Submitted:
02 September 2026
Posted:
03 September 2026
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Abstract
Background/Objectives: Pediatric extracorporeal membrane oxygenation (ECMO) exposes blood to surfaces, mechanical forces, and inflammatory perturbations that disrupt hemostatic homeostasis. These effects are superimposed on developmental differences in coagulation, platelet, endothelial, anticoagulant, and fibrinolytic systems. This review proposes the Integrated Hemostatic Network (IHN) as a conceptual framework for understanding ECMO-associated dyshemostasis and precision hemostatic management. Methods: Evidence addressing developmental hemostasis and determinants of ECMO-associated dyshemostasis was synthesized within a framework of blood–circuit interactions, platelet and von Willebrand factor biology, coagulation, anticoagulant pathways, fibrinolysis, endothelial dysfunction, complement, innate immunity, inflammation, hemolysis, and extracellular vesicles. Implications were examined through multimodal monitoring, phenotypic assessment, anticoagulant management, targeted therapy, transfusion stewardship, and circuit optimization. Results: The evidence supports a model in which interconnected mechanisms reshape the hemostatic phenotype during pediatric ECMO. Prothrombotic stimuli may coexist with platelet dysfunction, acquired von Willebrand abnormalities, fibrinogen depletion, altered fibrinolysis, endothelial injury, and anticoagulant effects. Three phenotypes—bleeding-predominant, thrombosis-predominant, and mixed bleeding–thrombotic—provide a framework for assessment and therapeutic reasoning. Multimodal interpretation of anticoagulation assays, viscoelastic testing, platelet and fibrinogen status, biological markers, and patient/circuit findings is preferable to reliance on laboratory targets. Conclusions: Pediatric ECMO-associated dyshemostasis reflects dynamic perturbation of an interconnected IHN, in which mechanical, developmental, cellular, coagulation, endothelial, inflammatory, fibrinolytic, and circuit-related processes interact to shape an evolving hemostatic phenotype. Precision hemostatic management should therefore be phenotype-oriented, mechanism-directed, and dynamically reassessed. The IHN framework provides a conceptual and testable platform for phenotype-adaptive management; prospective multicenter studies are needed to determine whether this approach improves patient-centered outcomes.
Keywords:
1. Introduction
Physiology and Ontogeny of the Integrated Hemostatic Network
Vascular Injury and Initiation of the Hemostatic Response
Tissue Factor and the Contact System: Interconnected Pathways
Thrombin, Fibrin Formation, and Limitation of the Hemostatic Response
From the Cell-Based Model to the Convergent Model of Coagulation and Inflammation
Integrated Perspective
Pathobiology of ECMO-Associated Dyshemostasis
Blood–Biomaterial Interaction: The Initiating Perturbation
Mechanical Forces and Shear-Induced Hemostatic Dysfunction
Platelet Activation, Consumption, and Loss of Hemostatic Reserve
Coagulation Activation and Thrombin Generation
Endothelial Dysfunction, Inflammation, and Thromboinflammation
Hemolysis as a Component of ECMO-Associated Dyshemostasis
Fibrinolytic Dysregulation
Consumption, Depletion, Dilution, and Loss of Hemostatic Reserve
Anticoagulation as One Component of the Dyshemostatic Environment
ECMO-Associated Dyshemostasis as a Dynamic Network Disorder
Clinical Phenotypes of ECMO-Associated Dyshemostasis
Thrombosis-Predominant Phenotype
Bleeding-Predominant Phenotype
Mixed Bleeding–Thrombotic Phenotype
From Phenotype Recognition to Integrated Assessment
Precision Monitoring of Dyshemostasis During Pediatric ECMO
Laboratory and Functional Assessment
Adjunctive Biological Markers
Integrated Hemostatic Patterns
Discordance Among Anticoagulation Assays
Dynamic, Phenotype-Oriented Monitoring
Precision Hemostatic Management During Pediatric ECMO
- The principal therapeutic domains are:
- Anticoagulant selection and intensity;
- Targeted blood-component and hemostatic therapy;
- Transfusion stewardship;
- Circuit-directed optimization and management of clinically consequential circuit pathology;
- Correction of systemic physiological and inflammatory drivers;
- Bleeding source control;
- Minimizing iatrogenic hemostatic injury;
- Serial reassessment and therapeutic adaptation.
