Suppr超能文献

通过在酿酒酵母中缺口修复优化有序质粒的组装。

Optimization of ordered plasmid assembly by gap repair in Saccharomyces cerevisiae.

机构信息

Department of Biology, University of Copenhagen, Ole Maaloees Vej 5, DK-2200, Copenhagen N, Denmark.

出版信息

Yeast. 2012 Aug;29(8):323-34. doi: 10.1002/yea.2912. Epub 2012 Jul 17.

Abstract

Combinatorial genetic libraries are powerful tools for diversifying and optimizing biomolecules. The process of library assembly is a major limiting factor for library complexity and quality. Gap repair by homologous recombination in Saccharomyces cerevisiae can facilitate in vivo assembly of DNA fragments sharing short patches of sequence homology, thereby supporting generation of high-complexity libraries without compromising fidelity. In this study, we have optimized the ordered assembly of three DNA fragments into a gapped vector by in vivo homologous recombination. Assembly is achieved by co-transformation of the DNA fragments and the gapped vector, using a modified lithium acetate protocol. The optimal gap-repair efficiency is found at a 1:80 molar ratio of gapped vector to each of the three fragments. We measured gap-repair efficiency in different genetic backgrounds and observed increased efficiency in mutants carrying a deletion of the SGS1 helicase-encoding gene. Using our experimental conditions, a gap-repair efficiency of > 10(6) plasmid-harbouring colonies/µg gapped vector DNA is obtained in a single transformation, with a recombination fidelity > 90%.

摘要

组合遗传文库是多样化和优化生物分子的有力工具。文库组装的过程是限制文库复杂性和质量的主要因素。酿酒酵母中的同源重组缺口修复可以促进具有短序列同源性片段的 DNA 片段在体内组装,从而在不影响保真度的情况下支持高复杂度文库的生成。在这项研究中,我们通过体内同源重组优化了三个 DNA 片段到有缺口载体的有序组装。通过改良的锂盐方案,通过共转化三个片段和有缺口的载体来实现组装。在缺口载体与三个片段的摩尔比为 1:80 时,发现缺口修复效率最佳。我们在不同的遗传背景下测量了缺口修复效率,并观察到携带 SGS1 解旋酶编码基因缺失的突变体的效率增加。在我们的实验条件下,在单个转化中,每个有缺口的载体 DNA 获得超过 10^6 个质粒携带的菌落/μg,重组保真度>90%。

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