Zinc-finger nuclease-driven targeted integration into mammalian genomes using donors with limited chromosomal homology

被引:141
作者
Orlando, Salvatore J. [1 ]
Santiago, Yolanda [1 ]
DeKelver, Russell C. [1 ]
Freyvert, Yevgeniy [1 ]
Boydston, Elizabeth A. [1 ]
Moehle, Erica A. [1 ]
Choi, Vivian M. [1 ]
Gopalan, Sunita M. [1 ]
Lou, Jacqueline F. [1 ]
Li, James [1 ]
Miller, Jeffrey C. [1 ]
Holmes, Michael C. [1 ]
Gregory, Philip D. [1 ]
Urnov, Fyodor D. [1 ]
Cost, Gregory J. [1 ]
机构
[1] Sangamo BioSci, Richmond, CA 94804 USA
关键词
DOUBLE-STRAND-BREAK; RESTRICTION ENZYMES; BROKEN CHROMOSOMES; DNA-RECOGNITION; GENE; REPAIR; RECOMBINATION; CELLS; FREQUENCY; CLEAVAGE;
D O I
10.1093/nar/gkq512
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
We previously demonstrated high-frequency, targeted DNA addition mediated by the homology-directed DNA repair pathway. This method uses a zinc-finger nuclease (ZFN) to create a site-specific double-strand break (DSB) that facilitates copying of genetic information into the chromosome from an exogenous donor molecule. Such donors typically contain two similar to 750 bp regions of chromosomal sequence required for homology-directed DNA repair. Here, we demonstrate that easily-generated linear donors with extremely short (50 bp) homology regions drive transgene integration into 5-10% of chromosomes. Moreover, we measure the overhangs produced by ZFN cleavage and find that oligonucleotide donors with single-stranded 5' overhangs complementary to those made by ZFNs are efficiently ligated in vivo to the DSB. Greater than 10% of all chromosomes directly incorporate this exogenous DNA via a process that is dependent upon and guided by complementary 5' overhangs on the donor DNA. Finally, we extend this non-homologous end-joining (NHEJ)-based technique by directly inserting donor DNA comprising recombinase sites into large deletions created by the simultaneous action of two separate ZFN pairs. Up to 50% of deletions contained a donor insertion. Targeted DNA addition via NHEJ complements our homology-directed targeted integration approaches, adding versatility to the manipulation of mammalian genomes.
引用
收藏
页码:e152 / e152
页数:15
相关论文
共 52 条
[1]   END EXTENSION REPAIR OF INTRODUCED TARGETING VECTORS MEDIATED BY HOMOLOGOUS RECOMBINATION IN MAMMALIAN-CELLS [J].
ARATANI, Y ;
OKAZAKI, R ;
KOYAMA, H .
NUCLEIC ACIDS RESEARCH, 1992, 20 (18) :4795-4801
[2]   A SIMPLE AND EFFICIENT METHOD FOR DIRECT GENE DELETION IN SACCHAROMYCES-CEREVISIAE [J].
BAUDIN, A ;
OZIERKALOGEROPOULOS, O ;
DENOUEL, A ;
LACROUTE, F ;
CULLIN, C .
NUCLEIC ACIDS RESEARCH, 1993, 21 (14) :3329-3330
[3]  
Bibikova M, 2002, GENETICS, V161, P1169
[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]   BAK and BAX Deletion Using Zinc-Finger Nucleases Yields Apoptosis-Resistant CHO Cells [J].
Cost, Gregory J. ;
Freyvert, Yevgeniy ;
Vafiadis, Annamaria ;
Santiago, Yolanda ;
Miller, Jeffrey C. ;
Rebar, Edward ;
Collingwood, Trevor N. ;
Snowden, Andrew ;
Gregory, Philip D. .
BIOTECHNOLOGY AND BIOENGINEERING, 2010, 105 (02) :330-340
[6]   Functional genomics, proteomics, and regulatory DNA analysis in isogenic settings using zinc finger nuclease-driven transgenesis into a safe harbor locus in the human genome [J].
DeKelver, Russell C. ;
Choi, Vivian M. ;
Moehle, Erica A. ;
Paschon, David E. ;
Hockemeyer, Dirk ;
Meijsing, Sebastiaan H. ;
Sancak, Yasemin ;
Cui, Xiaoxia ;
Steine, Eve Line J. ;
Miller, Jeffrey C. ;
Tam, Phillip ;
Bartsevich, Victor V. ;
Meng, Xiangdong ;
Rupniewski, Igor ;
Gopalan, Sunita M. ;
Sun, Helena C. ;
Pitz, Kathleen J. ;
Rock, Jeremy M. ;
Zhang, Lei ;
Davis, Gregory D. ;
Rebar, Edward J. ;
Cheeseman, Iain M. ;
Yamamoto, Keith R. ;
Sabatini, David M. ;
Jaenisch, Rudolf ;
Gregory, Philip D. ;
Urnov, Fyodor D. .
GENOME RESEARCH, 2010, 20 (08) :1133-1142
[7]   REEXAMINATION OF GENE TARGETING FREQUENCY AS A FUNCTION OF THE EXTENT OF HOMOLOGY BETWEEN THE TARGETING VECTOR AND THE TARGET LOCUS [J].
DENG, CX ;
CAPECCHI, MR .
MOLECULAR AND CELLULAR BIOLOGY, 1992, 12 (08) :3365-3371
[8]   Phosphorothioate oligodeoxynucleotides: What is their origin and what is unique about them? [J].
Eckstein, F .
ANTISENSE & NUCLEIC ACID DRUG DEVELOPMENT, 2000, 10 (02) :117-121
[9]  
FENG X, NUCL ACIDS RES, V38, P1204
[10]   Directed evolution of recombinase specificity by split gene reassembly [J].
Gersbach, Charles A. ;
Gaj, Thomas ;
Gordley, Russell M. ;
Barbas, Carlos F., III .
NUCLEIC ACIDS RESEARCH, 2010, 38 (12) :4198-4206