Anticoagulant Selection and Intensity
Unfractionated Heparin Anticoagulation
Direct Thrombin Inhibitors
Antithrombin
Targeted Blood-Component and Hemostatic Therapy
Platelet Replacement
Plasma for Multiple-Factor Replacement
Fibrinogen Replacement
Red Blood Cell Transfusion
Recombinant Factor VIIa and PCC
Antifibrinolytic Therapy
Transfusion Stewardship and Transfusion as a Biological Perturbation
The ECMO Circuit as an Active Therapeutic Target
Correction of Systemic Drivers of Dyshemostasis
Procedural and Surgical Source Control
Minimizing Iatrogenic Hemostatic Injury
Serial Reassessment and Therapeutic Adaptation
Toward Precision Hemostasis
Current Evidence and Limitations
Future Perspectives
Conclusion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ACT — activated clotting time |
| ADAMTS13 — a disintegrin and metalloproteinase with thrombospondin type 1 motif, member 13 |
| AI — artificial intelligence |
| aPTT — activated partial thromboplastin time |
| AT — antithrombin |
| CRRT — continuous renal replacement therapy |
| DAMPs — damage-associated molecular patterns |
| D-dimer — D-dimer |
| DIC — disseminated intravascular coagulation |
| DTI — direct thrombin inhibitor |
| EACA — ε-aminocaproic acid |
| ECMO — extracorporeal membrane oxygenation |
| ELSO — Extracorporeal Life Support Organization |
| EVs — extracellular vesicles |
| FIBTEM — fibrin-based thromboelastometry |
| FFP — fresh frozen plasma |
| HIT — heparin-induced thrombocytopenia |
| IHN — integrated hemostatic network |
| INR — international normalized ratio |
| LDH — lactate dehydrogenase |
| NETs — neutrophil extracellular traps |
| PAMPs — pathogen-associated molecular patterns |
| PCC — prothrombin complex concentrate |
| PF4 — platelet factor 4 |
| RBC — red blood cell(s) |
| rFVIIa — recombinant activated factor VII |
| ROTEM — rotational thromboelastometry |
| TAFI — thrombin-activatable fibrinolysis inhibitor |
| TAT — thrombin–antithrombin |
| TEG — thromboelastography |
| TF — tissue factor |
| TFPI — tissue factor pathway inhibitor |
| TCC — terminal complement complex |
| tPA — tissue plasminogen activator |
| TXA — tranexamic acid |
| UFH — unfractionated heparin |
| VET — viscoelastic testing |
| vWF — von Willebrand factor |
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| Method | What it measures | What it does not measure | Main limitation in ECMO | Practical interpretation | Therapeutic implications |
|---|---|---|---|---|---|
| ACT | Whole-blood clotting time, influenced by UFH and multiple patient- and circuit-related factors | Does not provide a specific measure of heparin activity or overall hemostatic competence | Influenced by thrombocytopenia, hypofibrinogenemia, hemodilution, anemia, temperature, inflammation, and other factors | Useful for rapid bedside assessment; discordance with complementary assays should prompt investigation rather than automatic heparin adjustment | May contribute to assessment of anticoagulant effect, but unexpected values should be interpreted with aPTT, anti-Xa, VET, and clinical/circuit findings before modifying UFH |
| aPTT | Phospholipid-dependent clotting time, predominantly reflecting intrinsic/common pathway function and affected by UFH | Does not specifically quantify heparin activity and does not assess platelet function, fibrinogen contribution, VWF, or clot strength | Factor deficiencies, inflammation, elevated FVIII, lupus anticoagulant, consumptive states, developmental hemostasis, and assay/reagent variability | Useful for UFH monitoring when appropriately validated; discordance with anti-Xa should be investigated rather than automatically attributed to inadequate or excessive heparin | Can provide an important complementary basis for UFH adjustment; substantial discordance should prompt evaluation of biological and analytical causes before changing anticoagulation intensity |
| Anti-Xa | Functional inhibition of factor Xa by the heparin–antithrombin complex; provides a relatively direct estimate of UFH anticoagulant activity | Does not assess endogenous coagulation pathways, platelet function, fibrinogen contribution, clot strength, or the overall hemostatic phenotype | AT availability, assay methodology, hemolysis/free hemoglobin, hyperbilirubinemia, hypertriglyceridemia, and other analytical or preanalytical factors may produce falsely low or otherwise misleading results; assay response to UFH is not fully standardized across platforms | Useful for estimating UFH effect, but should not be interpreted in isolation. Concordance with aPTT increases confidence; marked discordance should prompt investigation. VET may provide complementary information regarding functional clot initiation and strength | Heparin titration should not rely on anti-Xa alone. Before modifying UFH, consider concordance with aPTT, VET findings when available, AT availability, assay interference, sampling issues, and the patient and circuit phenotype |
