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遗传性疾病的小鼠模型:新方法、新范例。

Mouse models of genetic disease: new approaches, new paradigms.

作者信息

Brown S D

机构信息

MRC Mammalian Genetics Unit, Harwell, UK.

出版信息

J Inherit Metab Dis. 1998 Aug;21(5):532-9. doi: 10.1023/a:1005414921109.

Abstract

The mouse mutant resource is a valuable tool for gene function studies in the post-genomics era. However, despite a seemingly large catalogue of mouse mutants, it is recognized that we have access to mutations at only a small fraction of the total number of mouse genes. There is a phenotype gap that needs to be narrowed by the implementation of large-scale, systematic mutagenesis programmes in the mouse. Both genotype-driven and phenotype-driven approaches can be employed to recover new mouse mutations. Genotype-driven approaches include large-scale genome-wide mutagenesis by gene trapping in embryonic stem cells. For genotype-driven approaches, the initial focus is on the characterization of the mutational change to the genome. Identification of the mutated gene is relatively trivial, but the genotype-driven route provides little indication of the likely phenotypic outcome of the mutation. In contrast, phenotype-driven approaches employ mutagenesis procedures that emphasize the recovery of novel phenotypes without prior assumptions about the underlying gene or pathway that has been disrupted--although identifying the underlying gene may not be trivial. One phenotype-driven approach includes chemical mutagenesis using N-ethyl-N-nitrosourea (ENU). ENU mutagenesis programmes are increasingly being brought to bear on increasing the breadth and depth of the mouse mutant resource, and in so doing narrowing the phenotype gap.

摘要

小鼠突变体资源是后基因组时代基因功能研究的宝贵工具。然而,尽管小鼠突变体的目录看似庞大,但人们认识到,我们能够获取的突变仅占小鼠基因总数的一小部分。存在一个表型缺口,需要通过在小鼠中实施大规模、系统性的诱变计划来缩小。基因型驱动和表型驱动的方法都可用于发现新的小鼠突变。基因型驱动的方法包括通过在胚胎干细胞中进行基因捕获来进行大规模全基因组诱变。对于基因型驱动的方法,最初的重点是对基因组突变变化的表征。鉴定突变基因相对容易,但基因型驱动的途径几乎无法表明突变可能产生的表型结果。相比之下,表型驱动的方法采用的诱变程序强调在不预先假设潜在基因或被破坏的途径的情况下恢复新的表型——尽管鉴定潜在基因可能并非易事。一种表型驱动的方法包括使用N-乙基-N-亚硝基脲(ENU)进行化学诱变。ENU诱变计划越来越多地用于扩大和深化小鼠突变体资源,从而缩小表型缺口。

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