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通过限制酶介导整合和核移植生产转基因非洲爪蟾。

Production of transgenic Xenopus laevis by restriction enzyme mediated integration and nuclear transplantation.

作者信息

Amaya Enrique, Kroll Kristen

机构信息

The Healing Foundation Centre, Faculty of Life Sciences, University of Manchester.

出版信息

J Vis Exp. 2010 Aug 21(42):2010. doi: 10.3791/2010.

Abstract

Stable integration of cloned gene products into the Xenopus genome is necessary to control the time and place of expression, to express genes at later stages of embryonic development, and to define how enhancers and promoters regulate gene expression within the embryo. The protocol demonstrated here can be used to efficiently produce transgenic Xenopus laevis embryos. This transgenesis approach involves three parts: 1. Sperm nuclei are isolated from adult X. laevis testis by treatment with lysolecithin, which permeabilizes the sperm plasma membrane. 2. Egg extract is prepared by low speed centrifugation, addition of calcium to cause the extract to progress to interphase of the cell cycle, and a high-speed centrifugation to isolate interphase cytosol. 3. Nuclear transplantation: the nuclei and extract are combined with the linearized plasmid DNA to be introduced as the transgene and a small amount of restriction enzyme. During a short reaction, egg extract partially decondenses the sperm chromatin and the restriction enzyme generates chromosomal breaks that promote recombination of the transgene into the genome. The treated sperm nuclei are then transplanted into unfertilized eggs. Integration of the transgene usually occurs prior to the first embryonic cleavage such that the resulting embryos are not chimeric. These embryos can be analyzed without any need to breed to the next generation, allowing for efficient and rapid generation of transgenic embryos for analyses of promoter and gene function. Adult X. laevis resulting from this procedure also propagate the transgene through the germline and can be used to generate lines of transgenic animals for multiple purposes.

摘要

将克隆的基因产物稳定整合到非洲爪蟾基因组中,对于控制基因表达的时间和位置、在胚胎发育后期表达基因以及确定增强子和启动子如何调节胚胎内的基因表达而言是必要的。此处展示的方案可用于高效生产转基因非洲爪蟾胚胎。这种转基因方法包括三个部分:1. 通过用溶血卵磷脂处理从成年非洲爪蟾睾丸中分离精子细胞核,溶血卵磷脂可使精子质膜通透化。2. 通过低速离心制备卵提取物,添加钙使提取物进入细胞周期的间期,然后进行高速离心以分离间期胞质溶胶。3. 核移植:将细胞核和提取物与作为转基因引入的线性化质粒DNA以及少量限制酶混合。在短时间反应过程中,卵提取物使精子染色质部分解聚,限制酶产生促进转基因重组到基因组中的染色体断裂。然后将处理过的精子细胞核移植到未受精卵中。转基因的整合通常发生在第一次胚胎分裂之前,使得产生的胚胎不是嵌合体。这些胚胎无需培育到下一代即可进行分析,从而能够高效快速地产生用于启动子和基因功能分析的转基因胚胎。通过该程序产生的成年非洲爪蟾也可通过种系传播转基因,可用于产生多种用途的转基因动物品系。

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