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Plos One|November 13, 2012
Potentiation of thrombin generation in hemophilia A plasma by coagulation factor VIII and characterization of antibody-specific inhibitionBhavya S Doshi, Bagirath Gangadharan, Christopher B Doering, et al.Blood|June 19, 2002
Factor VIII expression in azoxymethane-induced murine fulminant hepatic failureChristopher B Doering, Cassandra D Josephson, Heather N Craddock, et al.Frontiers in Immunology|May 1, 2020
The Immune Response to the fVIII Gene Therapy in Preclinical ModelsSeema R Patel, Taran S Lundgren, H Trent Spencer, et al.Cytotherapy|June 5, 2016
Bioengineering and serum free expansion of blood-derived γδ T cellsKathryn S Sutton, Anindya Dasgupta, David McCarty, et al.Blood|February 2, 2006
High-level expression of porcine factor VIII from genetically modified bone marrow-derived stem cellsBagirath Gangadharan, Ernest T Parker, Lucienne M Ide, et al.Blood Advances|March 14, 2022
Pharmacokinetic analysis identifies a factor VIII immunogenicity threshold after AAV gene therapy in hemophilia A miceTaran S Lundgren, Gabriela Denning, Sean R Stowell, et al.The Journal of Biological Chemistry|December 9, 2003
Identification of porcine coagulation factor VIII domains responsible for high level expression via enhanced secretionChristopher B Doering, John F Healey, Ernest T Parker, et al.Blood|June 16, 2007
Hematopoietic stem-cell gene therapy of hemophilia A incorporating a porcine factor VIII transgene and nonmyeloablative conditioning regimensLucienne M Ide, Bagirath Gangadharan, Kuang-Yueh Chiang, et al.The Journal of Biological Chemistry|July 26, 2002
High level expression of recombinant porcine coagulation factor VIIIChristopher B Doering, John F Healey, Ernest T Parker, et al.Cryobiology|January 24, 2021
Human serum albumin and chromatin condensation rescue ex vivo expanded γδ T cells from the effects of cryopreservationRebecca E Burnham, Donald Tope, Gianna Branella, et al.Pageof 8