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Updated: May 30, 2025

In Vitro Microfluidic Disease Model to Study Whole Blood-Endothelial Interactions and Blood Clot Dynamics in Real-Time
Published on: May 24, 2020
ENDOTHELIAL-SPECIFIC KNOCKOUT OF THE SCRAMBLASE TMEM16F IMPAIRS IN VIVO CLOT FORMATION
Grace Bonson1, Aaron R Lambert1, Adrian M Sackheim1
1Department of Emergency Medicine, University of Vermont, Burlington, Vermont.
Abstract:
Objective: Loss of function of the phospholipid scramblase (PLS) TMEM16F results in Scott syndrome, a hereditary bleeding disorder generally attributed to intrinsic platelet dysfunction. The role of TMEM16F in endothelial cells, however, is not well understood. We sought to test the hypothesis that endothelial TMEM16F contributes to hemostasis by measuring bleeding time and venous clotting in endothelial-specific knockout (ECKO) mice. Materials and Methods: We initially evaluated the extent to which TMEM16F contributes to endothelial calcium events produced by trauma factors in vitro using a pharmacological approach. Cultured endothelial cells were exposed to histones in the presence or absence of the PLS inhibitor, niclosamide, for live-cell calcium imaging and flow cytometry with annexin V staining. We then applied a genetic approach to specifically ablate TMEM16F in vascular endothelial cells in vivo using a murine tamoxifen-inducible cre-lox system under control of a Cdh5 promoter. Hemostasis was evaluated by measuring tail bleeding time after a distal 5-mm tail resection. Venous thrombus formation was evaluated by creating a surgical stenosis of the inferior vena cava (IVC) and harvesting the resultant clot 24 h after procedure for measurement. Blood samples were obtained via IVC cannulation to assay plasma-based coagulation. Mesenteric arteries were isolated and cannulated for assessment of endothelial-dependent vasodilation by pressure myography. Results: Pretreatment with the PLS inhibitor niclosamide prevented pathological calcium signals and mitigated phosphatidylserine translocation in cultured endothelial cells exposed to extracellular histones. TMEM16F ECKO mice exhibited prolonged bleeding compared to controls (time, 205.6 ± 234.5 vs. 38.1 ± 29.11 s; P < 0.05). The ECKO mice also generated significantly smaller IVC thrombi (length, 0.9 ± 1.4 vs. 4.7 ± 3.3 mm; P < 0.05). TMEM16F ablation did not impact prothrombin time or endothelial-dependent vasodilatory function. Conclusions: Endothelial TMEM16F function is essential for normal hemostasis. ECKO of TMEM16F is sufficient to produce a coagulopathic phenotype, as shown by the prolonged bleeding time after tail transection and decreased thrombus generation in response to IVC stenosis. Because endothelial calcium events are pathologically amplified in response to trauma factors, these results suggest that TMEM16F may play a role in trauma-induced coagulopathy.
Insights
Endothelial TMEM16F is crucial for normal hemostasis. Mice lacking TMEM16F in endothelial cells showed prolonged bleeding and reduced clot formation, indicating its role in preventing bleeding disorders.
Area of Science:
- Vascular Biology
- Hemostasis and Thrombosis
- Cellular Physiology
Background:
- Loss of phospholipid scramblase (PLS) TMEM16F function causes Scott syndrome, a bleeding disorder linked to platelet dysfunction.
- The specific role of TMEM16F in endothelial cells remains largely unexplored.
Purpose of the Study:
- To investigate the contribution of endothelial TMEM16F to hemostasis.
- To test if TMEM16F in endothelial cells is essential for regulating bleeding time and venous clotting.
Main Methods:
- Pharmacological inhibition of TMEM16F in cultured endothelial cells exposed to histones, assessing calcium signaling and phosphatidylserine translocation.
- Generation of endothelial-specific TMEM16F knockout (ECKO) mice using a tamoxifen-inducible cre-lox system.
- Evaluation of hemostasis via tail bleeding time and inferior vena cava (IVC) stenosis-induced thrombus formation.
- Assessment of plasma coagulation and endothelial-dependent vasodilation.
Main Results:
- Inhibition of TMEM16F prevented pathological calcium signals and phosphatidylserine translocation in endothelial cells.
- TMEM16F ECKO mice exhibited significantly prolonged bleeding times and reduced IVC thrombus size compared to controls.
- TMEM16F ablation did not affect prothrombin time or endothelial vasodilation.
Conclusions:
- Endothelial TMEM16F plays a critical role in maintaining normal hemostasis.
- Ablation of TMEM16F specifically in endothelial cells results in a coagulopathic phenotype.
- These findings suggest TMEM16F's involvement in trauma-induced coagulopathy due to its role in endothelial calcium signaling.
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