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通过粟酒裂殖酵母的反式互补克隆哺乳动物cDNA的高频转化方法及文库转导载体。

High-frequency transformation method and library transducing vectors for cloning mammalian cDNAs by trans-complementation of Schizosaccharomyces pombe.

作者信息

Okazaki K, Okazaki N, Kume K, Jinno S, Tanaka K, Okayama H

机构信息

Department of Molecular Genetics, Osaka University, Japan.

出版信息

Nucleic Acids Res. 1990 Nov 25;18(22):6485-9. doi: 10.1093/nar/18.22.6485.

Abstract

We describe a highly efficient alkali cation method and library transducing vectors for cloning mammalian cDNAs by trans-complementation of fission yeast Schizosaccharomyces pombe mutants. cDNA libraries constructed with the pcD or pcD2 vector are transduced into yeast by cotransfection with a linearized vector, which allows an enhanced homologous recombination between the yeast vector and the library plasmid leading to the efficient formation of concatemers containing pcD molecules. The transformation frequencies obtained by the method are 10(6) colonies per 10(8) cells transfected with 2 micrograms of library and 1 microgram of vector, 50-60% of which contain pcD molecules. The high-efficiency alkali cation method circumvents many of the shortcomings of the spheroplast method generally used for Schiz. pombe transfection. The vectors are maximized for the efficiency of library transduction and minimized for the rearrangements of pcD molecules during propagation in yeast. This system allows rapid screening of multi-million cDNA clone libraries for rare cDNAs in a routine scale of experiments. Using this system, various mammalian cDNAs that are extremely difficult, time-consuming, or unclonable to clone by other methods have been cloned.

摘要

我们描述了一种高效的碱金属阳离子方法和文库转导载体,用于通过裂殖酵母粟酒裂殖酵母突变体的反式互补来克隆哺乳动物cDNA。用pcD或pcD2载体构建的cDNA文库通过与线性化载体共转染导入酵母,这使得酵母载体与文库质粒之间的同源重组增强,从而有效地形成含有pcD分子的串联体。用该方法获得的转化频率为每10^8个用2微克文库和1微克载体转染的细胞产生10^6个菌落,其中50 - 60%含有pcD分子。高效碱金属阳离子方法克服了通常用于粟酒裂殖酵母转染的原生质球方法的许多缺点。这些载体在文库转导效率方面达到最大化,而在酵母中繁殖期间pcD分子的重排方面达到最小化。该系统允许在常规实验规模下快速筛选数百万个cDNA克隆文库以寻找稀有cDNA。使用该系统,已经克隆了各种用其他方法极其困难、耗时或无法克隆的哺乳动物cDNA。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ee19/332599/d385bb218988/nar00206-0026-a.jpg

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