Targeted gene addition into a specified location in the human genome using designed zinc finger nucleases

被引:268
作者
Moehle, E. A. [1 ]
Rock, J. M. [1 ]
Lee, Y. L. [1 ]
Jouvenot, Y. [1 ]
DeKelver, R. C. [1 ]
Gregory, P. D. [1 ]
Urnov, F. D. [1 ]
Holmes, M. C. [1 ]
机构
[1] Sangamo BioSci Inc, Point Richmond Technol Ctr, Richmond, CA 94804 USA
关键词
gene therapy; protein production; somatic cell genetics;
D O I
10.1073/pnas.0611478104
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Efficient incorporation of novel DNA sequences into a specific site in the genome of living human cells remains a challenge despite its potential utility to genetic medicine, biotechnology, and basic research. We find that a precisely placed double-strand break induced by engineered zinc finger nucleases (ZFNs) can stimulate integration of long DNA stretches into a predetermined genomic location, resulting in high-efficiency site-specific gene addition. Using an extrachromosomal DNA donor carrying a 12-bp tag, a 900-bp ORF, or a 1.5-kb promoter-transcription unit flanked by locus-specific homology arms, we find targeted integration frequencies of 15%, 6%, and 5%, respectively, within 72 h of treatment, and with no selection for the desired event. Importantly, we find that the integration event occurs in a homology-directed manner and leads to the accurate reconstruction of the donorspecified genotype at the endogenous chromosomal locus, and hence presumably results from synthesis-dependent strand annealing repair of the break using the donor DNA as a template. This site-specific gene addition occurs with no measurable increase in the rate of random integration. Remarkably, we also find that ZFNs can drive the addition of an 8-kb sequence carrying three distinct promote r-transcription units into an endogenous locus at a frequency of 6%, also in the absence of any selection. These data reveal the surprising versatility of the specialized polymerase machinery involved in double-strand break repair, illuminate a powerful approach to mammalian cell engineering, and open the possibility of ZFN-driven gene addition therapy for human genetic disease.
引用
收藏
页码:3055 / 3060
页数:6
相关论文
共 44 条
[1]   Stimulation of homologous recombination through targeted cleavage by chimeric nucleases [J].
Bibikova, M ;
Carroll, D ;
Segal, DJ ;
Trautman, JK ;
Smith, J ;
Kim, YG ;
Chandrasegaran, S .
MOLECULAR AND CELLULAR BIOLOGY, 2001, 21 (01) :289-297
[2]   Enhancing gene targeting with designed zinc finger nucleases [J].
Bibikova, M ;
Beumer, K ;
Trautman, JK ;
Carroll, D .
SCIENCE, 2003, 300 (5620) :764-764
[3]   Bypass of senescence after disruption of p21(CIP1/WAF1) gene in normal diploid human fibroblasts [J].
Brown, JP ;
Wei, WY ;
Sedivy, JM .
SCIENCE, 1997, 277 (5327) :831-834
[4]   IN-VIVO REPRESSION BY A SITE-SPECIFIC DNA-BINDING PROTEIN DESIGNED AGAINST AN ONCOGENIC SEQUENCE [J].
CHOO, Y ;
SANCHEZGARCIA, I ;
KLUG, A .
NATURE, 1994, 372 (6507) :642-645
[5]   A means to a DNA end: The many roles of Ku [J].
Downs, JA ;
Jackson, SP .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2004, 5 (05) :367-378
[6]   Gene conversion tracts from double-strand break repair in mammalian cells [J].
Elliott, B ;
Richardson, C ;
Winderbaum, J ;
Nickoloff, JA ;
Jasin, M .
MOLECULAR AND CELLULAR BIOLOGY, 1998, 18 (01) :93-101
[7]   Site-Specific Integration with φC31 Integrase for Prolonged Expression of Therapeutic Genes [J].
Ginsburg, Daniel S. ;
Calos, Michele P. .
NON-VIRAL VECTORS FOR GENE THERAPY, SECOND EDITION: PART 2, 2005, 54 :179-187
[8]   Gene targeting with viral vectors [J].
Hendrie, PC ;
Russell, DW .
MOLECULAR THERAPY, 2005, 12 (01) :9-17
[9]  
HERSKOWITZ I, 1992, MOL CELLULAR BIOL YE, V2, P583
[10]   Gene therapy - The moving finger [J].
High, KA .
NATURE, 2005, 435 (7042) :577-+