期刊文献+

基因组编辑:植物生物技术的机遇与挑战 被引量:11

Genome Editing :the Opportunities and Challenges for Plant Biotechnology
在线阅读 下载PDF
导出
摘要 基于序列特异性核酸酶的基因组编辑技术可以在不同物种中对目标基因进行定点敲除,并可实现特定基因片段置换,基因的定点插入等基因组靶向修饰。基因组编辑是一种精准和高效的基因工程方法,近年来快速发展并得到了广泛的应用,并将改变生物技术的现状。目前,基因组编辑在不同植物,特别是农作物中的技术体系已建立,初步展示了其在植物生物技术领域的巨大潜力。介绍了不同基因组编辑系统的工作原理,并对基因组编辑技术在植物研究中的应用及成功案例进行了综述,最后对基因组编辑在植物生物技术领域所面临的机遇与挑战进行了讨论。 Genome editing based on sequence-specific nucleases could introduce targeted genome modifications, such as site-directed gene disruption, gene replacement or insertion in various species. As a preciseand efficient tool for genome engineering, genome editing has been extensively studied and widely applied during pastseveral years, and it would eventually change the current status of biotechnology. Genome editing system has now been established in plants, especially crops and already displayed its great potential in the field of plant biotechnology. In this review, we first briefly explain the working principles of different genome editing systems, and then list some examples of different applications of genome editing in plant research and breeding. Finally, we discuss the opportunities and challenges brought by genome editing to plant biotechnology.
出处 《生物技术通报》 CAS CSCD 北大核心 2015年第4期25-33,共9页 Biotechnology Bulletin
基金 中国科学院重要方向性项目(KSCX2-EW-N-06) 中国科学院战略性先导科技专项(XDB11030500)
关键词 序列特异性核酸酶 基因组编辑 植物基因工程 sequence-specific nuclease genome editing plant genome engineering
  • 相关文献

参考文献3

二级参考文献11

  • 1Carroll, D. (2011). Genome engineering with zinc-finger nucleases. Genetics. 188, 773-782.
  • 2Congo L., Ran, F.A.. Cox. D., Lin, S., Barretto, R., Habib, N., Hsu, P.O., Wu, X., Jiang, W., Marraffini, L.A., et al. (2013). Multiplex genome engineering using CRISPRlCas systems. Science 339, 819-823.
  • 3Gaj, T., Gersbach, C.A., and Barbas, C.F., III (2013). ZFN, TALEN, and CRISPRlCas-based methods for genome engineering. Trends Biotechno/. 31, 397-405.
  • 4Huang, V.S., and u, H.M. (2009). Arabidopsis CHLl2 can substitute for CHLl1. Plant Physio/. 150, 636-645.
  • 5Jinek. M . Chylinski. K . Fonfara. I.. Hauer. M . Doudna. J.A . and Charpentier. E. (2012). A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity. Science. 337. 816-821.
  • 6Li, T . Liu. B . Spalding. M.H . Weeks. D.P.. and Yang. B. (2012). High-efficiency TALEN-based gene editing produces diseaseresistant rice. Nat. Biotechnol. 30. 390-392.
  • 7Mahfouz. M.M . Li, L.. Shamimuzzaman. M . Wibowo. A . Fang. X . and Zhu. J.K. (2011). De novo-engineered transcription activator-like effector (TALE) hybrid nuclease with novel DNA binding specificity creates double-strand breaks. Proc. Natl Acad. Sci. USA. 108,2623-2628.
  • 8Symington, L.S . and Gautier, J. (2011). Double-strand break end resection and repair pathway choice. Annu. Rev. Genet. 4S, 247-271.
  • 9Zhang, Y., Zhang, F., u, X., Baller, J.A., Qi. Y., Starker, c.e . Bogdanove, AJ., and Voytas, D.F. (2013). Transcription activator-like effector nucleases enable efficient plant genome engineering. Plant Physiol161, 20-27.
  • 10Jiyong Liu,Changqing Li,Zhongsheng Yu,Peng Huang,Honggang Wu,Chuanxian Wei,Nannan Zhu,Yan Shen,Yixu Chen,Bo Zhang,Wu-Min Deng,Renjie Jiao.Efficient and Specific Modifications of the Drosophila Genome by Means of an Easy TALEN Strategy[J].Journal of Genetics and Genomics,2012,39(5):209-215. 被引量:45

共引文献262

同被引文献104

引证文献11

二级引证文献84

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部