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1
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Sci Bull (Beijing). 2017 Feb 15;62(3):197-203. doi: 10.1016/j.scib.2017.01.007. Epub 2017 Jan 10.
2
Loss of stat3 function leads to spine malformation and immune disorder in zebrafish.Stat3功能丧失导致斑马鱼脊柱畸形和免疫紊乱。
Sci Bull (Beijing). 2017 Feb 15;62(3):185-196. doi: 10.1016/j.scib.2017.01.008. Epub 2017 Jan 10.
3
A novel PDZ domain-containing gene is essential for male sex differentiation and maintenance in yellow catfish (Pelteobagrus fulvidraco).一个新的含PDZ结构域的基因对黄颡鱼(Pelteobagrus fulvidraco)的雄性性别分化和维持至关重要。
Sci Bull (Beijing). 2018 Nov 15;63(21):1420-1430. doi: 10.1016/j.scib.2018.08.012. Epub 2018 Aug 31.
4
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Gen Comp Endocrinol. 2020 Sep 1;295:113490. doi: 10.1016/j.ygcen.2020.113490. Epub 2020 Apr 10.
5
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Endocrinology. 2020 Jun 1;161(6). doi: 10.1210/endocr/bqaa048.
6
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Science. 2020 Apr 17;368(6488):290-296. doi: 10.1126/science.aba8853. Epub 2020 Mar 26.
7
Genome Editing in Zebrafish Using High-Fidelity Cas9 Nucleases: Choosing the Right Nuclease for the Task.利用高保真 Cas9 核酸酶在斑马鱼中进行基因组编辑:选择合适的核酸酶用于该任务。
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10
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基因组编辑技术在鱼类中的应用。

The application of genome editing technology in fish.

作者信息

Lu Jianguo, Fang Wenyu, Huang Junrou, Li Shizhu

机构信息

School of Marine Sciences, Sun Yat-Sen University, Zhuhai, 519082 China.

Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Zhuhai, 519080 China.

出版信息

Mar Life Sci Technol. 2021 May 27;3(3):326-346. doi: 10.1007/s42995-021-00091-1. eCollection 2021 Aug.

DOI:10.1007/s42995-021-00091-1
PMID:37073287
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10077250/
Abstract

The advent and development of genome editing technology has opened up the possibility of directly targeting and modifying genomic sequences in the field of life sciences with rapid developments occurring in the last decade. As a powerful tool to decipher genome data at the molecular biology level, genome editing technology has made important contributions to elucidating many biological problems. Currently, the three most widely used genome editing technologies include: zinc finger nucleases (ZFN), transcription activator like effector nucleases (TALEN), and clustered regularly interspaced short palindromic repeats (CRISPR). Researchers are still striving to create simpler, more efficient, and accurate techniques, such as engineered base editors and new CRISPR/Cas systems, to improve editing efficiency and reduce off-target rate, as well as a near-PAMless SpCas9 variants to expand the scope of genome editing. As one of the important animal protein sources, fish has significant economic value in aquaculture. In addition, fish is indispensable for research as it serves as the evolutionary link between invertebrates and higher vertebrates. Consequently, genome editing technologies were applied extensively in various fish species for basic functional studies as well as applied research in aquaculture. In this review, we focus on the application of genome editing technologies in fish species detailing growth, gender, and pigmentation traits. In addition, we have focused on the construction of a zebrafish () disease model and high-throughput screening of functional genes. Finally, we provide some of the future perspectives of this technology.

摘要

在过去十年中,随着基因组编辑技术的出现和发展,生命科学领域直接靶向和修饰基因组序列成为可能。作为在分子生物学水平上解析基因组数据的强大工具,基因组编辑技术为阐明许多生物学问题做出了重要贡献。目前,三种应用最广泛的基因组编辑技术包括:锌指核酸酶(ZFN)、转录激活因子样效应物核酸酶(TALEN)和成簇规律间隔短回文重复序列(CRISPR)。研究人员仍在努力创造更简单、更高效、更准确的技术,如工程化碱基编辑器和新型CRISPR/Cas系统,以提高编辑效率并降低脱靶率,以及近乎无PAM的SpCas9变体以扩大基因组编辑范围。鱼类作为重要的动物蛋白来源之一,在水产养殖中具有重要的经济价值。此外,鱼类作为无脊椎动物和高等脊椎动物之间的进化纽带,在研究中不可或缺。因此,基因组编辑技术被广泛应用于各种鱼类的基础功能研究以及水产养殖应用研究。在这篇综述中,我们重点关注基因组编辑技术在鱼类中的应用,详细介绍生长、性别和色素沉着性状。此外,我们还关注斑马鱼疾病模型的构建和功能基因的高通量筛选。最后,我们提供了这项技术的一些未来展望。