We will test a new approach for the production of therapeutic proteins secreted from blood cells after in vivo gene delivery into hematopoietic stem cells (HSCs). This approach involves the mobilization of HSCs from the bone marrow followed by a single intravenous injection of integrating helper-dependent HDAd5/35++ adenovirus vectors. HSCs transduced in the peripheral blood return to the bone marrow where they persist long-term. Transgene integration is achieved either in a random pattern using a transposase or, in a site- specific pattern, through homology-directed DNA repair mechanisms. For a secreted transgene product, we will focus on human factor VIII expressed in erythrocytes after in vivo factor VIII gene transfer into HSCs. In contrast to currently used rAAV-mediated liver-directed hemophilia gene therapy, our technically simple and cost-efficient approach has the potential for a life-long cure with induction of tolerance to factor VIII.
The Specific Aims are 1. Increase the efficacy and safety of transposase-based HDAd5/35++ in vivo HSC transduction through optimization of mobilization and vector injection regimens and through HSC in vivo expansion or selection mechanisms. 2. Test new HDAd5/35++ vector systems for targeted integration, including a vector that carries both a CRISPR-Cas9 to create site-specific DNA breaks and the homology template for integration. 3. Test the best in vivo HSC transduction system in a mouse model for hemophilia A. 4. Perform a pilot safety and efficacy study in non-human primates, which are the most adequate model for potential future studies in humans. The proposed 6-month study with repeated blood and bone marrow sampling will allow us to predict potential long-term side effects on hematopoiesis and follow the expansion of gene-edited HSCs over time.

Public Health Relevance

We developed an efficient and safe approach for in vivo transduction of hematopoietic stem cells without the need of myelo-ablative conditioning and transplantation. The simplicity and cost-effectiveness of the technology is relevant for gene therapy of inherited diseases as well as infectious diseases and cancer. The central goal of this proposal is to optimize the approach using a secreted transgene product (factor VIII) and test its therapeutic potential for the treatment of hemophilia A.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL141781-03
Application #
9939688
Study Section
Gene and Drug Delivery Systems Study Section (GDD)
Program Officer
Qasba, Pankaj
Project Start
2018-05-05
Project End
2022-04-30
Budget Start
2020-05-01
Budget End
2021-04-30
Support Year
3
Fiscal Year
2020
Total Cost
Indirect Cost
Name
University of Washington
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
605799469
City
Seattle
State
WA
Country
United States
Zip Code
98195