| Heparin concentration | Plasma heparin concentration | Does not necessarily reflect biological anticoagulant effect | Assay availability and calibration; concentration–effect relationship depends on AT and patient biology | May help characterize discordance between measured heparin concentration and functional anticoagulant assays | May support individualized assessment of UFH exposure when other assays are discordant, but should not replace functional assessment |
| VET – clot initiation | Whole-blood dynamics of clot initiation and propagation, integrating coagulation factors, fibrinogen, platelets, and cellular components | Does not provide a specific measure of UFH concentration or a validated stand-alone measure of anticoagulant activity | Influenced by multiple plasma and cellular components and assay-specific conditions; pediatric ECMO-specific thresholds for UFH effect are not standardized | Provides complementary functional information and may be particularly useful when anti-Xa and aPTT are discordant | May help determine whether an apparent anticoagulation discrepancy is accompanied by functional hypo- or hypercoagulability; should inform rather than independently dictate UFH adjustment |
| VET – clot strength | Integrated contribution of fibrin and platelets to clot firmness | Does not independently distinguish platelet dysfunction from fibrinogen deficiency without appropriate adjunctive assays | Cannot identify the specific molecular cause of reduced or increased clot strength | Particularly useful for identifying functional abnormalities in clot strength and assessing the relative contribution of fibrin and platelets when paired with fibrin-specific testing | May support targeted consideration of platelet or fibrinogen therapy rather than empiric transfusion, when consistent with the clinical phenotype |
| FIBTEM / functional fibrinogen | Fibrin-based contribution to clot firmness estimated after pharmacologic inhibition of platelet contribution | Does not assess platelet contribution or provide a direct measure of heparin effect | Interpretation depends on assay platform and pediatric context; does not directly equal plasma fibrinogen concentration | Helps determine whether impaired fibrin contribution substantially contributes to reduced clot strength | May support targeted fibrinogen replacement when clinically indicated and interpreted together with plasma fibrinogen, VET, and clinical phenotype |
| Platelet count | Number of circulating platelets | Does not measure platelet function or the broader platelet phenotype | Platelet count may not reflect functional platelet competence during ECMO | Quantifies thrombocytopenia but does not characterize platelet contribution to hemostasis | May contribute to platelet transfusion decisions, but intervention should consider bleeding/thrombotic phenotype and functional information, including VET when available |
| Fibrinogen | Plasma fibrinogen concentration | Does not measure functional fibrin formation or clot architecture | Concentration may not reflect the functional contribution of fibrinogen to clot strength | Useful for identifying quantitative fibrinogen deficiency; interpretation is strengthened by functional fibrin assessment on VET | May support consideration of fibrinogen replacement when clinically indicated, particularly when reduced fibrin contribution is demonstrated functionally |
| PT/INR | Extrinsic/common pathway clotting time | Does not measure UFH effect, platelet function, or clot strength | Limited sensitivity to UFH; affected by factor deficiency, liver dysfunction, vitamin K status, dilution, and assay characteristics | May identify abnormalities in extrinsic/common pathway factor activity or broader acquired coagulopathy, but has limited utility for UFH monitoring | Should prompt investigation and correction of relevant factor abnormalities when clinically indicated rather than reflexive modification of UFH |
| Factor | aPTT | Anti-Xa |
|---|---|---|
| UFH exposure | ↑ | ↑ |
| Heparin contamination from line | ↑ | ↑ |
| Intrinsic/common factor deficiency | ↑ | ↔ |
| Factor consumption / DIC | ↑ | ↔ |
| Liver dysfunction | ↑ | ↔ |
| Developmental low factor levels | ↑ | ↔ |
