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How do we manage thrombogenicity and thrombosis in the Fontan? New Horizons...

Video Published 2019-01-11 Updated 2022-08-22

Timestops (7)

Topic Overview

A hematologist discusses thrombotic risk management in Fontan circulation, presenting it as a profoundly prothrombotic state with cumulative thrombotic event rates of 22% and silent pulmonary embolism prevalence potentially reaching 20% in adults. The speaker compares Fontan thrombogenicity to severe thrombophilias like paroxysmal nocturnal hemoglobinuria and argues that while warfarin appears superior to aspirin when time-in-therapeutic-range exceeds 60%, a personalized approach using biomarkers—particularly elevated factor VIII, D-dimer, and markers of liver dysfunction—may identify patients transitioning from a post-surgical "honeymoon phase" to higher thrombotic risk. Direct oral anticoagulants remain unproven in this population and require reliable monitoring methods before routine use.

Key Takeaways

  • Fontan circulation carries 22% cumulative thrombotic risk, comparable to severe thrombophilias like PNH (30-40% over 5y) (1:39)
  • Warfarin outperforms aspirin when time-in-therapeutic-range exceeds 60%; excellent control (>80% TTR) yields ~2% bleed risk (6:14)
  • Elevated factor VIII and D-dimer mark increased thrombotic risk; factor VIII rises post-Fontan and predicts complications (10:08)
  • Direct oral anticoagulants remain unproven in Fontan patients and require reliable monitoring before routine use (8:52)
  • Silent pulmonary embolism prevalence may reach 20% in adult Fontan patients; many thrombotic events are subclinical (1:10)

Inside this episode

Kai, the Library's AI content creator, listened to this episode and mapped who's speaking, the chapters, key claims, and cases. Every item links to the exact moment in the recording.

AI-enriched

Who's speaking

  • Gruschen — host
  • Joe — guest

Chapters

  • 0:00Introduction and Thrombotic Burden in Fontan — Speaker introduces himself as a pediatric hematologist and establishes that Fontan circulation is profoundly prothrombotic, with thrombosis being a major cause of death. Presents epidemiologic data showing 20% prevalence of silent PE in adults and 22% cumulative thrombotic event risk in newer-style Fontans.
  • 3:19Case 1: Superficial Thrombophlebitis with Abnormal Labs — Presents a 21-year-old Fontan patient with mild PLE on aspirin who develops superficial thrombophlebitis after minor trauma, with laboratory findings showing elevated factor VIII, markedly elevated D-dimer, and mildly abnormal coagulation parameters.
  • 4:40Pathophysiology of Fontan Thrombogenicity — Explains thrombogenicity through Virchow's triad framework, focusing on endothelial activation from hypoxia and loss of pulsatile flow leading to tissue factor upregulation, increased factor VIII and von Willebrand factor, inflammatory activation, and ultimately heightened thrombotic risk compounded by liver synthetic dysfunction.
  • 5:48Anticoagulation Strategies and Time in Therapeutic Range — Reviews evidence comparing aspirin versus warfarin, showing warfarin superiority when time-in-therapeutic-range exceeds 60%. Presents data demonstrating that excellent TTR above 80% is achievable with aggressive monitoring and results in only one thrombotic event over 53 patient-years. Introduces second case of a 10-year-old active Fontan patient heterozygous for Factor V Leiden.
  • 8:24Personalized Risk Stratification Using Biomarkers — Proposes alternative to universal anticoagulation by identifying a bimodal thrombotic risk pattern with post-surgical risk, honeymoon phase, and later inexorable increase. Presents biomarker data from adult VTE literature showing elevated D-dimer and factor VIII predict thrombotic risk, with preliminary Fontan data suggesting factor VIII elevation correlates with subsequent thrombotic complications.
  • 10:43Laboratory Markers and Hemostatic Balance — Details laboratory findings in post-Fontan patients showing decreased natural anticoagulants (antithrombin, protein C) from liver dysfunction but elevated prothrombin fragment 1.2 indicating net prothrombotic state. Proposes monitoring panel including factor VIII, D-dimer, liver function tests, and inflammatory markers every 6 months to predict end of honeymoon period.
  • 13:41Case Management and Direct Oral Anticoagulants — Recommends discussing warfarin transition for the 21-year-old with abnormal labs despite low-risk clot, while suggesting aspirin continuation for the 10-year-old with isolated Factor V Leiden heterozygosity. Addresses direct oral anticoagulants, emphasizing need for Fontan-specific data and reliable monitoring methods before routine use, noting they may be superior to poorly controlled warfarin but not necessarily to well-managed warfarin with high TTR.

