Selection and evaluation of clinically relevant AAV variants in a xenograft liver model

转导(生物物理学) 衣壳 生物 转基因 遗传增强 体内 人性化鼠标 病毒学 基因传递 重组DNA 腺相关病毒 载体(分子生物学) 癌症研究 基因 分子生物学 病毒 遗传学 生物化学
作者
Leszek Lisowski,Allison Dane,Kirk Chu,Yue Zhang,Sharon C. Cunningham,Elizabeth M. Wilson,Sean Nygaard,Markus Grompe,Ian E. Alexander,Mark A. Kay
出处
期刊:Nature [Springer Nature]
卷期号:506 (7488): 382-386 被引量:391
标识
DOI:10.1038/nature12875
摘要

Recombinant adeno-associated viral (rAAV) vectors have shown early promise in clinical trials. The therapeutic transgene cassette can be packaged in different AAV capsid pseudotypes, each having a unique transduction profile. At present, rAAV capsid serotype selection for a specific clinical trial is based on effectiveness in animal models. However, preclinical animal studies are not always predictive of human outcome. Here, in an attempt to further our understanding of these discrepancies, we used a chimaeric human-murine liver model to compare directly the relative efficiency of rAAV transduction in human versus mouse hepatocytes in vivo. As predicted from preclinical and clinical studies, rAAV2 vectors functionally transduced mouse and human hepatocytes at equivalent but relatively low levels. However, rAAV8 vectors, which are very effective in many animal models, transduced human hepatocytes rather poorly-approximately 20 times less efficiently than mouse hepatocytes. In light of the limitations of the rAAV vectors currently used in clinical studies, we used the same murine chimaeric liver model to perform serial selection using a human-specific replication-competent viral library composed of DNA-shuffled AAV capsids. One chimaeric capsid composed of five different parental AAV capsids was found to transduce human primary hepatocytes at high efficiency in vitro and in vivo, and provided species-selected transduction in primary liver, cultured cells and a hepatocellular carcinoma xenograft model. This vector is an ideal clinical candidate and a reagent for gene modification of human xenotransplants in mouse models of human diseases. More importantly, our results suggest that humanized murine models may represent a more precise approach for both selecting and evaluating clinically relevant rAAV serotypes for gene therapeutic applications.
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