Related Experiment Video
Updated: Jul 17, 2026

Tail Vein Transection Bleeding Model in Fully Anesthetized Hemophilia A Mice
Published on: September 30, 2021
Early factor VIII exposure and subsequent inhibitor development in children with severe haemophilia A
E A Chalmers1, S A Brown, D Keeling
1Royal Hospital for Sick Children, Glasgow, UK. elizabeth.chalmers@yorkhill.scot.nhs.uk
Insights
Inhibitor development in haemophilia A is not higher in neonates treated with factor VIII (FVIII). Initial treatment with recombinant FVIII and major molecular defects increase inhibitor risk.
Area of Science:
- Hematology
- Pediatrics
- Immunology
Background:
- Inhibitor development is a significant complication in haemophilia A treatment.
- Previous studies suggested a higher risk of inhibitors with early factor VIII (FVIII) exposure (<6 months).
Purpose of the Study:
- To investigate inhibitor development in children with severe haemophilia A, focusing on neonatal FVIII exposure.
- To examine the impact of genetic and environmental factors on inhibitor development.
Main Methods:
- Studied 348 children with severe haemophilia A.
- Analyzed inhibitor incidence based on age at first FVIII exposure, FVIII product type, and genetic mutations (intron 22, major molecular defect).
Main Results:
- Overall inhibitor incidence was 20% (68/348), with 10% high-titre inhibitors.
- Neonatal FVIII exposure (<1 month) showed a 26% incidence, not significantly different from later exposure within the first year.
- Recombinant FVIII (rFVIII) use (P=0.006) and major molecular defects (P=0.009) were associated with increased inhibitor development.
Conclusions:
- Neonatal FVIII exposure does not increase inhibitor risk compared to exposure later in the first year of life.
- Initial treatment with rFVIII and the presence of a major molecular defect are key factors influencing inhibitor development in haemophilia A.
Abstract:
Recent reports have suggested that the incidence of inhibitors in haemophilia is the highest in those first exposed to factor VIII under 6 months of age. In this study, we investigated inhibitor development in children first exposed to FVIII as neonates and also examined the effect of other genetic and environmental variables. Three hundred and forty-eight children with severe haemophilia A were investigated. Inhibitors developed in 68 of 348 (20%), with 34 of 348 (10%) high titre inhibitors. The incidence in relation to initial FVIII exposure was: <1 month nine of 35 (26%), 1-6 months 13 of 51 (25%), 6-12 months 27 of 130 (21%), 12-18 months 13 of 66 (20%) and >18 months six of 66 (9%). While we observed a significant difference in inhibitor development and age at first exposure across all age groups (P = 0.018), no significant difference was observed in children treated at different time points during the first year of life (P = 0.44). Similar results were obtained for high titre inhibitors. There was also no difference in the incidence of inhibitors in relation to initial FVIII exposure in a subgroup of 144 children with the intron 22 mutation. Inhibitors developed more frequently in those initially treated with recombinant when compared with plasma-derived FVIII (P = 0.006) and in those with a major molecular defect (P = 0.009). In this study, exposure to FVIII during the neonatal period was not associated with a higher incidence of inhibitors than those treated later during the first year of life. Initial treatment with recombinant FVIII and the presence of a major molecular defect were the most important variables affecting inhibitor development.
Related Concept Videos
Anticoagulant Drugs: Vitamin K Antagonists and Direct Oral Anticoagulants
Warfarin, a prominent vitamin K antagonist family member, exerts its effect by inhibiting the enzyme VKORC1 (vitamin K epoxide reductase complex 1). By hindering this enzyme, warfarin...
Venous Thrombosis III: Interprofessional Care
Anticoagulant Drugs: Low-Molecular-Weight Heparins
Extrinsic and Intrinsic Pathways of Hemostasis
The Extrinsic Pathway
The extrinsic pathway of coagulation is typically initiated by tissue damage that exposes blood to tissue factor (TF), a protein released by the damaged tissue cells outside the blood vessels—this interaction with TF triggers biochemical reactions involving specific clotting factors. The key player here is Factor VII, which forms a...
Disorders of Hemostasis
Thromboembolic Disorders
Two factors primarily cause thromboembolic conditions.
Inhibitors of Viral Protein Synthesis

