Author

Ian E. Alexander

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Open access Aug 2026

Functional evaluation of a natural AAV capsid liver targeting motif in human hepatocytes

Background&Aims Adeno-associated virus (AAV) vectors are attractive delivery vehicles for therapeutic gene delivery, and a notable feature of most AAVs is their natural tropism for the liver, which leads to significant hepatic uptake following systemic administration. In previous work, we identified 266G as a conserved motif on a variable region on the capsid of many commonly used AAV variants that controls liver uptake in both mice and non-human primates. This single amino acid could be functionally leveraged to engineer AAVs to either de-target from or enhance tropism to the liver. Here, we explored whether these observations extended to the human context. Methods Two human hepatocyte models were tested: Fah−/−/Rag2−/−/Il2rg−/− (FRG) mice with humanized livers and a bioengineered human microliver platform in vitro. A barcoded AAV capsid library including standard control serotypes were used to assess the role of the 266G motif on gene transfer and transgene expression in both liver systems. Results In vivo, 266G containing AAVs indeed targeted human hepatocytes superiorly, with some noted dependency on the degree of human-hepatocyte replacement in the chimeric mouse model. Initial studies in the micropatterned primary human hepatocyte co-culture model however demonstrated enrichment of heparin-binding AAVs, and not 266G variants. Notably, incorporation of polyethylene glycol (PEG) into the system modified the AAV transduction potential of those capsids including the liver-targeting motif, recapitulating the hepatocyte transduction pattern observed in vivo. Importantly, when PEG was used, the two human models, both at the DNA and RNA level, did correlate significantly. Conclusions Our results showed the potential of a combinatorial AAV library for model validation and revealed the human microliver platform-PEG as a reliable system for the development of AAV therapeutics.

Carmen Unzu, Amanda X. Chen, Liliana Mancio-Silva et al. · 0 citations
Open access Jul 2026

Identification of AAV Vector Integration Sites in Primary Human and Macaque Hepatocytes in vivo, and Analysis of Oncogenic Risk.

Recombinant adeno-associated virus (rAAV) vectors are widely used for in vivo gene therapy, yet their potential to integrate into the host genome raises concerns about insertional mutagenesis and oncogenic risk, particularly in the liver where vector exposure is highest. To address this, we analyzed rAAV integration patterns in primary human hepatocytes xenografted into FRG mouse livers and in hepatocytes from cynomolgus macaques following systemic rAAV administration. High-resolution integration site mapping yielded approximately 1.5 million and 1.3 million unambiguously mapped sites in human and macaque genomes, respectively. Both datasets revealed a bias toward integration within transcriptionally active genes and regions of open chromatin, consistent with previous reports, but no particular preference for genes implicated in hepatocellular carcinoma (HCC) was observed. While numerous common integration sites (CIS) were identified, their distribution differed between species. Notably, a CIS was observed at the AAVS1 locus in human hepatocytes, raising the possibility of Rep-mediated integration. These findings highlight the need for continued monitoring of integration events in clinical settings. Overall, the data support a low oncogenic risk profile for the evaluated vector while reinforcing the value of direct human liver integration analyses to refine risk assessment and guide the development of safer gene therapy platforms.

S. Scott, C. Hallwirth, Natsuki Sasaki et al. · 0 citations