A versatile transposon-based technology to generate loss- and gain-of-function phenotypes in the mouse liver

一种基于转座子的多功能技术,可在小鼠肝脏中产生功能丧失和功能获得表型

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作者:Anna Georgina Kopasz #, Dávid Zsolt Pusztai #, Réka Karkas, Liza Hudoba, Khaldoon Sadiq Ahmed Abdullah, Gergely Imre, Gabriella Pankotai-Bodó, Ede Migh, Andrea Nagy, András Kriston, Péter Germán, Andrea Bakné Drubi, Anna Molnár, Ildikó Fekete, Virág Éva Dani, Imre Ocsovszki, László Géza Puskás, Péte

Background

Understanding the contribution of gene function in distinct organ systems to the pathogenesis of human diseases in biomedical research requires modifying gene expression through the generation of gain- and loss-of-function phenotypes in model organisms, for instance, the mouse. However,

Conclusions

We developed a versatile technology platform for in vivo somatic genome editing in the mouse liver, which meets multiple requirements for long-lasting high-level transgene expression. We believe that this technology will contribute to the development of a more accurate new generation of tools for gene function analysis in mice.

Results

We exploit the fumarylacetoacetate hydrolase (Fah) gene correction-induced regeneration in Fah-deficient livers, to demonstrate that such approach stabilizes luciferase expression more than 5000-fold above the level detected in WT animals, following plasmid DNA introduction complemented by transposon-mediated chromosomal gene transfer. Building on this advancement, we created a versatile technology platform for performing gene function analysis in vivo in the mouse liver. Our technology allows the tag-free expression of proteins of interest and silencing of any arbitrary gene in the mouse genome. This was achieved by applying the HADHA/B endogenous bidirectional promoter capable of driving well-balanced bidirectional expression and by optimizing in vivo intronic artificial microRNA-based gene silencing. We demonstrated the particular usefulness of the technology in cancer research by creating a p53-silenced and hRas G12V-overexpressing tumor model. Conclusions: We developed a versatile technology platform for in vivo somatic genome editing in the mouse liver, which meets multiple requirements for long-lasting high-level transgene expression. We believe that this technology will contribute to the development of a more accurate new generation of tools for gene function analysis in mice.

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