Targeted mutagenesis in zebrafish using customized zinc-finger nucleases

被引:0
|
作者
Jonathan E Foley
Morgan L Maeder
Joseph Pearlberg
J Keith Joung
Randall T Peterson
Jing-Ruey J Yeh
机构
[1] Molecular Pathology Unit and Center for Cancer Research,Department of Biological Chemistry and Molecular Pharmacology
[2] Massachusetts General Hospital,Department of Pathology
[3] Center for Computational and Integrative Biology,Department of Medicine
[4] Massachusetts General Hospital,undefined
[5] Biological and Biomedical Sciences Program,undefined
[6] Harvard Medical School,undefined
[7] Harvard Medical School,undefined
[8] Harvard Medical School,undefined
[9] Cardiovascular Research Center,undefined
[10] Massachusetts General Hospital,undefined
[11] Harvard Medical School,undefined
[12] Broad Institute of MIT and Harvard,undefined
来源
Nature Protocols | 2009年 / 4卷
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摘要
Zebrafish mutants have traditionally been obtained by using random mutagenesis or retroviral insertions, methods that cannot be targeted to a specific gene and require laborious gene mapping and sequencing. Recently, we and others have shown that customized zinc-finger nucleases (ZFNs) can introduce targeted frame-shift mutations with high efficiency, thereby enabling directed creation of zebrafish gene mutations. Here we describe a detailed protocol for constructing ZFN expression vectors, for generating and introducing ZFN-encoding RNAs into zebrafish embryos and for identifying ZFN-generated mutations in targeted genomic sites. All of our vectors and methods are compatible with previously described Zinc-Finger Consortium reagents for constructing engineered zinc-finger arrays. Using these methods, zebrafish founders carrying targeted mutations can be identified within 4 months.
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页码:1855 / 1868
页数:13
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