Sustained phenotypic correction of hemophilia B dogs with a factor IX null mutation by liver-directed gene therapy

Blood. 2002 Apr 15;99(8):2670-6. doi: 10.1182/blood.v99.8.2670.

Abstract

Hemophilia B is an X-linked coagulopathy caused by absence of functional coagulation factor IX (FIX). Using adeno-associated virus (AAV)-mediated, liver-directed gene therapy, we achieved long-term (> 17 months) substantial correction of canine hemophilia B in 3 of 4 animals, including 2 dogs with an FIX null mutation. This was accomplished with a comparatively low dose of 1 x 10(12) vector genomes/kg. Canine FIX (cFIX) levels rose to 5% to 12% of normal, high enough to result in nearly complete phenotypic correction of the disease. Activated clotting times and whole blood clotting times were normalized, activated partial thromboplastin times were substantially reduced, and anti-cFIX was not detected. The fourth animal, also a null mutation dog, showed transient expression (4 weeks), but subsequently developed neutralizing anti-cFIX (inhibitor). Previous work in the canine null mutation model has invariably resulted in inhibitor formation following treatment by either gene or protein replacement therapies. This study demonstrates that hepatic AAV gene transfer can result in sustained therapeutic expression in a large animal model characterized by increased risk of a neutralizing anti-FIX response.

Publication types

  • Research Support, Non-U.S. Gov't
  • Research Support, U.S. Gov't, P.H.S.

MeSH terms

  • Animals
  • Antibodies / blood
  • DNA / analysis
  • Dependovirus / genetics
  • Dogs
  • Drug Delivery Systems / methods
  • Factor IX / administration & dosage
  • Factor IX / genetics*
  • Factor IX / immunology
  • Genetic Therapy / methods*
  • Genetic Vectors / administration & dosage
  • Genetic Vectors / therapeutic use
  • Genetic Vectors / toxicity
  • Hemophilia B / genetics*
  • Hemophilia B / therapy*
  • Liver / metabolism
  • Male
  • Mutation*
  • Phenotype
  • Treatment Outcome

Substances

  • Antibodies
  • Factor IX
  • DNA