| Elevated factor VIII | ↓ | ↔ |
| Increased fibrinogen / acute-phase response | ↓ | ↔ |
| Lupus anticoagulant / inhibitors | ↑ | ↔ |
| Antithrombin deficiency | ↔* | ↓* |
| Thrombocytopenia / platelet dysfunction | usually ↔ | ↔ |
| Hemolysis / ↑ plasma-free Hb | variable | ↓** |
| Hyperbilirubinemia | variable | ↓** |
| Hypertriglyceridemia / lipemia | variable | ↓** |
| Assay/reagent/platform characteristics | ↑ / ↓ | ↑ / ↓ |
| Delayed/inappropriate sample handling | ↑ / ↓ | ↑ / ↓ |
| Prevailing clinical context | Potential anticoagulation positioning | Anti-Xa positioning |
|---|---|---|
| Bleeding-predominant phenotype | Lower-intensity positioning when anticoagulation remains necessary | 0.10–0.30 IU/mL |
| Stable hemostatic state | Conventional positioning | 0.30–0.50 IU/mL |
| Thrombosis-predominant phenotype | Higher-intensity positioning when inadequate anticoagulant effect is identified after other patient- and circuit-related contributors have been assessed | 0.50–0.70 IU/mL |
| Mixed bleeding–thrombotic phenotype | No predefined target; individualize according to the competing processes | — |
| Selected anti-Xa target range | Measured anti-Xa | Suggested UFH infusion adjustment |
|---|---|---|
| 0.10–0.30 IU/mL | <0.10 | Consider increasing by 10–20% after integrated assessment |
| 0.10–0.30 | No change | |
| >0.30 | Consider decreasing by 10–20% after integrated assessment | |
| 0.30–0.50 IU/mL | <0.30 | Consider increasing by 10–20% after integrated assessment |
| 0.30–0.50 | No change | |
| >0.50 | Consider decreasing by 10–20% after integrated assessment | |
| 0.50–0.70 IU/mL | <0.50 | Consider increasing by 10–20% after integrated assessment |
| 0.50–0.70 | No change | |
| >0.70 | Consider decreasing by 10–20% after integrated assessment |
| Hemostatic intervention | Conservative bedside reference | Bleeding-predominant phenotype | Thrombosis-predominant phenotype | Mixed bleeding–thrombotic phenotype |
|---|---|---|---|---|
| Platelet transfusion |
≥100 ×109/L in bleeding patients; ≥50–100 ×109/L in nonbleeding patients. Lower individualized thresholds have been reported. |
Consider when thrombocytopenia or suspected platelet dysfunction is present in the setting of clinically significant bleeding or before a high-risk procedure. Platelet count, trajectory, function, and VET-derived clot strength should be interpreted together with fibrinogen and clinical bleeding. | Avoid unnecessary platelet exposure. Transfuse only for a defined bleeding, procedural, or severe thrombocytopenic indication; consider the potential contribution of platelet replacement to patient or circuit thrombosis. | Consider when platelet deficiency or dysfunction contributes to clinically consequential bleeding. Balance replacement against active or progressive patient or circuit thrombosis. |
| Fresh Frozen Plasma (FFP) |
For clinically significant bleeding, an initial transfusion may be considered when INR >1.5 and relevant multiple-factor deficiency is suspected or demonstrated. Avoid prophylactic FFP solely to correct INR. |
Consider when clinically significant bleeding is associated with relevant multiple-factor deficiency or impaired clot initiation. Avoid repeated administration solely to normalize INR. | Generally avoid plasma solely to correct an elevated INR when there is no clinically relevant bleeding or demonstrated factor deficiency. | Consider when multiple-factor deficiency materially contributes to bleeding; avoid INR-driven correction when thrombosis is clinically consequential. |
| Fibrinogen replacement | A fibrinogen level ≥100 mg/dL may be acceptable in nonbleeding patients; a target of ≥150 mg/dL is reasonable in clinically significant bleeding or before high-risk intervention. Optimal thresholds remain uncertain. | Consider when low fibrinogen or impaired fibrin contribution contributes to clinically significant bleeding. Integrate fibrinogen concentration with platelet contribution and functional fibrin assessment when available. | Avoid unnecessary fibrinogen loading when fibrin contribution is adequate, particularly in the presence of progressive patient or circuit thrombosis. | Consider when low fibrinogen or impaired fibrin contribution materially contributes to bleeding; balance replacement against progressive thrombosis and circuit thrombus burden. |