Key claims

  • 1:01Fontan circulation is a profoundly prothrombotic state — Joe
  • 1:10Thrombosis is a major cause of death in patients with Fontan's — Joe
  • 1:10Many thrombotic events in Fontan patients are subclinical but clinically significant — Joe
  • 1:23The prevalence of silent pulmonary embolism in adults with Fontan circulation may be as high as 1 in 5 (20%) — Joe
  • 1:39In newer style Fontans, patients had an overall cumulative risk of 22% for thrombotic events — Joe
  • 2:19The cumulative hazard risk of thrombotic events goes up over time in Fontan patients — Joe
  • 2:33Over time, Fontan circulation becomes essentially a freight train of thrombogenicity — Joe
  • 2:47Fontan thrombogenicity ranks with paroxysmal nocturnal hemoglobinuria, which carries 30-40% risk of thrombotic events over 5 years — Joe
  • 3:00Fontan thrombogenicity compares to antiphospholipid antibody syndrome — Joe
  • 3:05Fontan thrombogenicity compares to patients with unprovoked venous thromboembolism who have recurrence rates in the 20-30% range — Joe
  • 4:52Relative hypoxia and loss of pulsatile flow in the venous system is very thrombogenic for endothelial cells — Joe
  • 5:01Hypoxia and loss of pulsatile flow result in upregulation of tissue factor expression, the primary initiator of the clotting cascade — Joe
  • 5:01Endothelial activation results in upregulation of adhesion molecules that activate inflammatory cells and increased excretion of factor 8 and von Willebrand factor — Joe
  • 5:17PLE is a serious potential complication of Fontan circulation that results in increased inflammatory system activation — Joe
  • 6:05The data overall support that warfarin is better thromboprophylaxis than aspirin in Fontan patients — Joe
  • 6:14Reanalysis of Monagle's data showed warfarin with time in therapeutic range of 60% or better edged out aspirin over time — Joe
  • 6:39Retrospective data from Cedric Manliot's group showed warfarin was clearly better than aspirin — Joe
  • 6:47Both warfarin and aspirin were significantly better than no thromboprophylaxis — Joe
  • 7:05Excellent time in therapeutic range above 80% is achievable with warfarin — Joe
  • 7:14In patients with excellent time in therapeutic range (>80%), only one thrombotic event was observed over 53 patient years — Joe
  • 7:26Excellent time in therapeutic range is achievable using a paternalistic approach with aggressive monitoring and phone follow-up — Joe
  • 8:36With well managed anticoagulation, bleeding risk is around 2% per year — Joe
  • 8:43Warfarin is very problematic from a pharmacokinetic standpoint — Joe
  • 8:52Poorly managed warfarin may actually increase thrombotic risk — Joe
  • 8:52Direct oral anticoagulants seem to be superior to warfarin in many ways but are completely unproven in Fontan patients — Joe
  • 9:24Thrombotic risk in Fontan patients follows a bimodal incidence with initial post-surgical risk, honeymoon phase of variable duration, and then inexorable increase — Joe
  • 10:08Elevated D-dimer is a strong marker of increased thrombotic risk — Joe
  • 10:17Elevated factor 8 is a strong marker of increased thrombotic risk — Joe
  • 10:25Factor 8 can be elevated genetically, as a marker of endothelial cell activation (made by endothelial cells), or as an acute phase reactant marking inflammation — Joe
  • 10:49Factor 8 activity increases significantly post-Fontan — Joe
  • 10:49In one study, the four patients with highest factor 8 levels ultimately developed thrombotic complications — Joe
  • 11:10In post-Fontan patients, natural anticoagulants like antithrombin and protein C are often lower, consistent with liver synthetic dysfunction developing over time — Joe
  • 11:38Post-Fontan patients have elevated prothrombin fragment 1.2, a sensitive and specific marker for prothrombin activation to thrombin — Joe
  • 11:59Despite lower procoagulants from liver dysfunction, Fontan patients are not at bleeding risk but at thrombotic risk — Joe
  • 12:13Fontan circulation, even in the context of liver dysfunction, shifts hemostatic balance toward a thrombophilic state — Joe
  • 14:40Aspirin VerifyNow is an extremely reliable and reproducible test that the patient is taking aspirin and having an antiplatelet response — Joe
  • 15:26Direct oral anticoagulants need to be studied in the Fontan population before determining how good or bad they are — Joe
  • 15:45To use direct oral anticoagulants routinely in Fontan population, we need the ability to monitor them reliably — Joe
  • 16:00Organ function can change very rapidly in patients with Fontan, necessitating monitoring capability for direct oral anticoagulants — Joe
  • 16:21Direct oral anticoagulants are most likely better than poorly controlled warfarin — Joe

