高速系统,以在梅达卡产生适宜的菌株。

IF 1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Genes & genetic systems Pub Date : 2023-11-21 Epub Date: 2023-10-13 DOI:10.1266/ggs.23-00075
Minori Shinya, Tetsuaki Kimura, Kiyoshi Naruse
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引用次数: 0

摘要

同源菌株是一种包含来自另一菌株的小基因组区域的近交菌株,是评估替代基因组区域中多态性和/或突变的表型影响的有力工具。最近在复杂性状的遗传研究方面取得了实质性进展,这增加了同源菌株的必要性,因此,同源菌株的快速繁殖系统在小鼠和花呢等模式生物中变得越来越重要。传统上,要产生一个合适的菌株,需要十多代人。相比之下,之前已经报道了一种针对小鼠的快速方法,其中使用遗传标记将所需的回交世代数量减少到传统方法的一半左右,因此大约需要六代才能获得一个合适的品系。在这里,我们提出了一个更快的适应性生产系统,只需要大约四代人。该系统可以产生在HdrR-II1(另一种来自日本南部群体的近交系菌株,O.latipes)背景中具有HNI-II(一种源自日本北部群体的近自交系菌株,Oryzias sakaizumii)基因组的部分的同型花落鱼菌株。在该系统中,冷冻精子的可用性和BC1雄性群体的基因型数据使得在获得BC2群体后开始标记辅助的先天性生产成为可能。我们的评估表明,该系统可以很好地工作,如预期的那样增加受体基因组的百分比,因此可以在大约一年内获得同源菌株。
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High-speed system to generate congenic strains in medaka.

The congenic strain, an inbred strain containing a small genomic region from another strain, is a powerful tool to assess the phenotypic effect of polymorphisms and/or mutations in the substituted genomic region. Recent substantial progress in the genetic studies of complex traits increases the necessity of congenic strains and, therefore, a quick breeding system for congenic strains has become increasingly important in model organisms such as mouse and medaka. Traditionally, more than ten generations are necessary to produce a congenic strain. In contrast, a quick method has been reported previously for the mouse, in which the use of genetic markers reduces the required number of backcross generations to about a half that of the traditional method, so that it would take around six generations to obtain a congenic strain. Here, we present an even quicker congenic production system, which takes only about four generations. The system can produce medaka congenic strains having part of the HNI-II (an inbred medaka strain derived from the northern Japanese population, Oryzias sakaizumii) genome in the HdrR-II1 (another inbred strain from the southern Japanese population, O. latipes) background. In this system, the availability of frozen sperm and genotype data of the BC1 male population makes it possible to start marker-assisted congenic production after obtaining the BC2 population. Our evaluation revealed that the system could work well to increase the percentage of recipient genome as expected, so that a congenic strain may be obtained in about one year.

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来源期刊
Genes & genetic systems
Genes & genetic systems 生物-生化与分子生物学
CiteScore
1.50
自引率
0.00%
发文量
22
审稿时长
>12 weeks
期刊介绍: Genes & Genetic Systems , formerly the Japanese Journal of Genetics , is published bimonthly by the Genetics Society of Japan.
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