Inborn errors of metabolism of the liver are a family of genetic diseases that collectively affect as many as 1 in 800 live births1. Many of these diseases are single gene defects2 and can be functionally cured by introducing a single corrected copy of the affected gene into a sufficient number of hepatocytes3. The actual percentage of hepatocytes that needs to be corrected varies by the disease4 and is largely dependent on the nature of the protein it encodes, for example, excreted proteins versus cytoplasmic. In most cases, efficacy of any treatment for metabolic disease is easily assayed through the presence of biomarkers often available in the circulation.
HT-1 is an inborn error of metabolism of the liver that results from a defect in fumarylacetoacetate hydrolase (FAH)5, the last enzymatic step in tyrosine metabolism6. FAH deficiency leads to the build up of toxic metabolites in the liver that can cause acute liver failure and death or in the chronic form of the disease can cause cirrhosis and hepatocellular carcinoma. The disease is clinically managed by administration of 2-(2-nitro-4-trifluoromethylbenzoyl)-1,3-cyclohexanedione (NTBC), a small molecule inhibitor of an enzyme upstream of FAH in tyrosine metabolism. The disease provides an ideal environment in which to test gene therapy methods, as successful correction of even a small number of hepatocytes will eventually result in the repopulation of the entire liver with corrected cells in both small and large animal models7,8. This occurs because corrected cells have a profound survival advantage over uncorrected cells due to the accumulation of toxic metabolites in the latter. The loss of uncorrected hepatocytes allows for selective expansion of corrected hepatocytes consistent with the regenerative capacity of the liver. Treatment can be easily followed by measuring the decrease in circulating tyrosine and succinylacetone levels following transplantation.
In order to justify the invasive nature of the procedure, which includes a partial hepatectomy, the goal of this approach must be a durable cure. Therefore, replication incompetent lentiviral vectors are used because they will stably integrate into the hepatocyte genome9. ensuring delivery of the corrected gene to all daughter cells as the liver grows and expands to replace the rapid loss of uncorrected cells. This is advantageous over adeno associated viral (AAV) vectors, which primarily exist as episomes that can only be passed to a single daughter cell during mitosis10 thereby losing any effect of the therapy in a matter of weeks.
Although a growing body of literature supports the safety of lentivirus11, concerns over genotoxic events are mitigated by limiting the transduction of host cells to a controlled in vitro environment. Free vector is never systemically introduced to the host when this method is performed, limiting exposure to the hepatocytes that will be re-introduced with autologous transplant via the portal vein.
This report describes the method of the surgical and ex vivo procedures used to isolate hepatocytes for gene therapy ex vivo and subsequent autologous transplantation12 for the treatment of the HT-1 pig8. The full process includes 1) a partial hepatectomy that serves as a source of hepatocytes and a growth stimulus for the host's liver, 2) isolation of hepatocytes from the excised liver followed by ex vivo gene correction, and finally 3) reintroduction of the corrected hepatocytes back into the host. The method described is applicable to all large animal models with some modification, but only the FAH-deficient pig13 will have the advantage of the selective environment for corrected hepatocytes.