利用重组技术操纵小鼠基因组。

Advancements in genetic engineering Pub Date : 2013-01-01 Epub Date: 2013-06-27 DOI:10.4172/2169-0111.1000108
Kajal Biswas, Shyam K Sharan
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引用次数: 0

摘要

基因工程小鼠模型对于理解基因的生物学功能,理解人类疾病的遗传基础以及新疗法的临床前测试是必不可少的。由于我们有能力操纵小鼠基因组,这种小鼠模型的产生已经成为可能。重组是一种高效的基于重组的基因工程方法,它彻底改变了我们产生小鼠模型的能力。由于重组技术不依赖于限制性内切酶识别位点的可用性,它使我们能够非常精确地修改基因组。它需要短至40个碱基的同源臂进行重组,这使得生成插入、改变或删除单个核苷酸或几kb大小的DNA片段的靶向结构相对容易;插入可选择的标记,报告基因或添加表位标签到任何感兴趣的基因。在本文中,我们重点介绍了重组技术的发展及其在转基因和敲除或敲入小鼠模型中的应用。由于这项技术,高通量生成基因靶向载体,用于构建小鼠胚胎干细胞中的敲除等位基因,现在是可行的。现在的挑战是利用“设计”老鼠来开发新的疗法,以预防、治愈或有效地控制一些最使人衰弱的人类疾病。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Manipulating the Mouse Genome Using Recombineering.

Genetically engineered mouse models are indispensable for understanding the biological function of genes, understanding the genetic basis of human diseases and for preclinical testing of novel therapies. Generation of such mouse models has been possible because of our ability to manipulate the mouse genome. Recombineering is a highly efficient recombination-based method of genetic engineering that has revolutionized our ability to generate mouse models. Since recombineering technology is not dependent on the availability of restriction enzyme recognition sites, it allows us to modify the genome with great precision. It requires homology arms as short as 40 bases for recombination, which makes it relatively easy to generate targeting constructs to insert, change or delete either a single nucleotide or a DNA fragment several kb in size; insert selectable markers, reporter genes or add epitope tags to any gene of interest. In this review, we focus on the development of recombineering technology and its application in the generation of transgenic and knockout or knock-in mouse models. High throughput generation of gene targeting vectors, used to construct knockout alleles in mouse embryonic stem cells, is now feasible because of this technology. The challenge now is to use the "designer" mice to develop novel therapies to prevent, cure or effectively manage some the most debilitating human diseases.

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