Cases discussed

  • 3:2621-year-old with Fontan circulation and mild PLE on low-dose aspirin presenting with superficial thrombophlebitis
  • 7:4110-year-old boy with Fontan circulation, heterozygous for Factor V Leiden, very active in sports

Open questions

  • What platelet resistance units measured by VerifyNow are optimal in Fontan patients?
  • Can biomarkers reliably predict when the thrombotic 'honeymoon phase' is ending in individual Fontan patients?
  • How do direct oral anticoagulants perform compared to well-managed warfarin in Fontan patients?
  • What is the optimal monitoring strategy and frequency for direct oral anticoagulants in Fontan patients given their variable organ function?
This episode was analyzed and enriched by Kai, the Library's AI content creator. Every item links to the moment it comes from — click a timestamp to listen in context.

Managing Thrombotic Risk in Fontan Circulation: Beyond Universal Anticoagulation

The episode's teaching points arranged as a structured lesson, building from the basics up to the finer points. Written by Kai from the episode transcript and reviewed before publishing.

For the care team · Teaching arc · AI-written, human-reviewed

The magnitude of the problem

Fontan circulation is a profoundly prothrombotic state 1:01. Thrombosis is a major cause of death in these patients 1:10, and many thrombotic events are subclinical but clinically significant 1:10. The prevalence of silent pulmonary embolism in adults with Fontan circulation may be as high as 20% 1:23. In newer-style Fontans, patients had an overall cumulative risk of 22% for thrombotic events 1:39, and this cumulative hazard risk increases over time 2:19. One of the discussants characterizes the progression bluntly: the Fontan circulation becomes increasingly thrombogenic over time 2:33.

To contextualize this risk, Fontan thrombogenicity ranks with paroxysmal nocturnal hemoglobinuria, which carries a 30-40% risk of thrombotic events over five years 2:47, compares to antiphospholipid antibody syndrome 3:00, and parallels patients with unprovoked venous thromboembolism who have recurrence rates in the 20-30% range 3:05.

The pathophysiology: endothelial activation and hypercoagulability

Hypoxia and loss of pulsatile flow drive endothelial activation. Relative hypoxia and loss of pulsatile flow in the venous system is very thrombogenic for endothelial cells 4:52, resulting in upregulation of tissue factor expression — the primary initiator of the clotting cascade 5:01 — and upregulation of adhesion molecules that activate inflammatory cells and increase excretion of factor 8 and von Willebrand factor 5:01. PLE, a serious potential complication of Fontan circulation, results in increased inflammatory system activation 5:17, further amplifying thrombotic risk.

