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利用 RNA 干扰和候选基因在果蝇翅膀中的原位杂交对功能获得性筛选进行遗传注释。

Genetic annotation of gain-of-function screens using RNA interference and in situ hybridization of candidate genes in the Drosophila wing.

机构信息

Centro de Biología Molecular Severo Ochoa, Universidad Autónoma de Madrid and CSIC, Madrid 28049, Spain.

出版信息

Genetics. 2012 Oct;192(2):741-52. doi: 10.1534/genetics.112.143537. Epub 2012 Jul 13.

Abstract

Gain-of-function screens in Drosophila are an effective method with which to identify genes that affect the development of particular structures or cell types. It has been found that a fraction of 2-10% of the genes tested, depending on the particularities of the screen, results in a discernible phenotype when overexpressed. However, it is not clear to what extent a gain-of-function phenotype generated by overexpression is informative about the normal function of the gene. Thus, very few reports attempt to correlate the loss- and overexpression phenotype for collections of genes identified in gain-of-function screens. In this work we use RNA interference and in situ hybridization to annotate a collection of 123 P-GS insertions that in combination with different Gal4 drivers affect the size and/or patterning of the wing. We identify the gene causing the overexpression phenotype by expressing, in a background of overexpression, RNA interference for the genes affected by each P-GS insertion. Then, we compare the loss and gain-of-function phenotypes obtained for each gene and relate them to its expression pattern in the wing disc. We find that 52% of genes identified by their overexpression phenotype are required during normal development. However, only in 9% of the cases analyzed was there some complementarity between the gain- and loss-of-function phenotype, suggesting that, in general, the overexpression phenotypes would not be indicative of the normal requirements of the gene.

摘要

在果蝇中,功能获得筛选是一种有效的方法,可以鉴定影响特定结构或细胞类型发育的基因。研究发现,在特定的筛选条件下,有一小部分(2-10%)的测试基因在过表达时会产生明显的表型。然而,目前尚不清楚过表达产生的功能获得表型在多大程度上能反映基因的正常功能。因此,很少有报道试图将功能获得筛选中鉴定的基因的缺失和过表达表型进行关联。在这项工作中,我们使用 RNA 干扰和原位杂交技术对 123 个 P-GS 插入的集合进行注释,这些插入物与不同的 Gal4 驱动子一起影响翅膀的大小和/或模式。我们通过在过表达背景下表达受每个 P-GS 插入影响的基因的 RNA 干扰,来确定导致过表达表型的基因。然后,我们比较每个基因获得的缺失和功能获得表型,并将其与翅膀盘内的表达模式相关联。我们发现,52%的通过过表达表型鉴定的基因在正常发育过程中是必需的。然而,在分析的 9%的情况下,功能获得和缺失表型之间存在一定的互补性,这表明,一般来说,过表达表型不会指示基因的正常需求。

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