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Transgenesis procedures in Xenopus.非洲爪蟾的转基因方法。
Biol Cell. 2008 Sep;100(9):503-21. doi: 10.1042/BC20070148.
2
A gene trap approach in Xenopus.非洲爪蟾中的基因捕获方法。
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3
Site-specific transgenesis in Xenopus.非洲爪蟾中的位点特异性转基因
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Injection-mediated transposon transgenesis in Xenopus tropicalis and the identification of integration sites by modified extension primer tag selection (EPTS) linker-mediated PCR.注射介导的热带爪蟾转座子转基因及通过改良的延伸引物标签选择(EPTS)接头介导的PCR鉴定整合位点。
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本文引用的文献

1
PRODUCTION OF TRIPLOID AND GYNOGENETIC DIPLOID XENOPUS BY COLD TREATMENT.通过冷处理生产三倍体和雌核发育二倍体非洲爪蟾
Dev Growth Differ. 1978;20(3):227-236. doi: 10.1111/j.1440-169X.1978.00227.x.
2
Metal ion-responsive transgenic Xenopus laevis as an environmental monitoring animal.金属离子响应型转基因非洲爪蟾作为环境监测动物。
Environ Toxicol Pharmacol. 2003 Apr;13(3):153-9. doi: 10.1016/S1382-6689(03)00003-6.
3
Xenbase: a Xenopus biology and genomics resource.非洲爪蟾数据库:一个非洲爪蟾生物学与基因组学资源库。
Nucleic Acids Res. 2008 Jan;36(Database issue):D761-7. doi: 10.1093/nar/gkm826. Epub 2007 Nov 4.
4
Targeted cell-ablation in Xenopus embryos using the conditional, toxic viral protein M2(H37A).使用条件性毒性病毒蛋白M2(H37A)对非洲爪蟾胚胎进行靶向细胞消融。
Dev Dyn. 2007 Aug;236(8):2159-71. doi: 10.1002/dvdy.21233.
5
High-throughput transgenesis in Xenopus using I-SceI meganuclease.利用I-SceI巨核酸酶在非洲爪蟾中进行高通量转基因
Nat Protoc. 2006;1(4):1703-10. doi: 10.1038/nprot.2006.208.
6
Xenopus laevis transgenesis by sperm nuclear injection.通过精子核注射进行非洲爪蟾转基因
Nat Protoc. 2006;1(5):2195-203. doi: 10.1038/nprot.2006.325.
7
Using phiC31 integrase to make transgenic Xenopus laevis embryos.使用φC31整合酶制作转基因非洲爪蟾胚胎。
Nat Protoc. 2006;1(3):1248-57. doi: 10.1038/nprot.2006.183.
8
Localization of the single copy gene Mdh2 on Xenopus tropicalis chromosomes by FISH-TSA.通过荧光原位杂交-酪酰胺信号放大法将单拷贝基因Mdh2定位到热带爪蟾染色体上。
Cytogenet Genome Res. 2007;116(1-2):110-2. doi: 10.1159/000097427.
9
tBid mediated activation of the mitochondrial death pathway leads to genetic ablation of the lens in Xenopus laevis.tBid介导的线粒体死亡途径激活导致非洲爪蟾晶状体的基因缺失。
Genesis. 2007 Jan;45(1):1-10. doi: 10.1002/dvg.20252.
10
Generation of trangenic Xenopus laevis using the Sleeping Beauty transposon system.利用睡美人转座子系统生成转基因非洲爪蟾。
Transgenic Res. 2006 Dec;15(6):751-60. doi: 10.1007/s11248-006-9014-6. Epub 2006 Sep 7.

非洲爪蟾的转基因方法。

Transgenesis procedures in Xenopus.

作者信息

Chesneau Albert, Sachs Laurent M, Chai Norin, Chen Yonglong, Du Pasquier Louis, Loeber Jana, Pollet Nicolas, Reilly Michael, Weeks Daniel L, Bronchain Odile J

机构信息

Laboratoire Evolution et Développement, Université Paris Sud, F-91405 Orsay cedex, France.

出版信息

Biol Cell. 2008 Sep;100(9):503-21. doi: 10.1042/BC20070148.

DOI:10.1042/BC20070148
PMID:18699776
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2967756/
Abstract

Stable integration of foreign DNA into the frog genome has been the purpose of several studies aimed at generating transgenic animals or producing mutations of endogenous genes. Inserting DNA into a host genome can be achieved in a number of ways. In Xenopus, different strategies have been developed which exhibit specific molecular and technical features. Although several of these technologies were also applied in various model organizms, the attributes of each method have rarely been experimentally compared. Investigators are thus confronted with a difficult choice to discriminate which method would be best suited for their applications. To gain better understanding, a transgenesis workshop was organized by the X-omics consortium. Three procedures were assessed side-by-side, and the results obtained are used to illustrate this review. In addition, a number of reagents and tools have been set up for the purpose of gene expression and functional gene analyses. This not only improves the status of Xenopus as a powerful model for developmental studies, but also renders it suitable for sophisticated genetic approaches. Twenty years after the first reported transgenic Xenopus, we review the state of the art of transgenic research, focusing on the new perspectives in performing genetic studies in this species.

摘要

将外源DNA稳定整合到青蛙基因组中一直是多项旨在培育转基因动物或产生内源基因突变的研究目标。将DNA插入宿主基因组可通过多种方式实现。在非洲爪蟾中,已开发出不同策略,这些策略具有特定的分子和技术特征。尽管其中一些技术也应用于各种模式生物,但每种方法的特性很少经过实验比较。因此,研究人员面临着艰难的选择,难以辨别哪种方法最适合他们的应用。为了更好地理解,X-组学联盟组织了一次转基因技术研讨会。对三种方法进行了并行评估,所得结果用于阐述本综述。此外,还建立了许多用于基因表达和功能基因分析的试剂和工具。这不仅提升了非洲爪蟾作为发育研究强大模型的地位,还使其适用于复杂的遗传方法。在首次报道转基因非洲爪蟾二十年后,我们回顾转基因研究的现状,重点关注在该物种中进行遗传研究的新视角。