Liver dysfunction paradoxically increases thrombotic risk. In post-Fontan patients, natural anticoagulants like antithrombin and protein C are often lower, consistent with liver synthetic dysfunction developing over time 11:10. Despite lower procoagulants from this same liver dysfunction, post-Fontan patients have elevated prothrombin fragment 1.2, a sensitive and specific marker for prothrombin activation to thrombin 11:38. The net effect: these patients are not at bleeding risk but at thrombotic risk 11:59. Fontan circulation, even in the context of liver dysfunction, shifts the hemostatic balance toward a thrombophilic state 12:13.

Anticoagulation strategy: warfarin versus aspirin

The data overall support that warfarin is better thromboprophylaxis than aspirin in Fontan patients 6:05. Reanalysis of Monagle's data showed warfarin with time in therapeutic range of 60% or better edged out aspirin over time 6:14. Retrospective data from Cedric Manlhiot's group showed warfarin was clearly better than aspirin 6:39, though both warfarin and aspirin were significantly better than no thromboprophylaxis 6:47.

Excellent time in therapeutic range above 80% is achievable with warfarin 7:05. In patients with excellent time in therapeutic range (>80%), only one thrombotic event was observed over 53 patient-years 7:14. This level of control is achievable using a paternalistic approach with aggressive monitoring and phone follow-up 7:26. With well-managed anticoagulation, bleeding risk is around 2% per year 8:36. However, warfarin is very problematic from a pharmacokinetic standpoint 8:43, and poorly managed warfarin may actually increase thrombotic risk 8:52.

The case for risk stratification

Thrombotic risk in Fontan patients follows a bimodal incidence with initial post-surgical risk, a honeymoon phase of variable duration, and then inexorable increase 9:24. This pattern suggests an alternative to universal lifelong anticoagulation: risk-stratified therapy based on biomarkers.

Elevated D-dimer is a strong marker of increased thrombotic risk 10:08. Elevated factor 8 is equally predictive 10:17. Factor 8 can be elevated genetically, as a marker of endothelial cell activation (made by endothelial cells), or as an acute phase reactant marking inflammation 10:25 — all three mechanisms relevant in Fontan patients. Factor 8 activity increases significantly post-Fontan 10:49, and in one study, the four patients with highest factor 8 levels ultimately developed thrombotic complications 10:49.

The direct oral anticoagulant question

Direct oral anticoagulants seem to be superior to warfarin in many ways but are completely unproven in Fontan patients 8:52. Before using them routinely in the Fontan population, the ability to monitor them reliably is needed 15:45, particularly because organ function can change very rapidly in patients with Fontan 16:00. Direct oral anticoagulants are most likely better than poorly controlled warfarin 16:21, but excellent time in therapeutic range with warfarin is achievable. One of the discussants emphasizes: direct oral anticoagulants need to be studied in the Fontan population before determining how good or bad they are 15:26.

For aspirin therapy, the Aspirin VerifyNow is an extremely reliable and reproducible test that the patient is taking aspirin and having an antiplatelet response 14:40 — a practical tool for confirming adherence and effect in patients managed with antiplatelet therapy during their lower-risk phases.

Takeaways from this story

  • Fontan thrombotic risk rivals paroxysmal nocturnal hemoglobinuria and antiphospholipid syndrome, with 22% cumulative event rate.
  • Warfarin with time-in-therapeutic-range >80% reduces events to 1 per 53 patient-years; poorly controlled warfarin may increase risk.
  • Elevated factor 8 predicts thrombosis and reflects endothelial activation, inflammation, or genetic thrombophilia—all relevant in Fontan.
  • Liver dysfunction lowers natural anticoagulants but elevated prothrombin fragment 1.2 confirms net prothrombotic state, not bleeding risk.
  • Direct oral anticoagulants need Fontan-specific study and reliable monitoring before routine use; organ function changes rapidly in these patients.

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