| Red blood cells (RBC) | No universal pediatric ECMO threshold. Restrictive strategies, including approximately 7 g/dL, have been used in selected populations. | Individualize according to blood loss, hemoglobin, systemic oxygen delivery and consumption, hemodynamics, and clinical trajectory; transfuse when anemia or blood loss compromises oxygen delivery. | Individualize according to oxygen-delivery requirements and patient/circuit condition; avoid transfusion solely to normalize hemoglobin when oxygen delivery is adequate. | Individualize according to blood loss and oxygen-delivery requirements while considering the concurrent thrombotic and circuit context. |
| Prothrombin complex concentrate (PCC) | No validated pediatric ECMO threshold or dose; exceptional intervention. | Consider only as rescue therapy for severe, refractory, life-threatening bleeding after surgical/procedural causes have been addressed and conventional multimodal therapy optimized. | Generally avoid, particularly with active or progressive patient or circuit thrombosis, because of substantial thrombotic potential. | Generally avoid; consider only in exceptional life-threatening bleeding after multidisciplinary assessment of the competing thrombotic risk. |
| Recombinant activated factor VII (rFVIIa) | No validated pediatric ECMO threshold or dose; exceptional rescue intervention. | Reserve for refractory, life-threatening bleeding after conventional measures and correction of reversible causes; pediatric ECMO evidence is limited and uncontrolled. | Generally avoid because of substantial thrombotic potential and uncertain benefit. | Generally avoid; consider only in exceptional life-threatening bleeding after multidisciplinary assessment of thrombotic risk. |
| Antifibrinolytic therapy | No universal laboratory threshold; consider when clinically significant bleeding or high bleeding risk is associated with suspected or likely hyperfibrinolysis. | Consider when hyperfibrinolysis materially contributes to clinically significant bleeding, particularly in a surgical or high-risk procedural context. VET evidence may support the diagnosis but is not mandatory when clinical/procedural risk is compelling. | Generally avoid when clinically relevant or progressive thrombosis is present, particularly when hyperfibrinolysis is not contributing to the phenotype. | Consider only when hyperfibrinolysis materially contributes to bleeding and the anticipated benefit outweighs the potential effect on patient or circuit thrombosis. |
| Circuit strategy | Primary mechanism addressed | Potential hemostatic implication |
|---|---|---|
| Biocompatible circuit surfaces/coatings | Reduce protein adsorption and contact activation | May reduce platelet, coagulation, complement, and inflammatory activation |
| Minimize unnecessary blood–biomaterial interface | Reduce artificial-surface exposure | May reduce coagulation, platelet, and inflammatory activation |
| Reduce priming volume when feasible | Limit hemodilution and unnecessary artificial-surface exposure | May preserve hemostatic substrate concentrations and reduce transfusion requirements |
| Optimize cannula size and position | Improve drainage and reduce abnormal flow and shear | May reduce flow instability, mechanical blood trauma, and hemolysis |
| Optimize pump speed and blood flow for the circuit configuration and required support | Balance adequate flow and drainage against excessive shear and stasis | May limit shear-mediated blood injury, hemolysis, and circuit thrombogenicity while maintaining effective circuit function |
| Prevent recurrent suction/chattering events | Reduce excessive negative pressures and flow instability | May reduce hemolysis and mechanical blood trauma |
| Avoid unnecessary circuit manipulation | Reduce additional blood–biomaterial and air exposure | May limit additional coagulation, complement, and inflammatory activation |
| Avoid unnecessary circuit/oxygenator exchanges | Avoid renewed blood–biomaterial exposure and procedural burden | May reduce additional thromboinflammatory activation when exchange is not clinically necessary |
| Promptly investigate progressive fibrin deposition or circuit thrombosis | Identify evolving circuit pathology and its mechanical and hemostatic consequences | May facilitate early recognition of increasing thrombotic burden, hemolysis, or oxygenator dysfunction and inform subsequent circuit management |
| Circuit/oxygenator intervention when clinically consequential | Remove or replace a component compromising circuit function or patient support | May reduce ongoing circuit-related thrombogenicity and mechanical blood injury when the circuit has become a clinically significant source of dyshemostasis |
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