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Mouse phenome research: implications of genetic background

机译:小鼠现象研究:遗传背景的意义

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Now that sequencing of the mouse genome has been completed, the function of each gene remains to be elucidated through phenotypic analysis. The "genetic background" (in which each gene functions) is defined as the genotype of all other related genes that may interact with the gene of interest, and therefore potentially influences the specific phenotype. To understand the nature and importance of genetic background on phenotypic expression of specific genes, it is necessary to know the origin and evolutionary history of the laboratory mouse genome. Molecular analysis has indicated that the fancy mice of Japan and Europe contributed significantly to the origin of today's laboratory mice. The genetic background of present-day laboratory mice varies by mouse strain, but is mainly derived from the European domesticus subspecies group and to a lesser degree from Asian mice, probably Japanese fancy mice, which belong to the musculus subspecies group. Inbred laboratory mouse strains are genetically uniform due to extensive inbreeding, and they have greatly contributed to the genetic analysis of many Mendelian traits. Meanwhile, for a variety of practical reasons, many transgenic and targeted mutant mice have been created in mice of mixed genetic backgrounds to elucidate the function of the genes, although efforts have been made to create inbred transgenic mice and targeted mutant mice with coisogenic embryonic stem cell lines. Inbred mouse strains have provided uniform genetic background for accurate evaluation of specific genes phenotypes, thus eliminating the phenotypic variations caused by mixed genetic backgrounds. However, the process of inbreeding and selection of various inbred strain characteristics has resulted in inadvertent selection of other undesirable genetic characteristics and mutations that may influence the genotype and preclude effective phenotypic analysis. Because many of the common inbred mouse stains have been established from relatively small gene pools, common inbred strains have limitations in their genetic polymorphisms and phenotypic variations. Wild-derived mouse strains can complement deficiencies of common inbred mouse strains, providing novel allelic variants and phenotypes. Although wild-derived strains are not as tame as the common laboratory strains, their genetic characteristics are attractive for the future study of gene function.
机译:现在,小鼠基因组的测序已完成,每个基因的功能仍有待通过表型分析加以阐明。 “遗传背景”(每个基因在其中起作用)被定义为可能与目的基因相互作用的所有其他相关基因的基因型,因此可能影响特定的表型。若要了解特定背景表型表达的遗传背景的性质和重要性,有必要了解实验室小鼠基因组的起源和进化史。分子分析表明,日本和欧洲的奇特小鼠为当今实验室小鼠的起源做出了重要贡献。当前实验室小鼠的遗传背景因小鼠品系而异,但主要来源于欧洲家蝇亚种组,而程度较小的则来自属于小家鼠亚种组的亚洲小鼠,可能是日本奇特的小鼠。由于广泛的近交,近交实验室小鼠品系在遗传上是统一的,它们为许多孟德尔性状的遗传分析做出了巨大贡献。同时,由于各种实际原因,尽管已经努力创建近交转基因小鼠和具有同基因胚胎干的定向突变小鼠,但是在混合遗传背景的小鼠中已经创建了许多转基因和靶向突变小鼠以阐明基因的功能。细胞系。自交系小鼠品系为准确评估特定基因的表型提供了统一的遗传背景,从而消除了由混合遗传背景引起的表型变异。但是,近交和选择各种近交菌株特性的过程已导致无意中选择了可能影响基因型并排除有效表型分析的其他不良遗传特性和突变。因为许多常见的自交小鼠染色是从相对较小的基因库中建立的,所以常见的自交系在其遗传多态性和表型变异方面存在局限性。野生来源的小鼠品系可以弥补常见近交小鼠品系的不足,提供新颖的等位基因变体和表型。尽管野生来源的菌株不像普通实验室菌株那样温和,但它们的遗传特性对于将来的基因功能研究具有吸引力。

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