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Comparison of Multiple Gene Assembly Methods for Metabolic Engineering

机译:代谢工程中多种基因组装方法的比较

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A universal, rapid DNA assembly method for efficient multigene plasmid construction is important for biological research and for optimizing gene expression in industrial microbes. Three different approaches to achieve this goal were evaluated. These included creating long complementary extensions using a uracil-DNA glycosylase technique, overlap extension polymerase chain reaction, and a SfiI-based ligation method. SfiI ligation was the only successful approach for assembling large DNA fragments that contained repeated homologous regions. In addition, the SfiI method has been improved over a similar, previous published technique so that it is more flexible and does not require polymerase chain reaction to incorporate adaptors. In the present study, Saccharomyces cerevisiae genes TAL1, TKL1, and PYK1 under control of the 6-phosphogluconate dehydrogenase promoter were successfully ligated together using multiple unique SfiI restriction sites. The desired construct was obtained 65% of the time during vector construction using four-piece ligations. The SfiI method consists of three steps: first a SfiI linker vector is constructed, whose multiple cloning site is flanked by two three-base linkers matching the neighboring SfiI linkers on SfiI digestion; second, the linkers are attached to the desired genes by cloning them into SfiI linker vectors; third, the genes flanked by the three-base linkers, are released by SfiI digestion. In the final step, genes of interest are joined together in a simple one-step ligation.
机译:一种有效的多基因质粒构建的通用,快速的DNA组装方法对于生物学研究和优化工业微生物中的基因表达非常重要。对实现此目标的三种不同方法进行了评估。这些包括使用尿嘧啶-DNA糖基化酶技术产生长的互补延伸,重叠延伸聚合酶链反应和基于SfiI的连接方法。 SfiI连接是组装包含重复同源区域的大DNA片段的唯一成功方法。此外,SfiI方法已经比类似的先前公开技术有所改进,因此它更加灵活,并且不需要聚合酶链式反应即可加入衔接子。在本研究中,使用多个独特的SfiI限制性酶切位点成功地将酿酒酵母基因TAL1,TKL1和PYK1在6-磷酸葡萄糖酸脱氢酶启动子的控制下连接在一起。在使用四件式连接的载体构建过程中,所需构建体的获得时间为65%。 SfiI方法包括三个步骤:首先构建一个SfiI接头载体,其多克隆位点的侧翼是两个三碱基接头,它们在SfiI消化中与相邻的SfiI接头匹配。其次,通过将接头克隆到SfiI接头载体中,使接头与所需基因连接。第三,侧翼为三碱基接头的基因通过SfiI消化释放。在最后一步中,将目标基因通过简单的一步连接方式连接在一起。

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