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切换与追踪:斑马鱼中的重组酶遗传学。

Switch and Trace: Recombinase Genetics in Zebrafish.

机构信息

Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore; Institute of Molecular and Cell Biology (IMCB), Agency for Science, Technology, and Research (A*STAR), Singapore.

Institute of Molecular Life Sciences, University of Zürich, Zürich, Switzerland.

出版信息

Trends Genet. 2018 May;34(5):362-378. doi: 10.1016/j.tig.2018.01.004. Epub 2018 Feb 8.

Abstract

Transgenic approaches are instrumental for labeling and manipulating cells and cellular machineries in vivo. Transgenes have traditionally been static entities that remained unaltered following genome integration, limiting their versatility. The development of DNA recombinase-based methods to modify, excise, or rearrange transgene cassettes has introduced versatile control of transgene activity and function. In particular, recombinase-controlled transgenes enable regulation of exogenous gene expression, conditional mutagenesis, and genetic lineage tracing. In zebrafish, transgenesis-based recombinase genetics using Cre/lox, Flp/FRT, and ΦC31 are increasingly applied to study development and homeostasis, and to generate disease models. Intersected with the versatile imaging capacity of the zebrafish model and recent breakthroughs in genome editing, we review and discuss past, current, and potential future approaches and resources for recombinase-based techniques in zebrafish.

摘要

转基因方法是标记和操作体内细胞和细胞机器的重要手段。传统上,转基因是一种静态实体,在基因组整合后保持不变,限制了其多功能性。基于 DNA 重组酶的方法的发展,用于修饰、切除或重排转基因盒,为转基因活性和功能的多功能控制引入了新的方法。特别是,重组酶控制的转基因能够调节外源基因表达、条件突变和遗传谱系追踪。在斑马鱼中,使用 Cre/lox、Flp/FRT 和 ΦC31 的基于转基因的重组酶遗传学越来越多地被应用于研究发育和动态平衡,并生成疾病模型。与斑马鱼模型的多功能成像能力以及基因组编辑的最新突破相结合,我们回顾和讨论了过去、现在和潜在的未来的基于重组酶的技术在斑马鱼中的方法和资源。

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