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Bissig, K.-D.

Publications and source records attributed to Bissig, K.-D..

2 recordsLinked to original sources

EX VIVO GENE EDITING AND CELL THERAPY FOR HEREDITARY TYROSINEMIA TYPE 1

Background & AimsWe previously demonstrated the successful use of in vivo CRISPR gene editing to delete 4-hydroxyphenylpyruvate dioxygenase (HPD) to rescue mice deficient in fumarylacetoacetate hydrolase (FAH), a disorder known as hereditary tyrosinemia type 1 (HT1). The goal of this study was to develop an ex vivo gene editing protocol and apply it as a cell therapy for HT1. MethodsWe isolated hepatocytes from wild-type (C57BL/6) and Fah-/- mice and then used an optimized electroporation protocol to deliver Hpd-targeting CRISPR-Cas9 ribonucleoproteins (RNP) into hepatocytes. Next, hepatocytes were transiently incubated in cytokine recovery media that we formulated to block apoptosis, followed by splenic injection into recipient Fah-/- mice. ResultsWe observed robust engraftment and expansion of transplanted gene-edited hepatocytes from wild-type donors in the liver of recipient mice when transient incubation with our cytokine recovery media was used after electroporation and negligible engraftment without the media (mean 46.8% and 0.83%, respectively, p = 0.0025). Thus, the cytokine recovery media was a critical component of our electroporation protocol. When hepatocytes from Fah-/- mice were used as donors for transplantation, we observed 35% and 28% engraftment for Hpd-Cas9 RNPs and Cas9 mRNA, respectively. Tyrosine, phenylalanine, and biochemical markers of liver injury normalized in both Hpd-targeting Cas9 RNP and mRNA groups independent of drug induced-inhibition of Hpd through nitisinone, indicating correction of disease indicators in Fah-/- mice. ConclusionsThe successful liver cell therapy for HT1 validates our protocol and, despite the known growth advantage of HT1, showcase ex vivo gene editing using electroporation in combination with liver cell therapy to cure a disease model. These advancements showcase the impacts of electroporation combined with transplantation as a cell therapy.

bioengineering↗

In vivo expansion of gene-targeted hepatocytes through transient inhibition of an essential gene

Homology Directed Repair (HDR)-based genome editing is an approach that could permanently correct a broad range of genetic diseases. However, its utility is limited by inefficient and imprecise DNA repair mechanisms in terminally differentiated tissues. Here, we tested "Repair Drive", a novel method for improving targeted gene insertion in the liver by selectively expanding correctly repaired hepatocytes in vivo. Our system consists of transient conditioning of the liver by knocking down an essential gene, and delivery of an untargetable version of the essential gene in cis with a therapeutic transgene. We show that Repair Drive dramatically increases the percentage of correctly targeted hepatocytes, up to 25%. This resulted in a five-fold increased expression of a therapeutic transgene. Repair Drive was well-tolerated and did not induce toxicity or tumorigenesis in long term follow up. This approach will broaden the range of liver diseases that can be treated with somatic genome editing.

genetics↗