Related Experiment Video
Updated: Jan 7, 2026

CRISPR/Cas9-mediated Targeted Integration In Vivo Using a Homology-mediated End Joining-based Strategy
Published on: March 12, 2018
The Template-Jumping Editing Approach in F9-Associated Hemophilia B Gene Therapy
Robert Sattarov1, Alexey Kuznetsov1, Valeriy Klimko1
1Translational Medicine Research Center, Sirius University of Science and Technology, 1 Olympic Ave., Federal Territory Sirius, 354340 Sirius, Russia.
Abstract:
Hemophilia B is a hereditary bleeding disorder caused by mutations localized throughout the F9 gene. Existing gene therapy products containing AAV vectors have significant limitations. Replacement therapy with coagulation factor FIX infusions is not an optimal way of treatment, as patients still have periodic bleeding and require frequent transfusions. Moreover, approximately 5% of adult patients with hemophilia B develop inhibitory antibodies to recombinant forms of FIX. Therefore, it is important to develop universal CRISPR/Cas gene therapy approaches for F9 editing using non-viral delivery systems to enable gene reversion to a functional sequence at an early stage of disease development and establishment of the patients' immune system. In this study, a unique approach of F9 prime-editing was tested for the first time. This method is estimated to edit 7.3% of pathogenic F9 mutation types. Specifically, it targets the gene region encoding amino acids 374 V to 408 Q, which accounts for approximately 9.35% of patients with hemophilia B. An advantage of this gene therapy approach is the absence of the need to change Primer Binding Site (PBS) or Reverse Transcriptase Template (RTT) sequences until going from preclinical to clinical trials, as well as the introduction of gain of function mutations in order to compensate for the low prime-editing frequencies and enhance the effect of treatment in vivo.
Related Concept Videos
CRISPR
Gene Therapy
Conservative Site-specific Recombination and Phase Variation
The recognition sites for Cre recombinase called LoxP...
Long-patch Base Excision Repair

