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果蝇中的系统性功能获得遗传学。

Systematic gain-of-function genetics in Drosophila.

作者信息

Rørth P, Szabo K, Bailey A, Laverty T, Rehm J, Rubin G M, Weigmann K, Milán M, Benes V, Ansorge W, Cohen S M

机构信息

Department of Embryology, Carnegie Institution of Washington, 115 West University Parkway, Baltimore, MD 21210, USA.

出版信息

Development. 1998 Mar;125(6):1049-57. doi: 10.1242/dev.125.6.1049.

Abstract

A modular misexpression system was used to carry out systematic gain-of-function genetic screens in Drosophila. The system is based on inducible expression of genes tagged by insertion of a P-element vector carrying a GAL4-regulated promoter oriented to transcribe flanking genomic sequences. To identify genes involved in eye and wing development, the 2300 independent lines were screened for dominant phenotypes. Among many novel genes, the screen identified known genes, including hedgehog and decapentaplegic, implicated in these processes. A genetic interaction screen for suppressors of a cell migration defect in a hypomorphic slow border cells mutant identified known genes with likely roles in tyrosine kinase signaling and control of actin cytoskeleton, among many novel genes. These studies demonstrate the ability of the modular misexpression system to identify developmentally important genes and suggest that it will be generally useful for genetic interaction screens.

摘要

一个模块化的错误表达系统被用于在果蝇中进行系统性的功能获得性遗传筛选。该系统基于对通过插入携带GAL4调控启动子的P元素载体标记的基因进行诱导表达,该启动子的方向是转录侧翼基因组序列。为了鉴定参与眼睛和翅膀发育的基因,对2300个独立品系进行了显性表型筛选。在许多新基因中,该筛选鉴定出了已知基因,包括参与这些过程的刺猬基因和骨形态发生蛋白基因。对一个低表达的慢边界细胞突变体中细胞迁移缺陷的抑制子进行的遗传相互作用筛选,在许多新基因中鉴定出了已知基因,这些基因可能在酪氨酸激酶信号传导和肌动蛋白细胞骨架控制中发挥作用。这些研究证明了模块化错误表达系统识别发育中重要基因的能力,并表明它在遗传相互作用筛选中通常会很有用。

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