Evaluation and application of modularly assembled zinc-finger nucleases in zebrafish

Author:

Zhu Cong1,Smith Tom1,McNulty Joseph1,Rayla Amy L.1,Lakshmanan Abirami1,Siekmann Arndt F.1,Buffardi Matthew1,Meng Xiangdong1,Shin Jimann2,Padmanabhan Arun3,Cifuentes Daniel4,Giraldez Antonio J.4,Look A. Thomas2,Epstein Jonathan A.3,Lawson Nathan D.1,Wolfe Scot A.15

Affiliation:

1. Program in Gene Function and Expression, University of Massachusetts Medical School, Worcester, MA 01605, USA.

2. Department of Pediatric Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, MA 02115, USA.

3. Department of Cell and Developmental Biology, Perelman School of Medicine at the University of Pennsylvania, Philadelphia, PA 19104-6058, USA.

4. Department of Genetics, Yale University School of Medicine, New Haven, CT 06510, USA.

5. Department of Biochemistry and Molecular Pharmacology, University of Massachusetts Medical School, Worcester, MA 01605, USA.

Abstract

Zinc-finger nucleases (ZFNs) allow targeted gene inactivation in a wide range of model organisms. However, construction of target-specific ZFNs is technically challenging. Here, we evaluate a straightforward modular assembly-based approach for ZFN construction and gene inactivation in zebrafish. From an archive of 27 different zinc-finger modules, we assembled more than 70 different zinc-finger cassettes and evaluated their specificity using a bacterial one-hybrid assay. In parallel, we constructed ZFNs from these cassettes and tested their ability to induce lesions in zebrafish embryos. We found that the majority of zinc-finger proteins assembled from these modules have favorable specificities and nearly one-third of modular ZFNs generated lesions at their targets in the zebrafish genome. To facilitate the application of ZFNs within the zebrafish community we constructed a public database of sites in the zebrafish genome that can be targeted using this archive. Importantly, we generated new germline mutations in eight different genes, confirming that this is a viable platform for heritable gene inactivation in vertebrates. Characterization of one of these mutants, gata2a, revealed an unexpected role for this transcription factor in vascular development. This work provides a resource to allow targeted germline gene inactivation in zebrafish and highlights the benefit of a definitive reverse genetic strategy to reveal gene function.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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