CRISPR/Cas9-based genome engineering of zebrafish using a seamless integration strategy

被引:23
|
作者
Luo, Juan-Juan [1 ,2 ]
Bian, Wan-Ping [2 ]
Liu, Yi [2 ,3 ]
Huang, Hai-Yang [2 ]
Yin, Qian [2 ]
Yang, Xiao-Jun [1 ]
Pei, De-Sheng [2 ]
机构
[1] Shantou Univ, Ctr Neurosci, Coll Med, 22 Xinling Rd, Shantou 515041, Peoples R China
[2] Chinese Acad Sci, Chongqing Inst Green & Intelligent Technol, Chongqing 400714, Peoples R China
[3] Univ Chinese Acad Sci, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
gene editing; MMEJ; transgenesis; knock-in; ZINC-FINGER NUCLEASES; MEDIATED TARGETED INTEGRATION; TRANSGENIC ZEBRAFISH; HOMOLOGOUS RECOMBINATION; KNOCK-IN; SYSTEM; CLEAVAGE; REPAIR; GENES; TALEN;
D O I
10.1096/fj.201800077RR
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
Numerous feasible methods for inserting large fragments of exogenous DNA sequences into the zebrafish genome have been developed, as has genome editing technology using programmable nucleases. However, the coding sequences of targeted endogenous genes are disrupted, and the expression patterns of inserted exogenous genes cannot completely recapitulate those of endogenous genes. Here we describe the establishment of a novel strategy for endogenous promoter-driven and microhomology-mediated end-joining-dependent integration of a donor vector using clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated (Cas) 9. We successfully integrated mCherry into the final coding sequence of targeted genes to generate seamless transgenic zebrafish lines with high efficiency. This novel seamless transgenesis technique not only maintained the integrity of the endogenous gene but also did not disrupt the function of targeted gene. Therefore, our microhomology-mediated end-joining-mediated transgenesis strategy may have broader applications in gene therapy. Moreover, this novel seamless gene-editing strategy in zebrafish provides a valuable new transgenesis technique, which was driven by endogenous promoters and in vivo animal reporter modes for translational medicine. It is expected to be a standard gene-editing technique in the field of zebrafish, leading to some important breakthroughs for studies in early embryogenesis.Luo, J.-J., Bian, W.-P., Liu, Y., Huang, H.-Y., Yin, Q., Yang, X.-J., Pei, D.-S. CRISPR/Cas9-based genome engineering of zebrafish using a seamless integration strategy.
引用
收藏
页码:5132 / 5142
页数:11
相关论文
共 50 条
  • [41] Cas9-Based Genome Editing in Arabidopsis and Tobacco
    Li, Jian-Feng
    Zhang, Dandan
    Sheen, Jen
    USE OF CRISPR/CAS9, ZFNS, AND TALENS IN GENERATING SITE-SPECIFIC GENOME ALTERATIONS, 2014, 546 : 459 - 472
  • [42] Highly parallel genome variant engineering with CRISPR-Cas9
    Sadhu, Meru J.
    Bloom, Joshua S.
    Day, Laura
    Siegel, Jake J.
    Kosuri, Sriram
    Kruglyak, Leonid
    NATURE GENETICS, 2018, 50 (04) : 510 - +
  • [43] CRISPR/Cas9 for Human Genome Engineering and Disease Research
    Xiong, Xin
    Chen, Meng
    Lim, Wendell A.
    Zhao, Dehua
    Qi, Lei S.
    ANNUAL REVIEW OF GENOMICS AND HUMAN GENETICS, VOL 17, 2016, 17 : 131 - 154
  • [44] Genome engineering via TALENs and CRISPR/Cas9 systems: challenges and perspectives
    Mahfouz, Magdy M.
    Piatek, Agnieszka
    Stewart, Charles Neal, Jr.
    PLANT BIOTECHNOLOGY JOURNAL, 2014, 12 (08) : 1006 - 1014
  • [45] CRISPR/Cas9-based genome editing: A revolutionary approach for crop improvement and global food security
    Muha-Ud-Din, Ghulam
    Ali, Faizan
    Hameed, Akhtar
    Naqvi, Syed Atif Hasan
    Nizamani, Mir Muhammad
    Jabran, Muhammad
    Sarfraz, Sohaib
    Yong, Wang
    PHYSIOLOGICAL AND MOLECULAR PLANT PATHOLOGY, 2024, 129
  • [46] CRISPR/Cas9-based genome engineering in the filamentous fungus Rhizopus oryzae and its application to L-lactic acid production
    Zhu, Haodong
    Wang, Han
    Wang, Li
    Zheng, Zhiming
    BIOTECHNOLOGY JOURNAL, 2024, 19 (09)
  • [47] Efficient Genome Engineering of Toxoplasma gondii Using CRISPR/Cas9
    Sidik, Saima M.
    Hackett, Caroline G.
    Tran, Fanny
    Westwood, Nicholas J.
    Lourido, Sebastian
    PLOS ONE, 2014, 9 (06):
  • [48] Genome Engineering of Virulent Lactococcal Phages Using CRISPR-Cas9
    Lemay, Marie-Laurence
    Tremblay, Denise M.
    Moineau, Sylvain
    ACS SYNTHETIC BIOLOGY, 2017, 6 (07): : 1351 - 1358
  • [49] CRISPR/Cas9-Based Genome Editing in the Filamentous Fungus Fusarium fujikuroi and Its Application in Strain Engineering for Gibberellic Acid Production
    Shi, Tian-Qiong
    Gao, Jian
    Wang, Wei-Jian
    Wang, Kai-Feng
    Xu, Guo-Qin
    Huang, He
    Ji, Xiao-Jun
    ACS SYNTHETIC BIOLOGY, 2019, 8 (02): : 445 - 454
  • [50] Guide RNA modification as a way to improve CRISPR/Cas9-based genome-editing systems
    Filippova, Julia
    Matveeva, Anastasiya
    Zhuravlev, Evgenii
    Stepanov, Grigory
    BIOCHIMIE, 2019, 167 : 49 - 60