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Engineering Mouse Chromosomes with Cre-loxP: Range Efficiency and Somatic Applications

机译:利用Cre-loxP工程化小鼠染色体:范围效率和体细胞应用

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摘要

Chromosomal rearrangements are important resources for genetic studies. Recently, a Cre-loxP-based method to introduce defined chromosomal rearrangements (deletions, duplications, and inversions) into the mouse genome (chromosome engineering) has been established. To explore the limits of this technology systematically, we have evaluated this strategy on mouse chromosome 11. Although the efficiency of Cre-loxP-mediated recombination decreases with increasing genetic distance when the two endpoints are on the same chromosome, the efficiency is not limiting even when the genetic distance is maximized. Rearrangements encompassing up to three quarters of chromosome 11 have been constructed in mouse embryonic stem (ES) cells. While larger deletions may lead to ES cell lethality, smaller deletions can be produced very efficiently both in ES cells and in vivo in a tissue- or cell-type-specific manner. We conclude that any chromosomal rearrangement can be made in ES cells with the Cre-loxP strategy provided that it does not affect cell viability. In vivo chromosome engineering can be potentially used to achieve somatic losses of heterozygosity in creating mouse models of human cancers.
机译:染色体重排是遗传研究的重要资源。最近,已经建立了一种基于Cre-loxP的方法,将定义的染色体重排(缺失,重复和倒位)引入小鼠基因组(染色体工程)。为了系统地探索该技术的局限性,我们在小鼠11号染色体上评估了该策略。尽管当两个端点位于同一条染色体上时,Cre-loxP介导的重组效率随遗传距离的增加而降低,但该效率甚至不受限制。当遗传距离最大化时。已在小鼠胚胎干(ES)细胞中构建了涵盖多达四分之三的11号染色体的重排。尽管较大的缺失可能导致ES细胞致死,但可以以组织或细胞类型特异性的方式在ES细胞和体内非常有效地产生较小的缺失。我们得出结论,只要Cre-loxP策略不影响细胞生存力,就可以在ES细胞中进行任何染色体重排。在创建人类癌症的小鼠模型中,体内染色体工程可潜在地用于实现杂合性的体细胞丧失。

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