitors (corn trypsin inhibitor, soybean trypsin inhibitor).
Main Results:
- RBC-MVs directly activated factor XII (FXII) and prekallikrein, but not FXI or FIX.
- RBC-MVs initiated TG in normal, FXII-, and FXI-deficient plasma, but not FIX-deficient plasma.
- RBC-MVs generated FIXa in a prekallikrein-dependent manner; kallikrein also activated FIX and initiated TG.
- Dual inhibition of FXIIa and kallikrein was needed in normal plasma, while kallikrein inhibition sufficed in FXII/FXI-deficient plasma.
- Heat or trypsin treatment abolished TG, indicating essential MV-associated proteins.
Conclusions:
- RBC-MVs activate FXII and prekallikrein, leading to FIX activation via two pathways: FXIIa-FXI-FIX and direct kallikrein activation.
- These findings reveal novel mechanisms for RBC transfusion-mediated inflammatory and thrombotic events.
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