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一种利用生殖系特异性phiC31整合酶的果蝇优化转基因系统。

An optimized transgenesis system for Drosophila using germ-line-specific phiC31 integrases.

作者信息

Bischof Johannes, Maeda Robert K, Hediger Monika, Karch François, Basler Konrad

机构信息

Frontiers in Genetics, National Center of Competence in Research, Institute of Molecular Biology, University of Zurich, Winterthurerstrasse 190, CH-8057 Zurich, Switzerland.

出版信息

Proc Natl Acad Sci U S A. 2007 Feb 27;104(9):3312-7. doi: 10.1073/pnas.0611511104. Epub 2007 Feb 22.

Abstract

Germ-line transformation via transposable elements is a powerful tool to study gene function in Drosophila melanogaster. However, some inherent characteristics of transposon-mediated transgenesis limit its use for transgene analysis. Here, we circumvent these limitations by optimizing a phiC31-based integration system. We generated a collection of lines with precisely mapped attP sites that allow the insertion of transgenes into many different predetermined intergenic locations throughout the fly genome. By using regulatory elements of the nanos and vasa genes, we established endogenous sources of the phiC31 integrase, eliminating the difficulties of coinjecting integrase mRNA and raising the transformation efficiency. Moreover, to discriminate between specific and rare nonspecific integration events, a white gene-based reconstitution system was generated that enables visual selection for precise attP targeting. Finally, we demonstrate that our chromosomal attP sites can be modified in situ, extending their scope while retaining their properties as landing sites. The efficiency, ease-of-use, and versatility obtained here with the phiC31-based integration system represents an important advance in transgenesis and opens up the possibility of systematic, high-throughput screening of large cDNA sets and regulatory elements.

摘要

通过转座元件进行种系转化是研究黑腹果蝇基因功能的有力工具。然而,转座子介导的转基因的一些固有特性限制了其在转基因分析中的应用。在此,我们通过优化基于phiC31的整合系统来规避这些限制。我们生成了一系列具有精确映射的attP位点的品系,这些位点允许将转基因插入果蝇基因组中许多不同的预定基因间位置。通过使用nanos和vasa基因的调控元件,我们建立了phiC31整合酶的内源来源,消除了共注射整合酶mRNA的困难并提高了转化效率。此外,为了区分特异性和罕见的非特异性整合事件,我们生成了一个基于白色基因的重组系统,该系统能够通过视觉选择实现精确的attP靶向。最后,我们证明我们的染色体attP位点可以原位修饰,在保留其作为着陆位点特性的同时扩展其范围。基于phiC31的整合系统在此获得的效率、易用性和多功能性代表了转基因技术的一项重要进展,并为系统、高通量筛选大型cDNA集和调控元件开辟了可能性。

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