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转座子介导的非洲短命脂鲤(Nothobranchius furzeri)转基因,一种衰老的脊椎动物模型。

Transposon-Mediated Transgenesis in the Short-Lived African Killifish Nothobranchius furzeri, a Vertebrate Model for Aging.

机构信息

Department of Genetics, Stanford University, Stanford, California 94305.

出版信息

G3 (Bethesda). 2011 Dec;1(7):531-8. doi: 10.1534/g3.111.001271. Epub 2011 Dec 1.

Abstract

The African killifish Nothobranchius furzeri is the shortest-lived vertebrate that can be bred in captivity. N. furzeri comprises several wild-derived strains with striking differences in longevity ranging from 3 to 9 months, which makes it a powerful vertebrate model for aging research. The short life cycle of N. furzeri should also facilitate studies on adult traits that are specific to vertebrates. Although progress has been made to generate a genetic linkage map and to start sequencing the genome of N. furzeri, tools to genetically manipulate this species of fish have not yet been developed. Here, we report the first establishment of transgenesis in N. furzeri. We use the Tol2 transposase system to generate transgenic N. furzeri that express green fluorescent protein driven by the Xenopus cytoskeletal actin promoter or the zebrafish heat-shock protein 70 promoter. We successfully generate stable transgenic lines of N. furzeri with germline transmission of integrated transgene. The development of transgenesis in N. furzeri provides a powerful tool to investigate the mechanisms underlying aging and longevity in a short-lived vertebrate model. Transgenesis in this fish will also facilitate the study of other phenotypes, including adult tissue regeneration and cognitive behavior.

摘要

非洲食蚊鱼(Nothobranchius furzeri)是一种能在人工饲养条件下繁殖的寿命最短的脊椎动物。非洲食蚊鱼包含多个野生种群,其寿命差异很大,从 3 个月到 9 个月不等,这使它成为衰老研究的有力的脊椎动物模型。非洲食蚊鱼的生命周期很短,这也有助于研究脊椎动物特有的成年特征。尽管已经取得了进展,生成了遗传连锁图谱并开始对非洲食蚊鱼的基因组进行测序,但尚未开发出用于遗传操作该鱼类的工具。在这里,我们报告了非洲食蚊鱼的转基因技术的首次建立。我们使用 Tol2 转座酶系统,生成了表达绿色荧光蛋白的转基因非洲食蚊鱼,其启动子为非洲爪蟾细胞骨架肌动蛋白启动子或斑马鱼热休克蛋白 70 启动子。我们成功地生成了具有整合转基因种系传递的稳定的转基因非洲食蚊鱼系。非洲食蚊鱼的转基因技术的发展为研究短寿命脊椎动物模型中的衰老和长寿机制提供了有力的工具。这种鱼类的转基因技术也将有助于研究其他表型,包括成年组织再生和认知行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/18d2/3276177/c8fd64c66e2c/531f1.jpg

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