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转座子整合高密度图谱与基因功能整合分析。

Integration profiling of gene function with dense maps of transposon integration.

机构信息

Section on Eukaryotic Transposable Elements, Program in Cellular Regulation and Metabolism, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland 20892.

出版信息

Genetics. 2013 Oct;195(2):599-609. doi: 10.1534/genetics.113.152744. Epub 2013 Jul 26.

Abstract

Understanding how complex networks of genes integrate to produce dividing cells is an important goal that is limited by the difficulty in defining the function of individual genes. Current resources for the systematic identification of gene function such as siRNA libraries and collections of deletion strains are costly and organism specific. We describe here integration profiling, a novel approach to identify the function of eukaryotic genes based upon dense maps of transposon integration. As a proof of concept, we used the transposon Hermes to generate a library of 360,513 insertions in the genome of Schizosaccharomyces pombe. On average, we obtained one insertion for every 29 bp of the genome. Hermes integrated more often into nucleosome free sites and 33% of the insertions occurred in ORFs. We found that ORFs with low integration densities successfully identified the genes that are essential for cell division. Importantly, the nonessential ORFs with intermediate levels of insertion correlated with the nonessential genes that have functions required for colonies to reach full size. This finding indicates that integration profiles can measure the contribution of nonessential genes to cell division. While integration profiling succeeded in identifying genes necessary for propagation, it also has the potential to identify genes important for many other functions such as DNA repair, stress response, and meiosis.

摘要

了解基因的复杂网络如何整合以产生分裂细胞是一个重要的目标,但受到定义单个基因功能的困难的限制。目前用于系统识别基因功能的资源,如 siRNA 文库和缺失菌株的集合,既昂贵又具有特定的生物体。我们在这里描述了整合分析,这是一种基于转座子整合密集图谱来识别真核基因功能的新方法。作为概念验证,我们使用 Hermes 转座子在酿酒酵母的基因组中生成了一个包含 360513 个插入物的文库。平均而言,我们在基因组的每 29 个碱基中获得一个插入物。Hermes 更经常整合到无核小体的位点,并且 33%的插入发生在 ORF 中。我们发现,整合密度低的 ORF 成功地鉴定了对细胞分裂至关重要的基因。重要的是,具有中等插入水平的非必需 ORF 与达到完全大小所需功能的非必需基因相关。这一发现表明,整合分析可以衡量非必需基因对细胞分裂的贡献。虽然整合分析成功地鉴定了繁殖所必需的基因,但它也有可能鉴定对许多其他功能(如 DNA 修复、应激反应和减数分裂)重要的基因。

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