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Mu transpososome activity-profiling yields hyperactive MuA variants for highly efficient genetic and genome engineering

机译:Mu转座子活性图谱可产生高活性MuA变体用于高效的遗传和基因组工程

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摘要

The phage Mu DNA transposition system provides a versatile species non-specific tool for molecular biology, genetic engineering and genome modification applications. Mu transposition is catalyzed by MuA transposase, with DNA cleavage and integration reactions ultimately attaching the transposon DNA to target DNA. To improve the activity of the Mu DNA transposition machinery, we mutagenized MuA protein and screened for hyperactivity-causing substitutions using an in vivo assay. The individual activity-enhancing substitutions were mapped onto the MuA–DNA complex structure, containing a tetramer of MuA transposase, two Mu end segments and a target DNA. This analysis, combined with the varying effect of the mutations in different assays, implied that the mutations exert their effects in several ways, including optimizing protein–protein and protein–DNA contacts. Based on these insights, we engineered highly hyperactive versions of MuA, by combining several synergistically acting substitutions located in different subdomains of the protein. Purified hyperactive MuA variants are now ready for use as second-generation tools in a variety of Mu-based DNA transposition applications. These variants will also widen the scope of Mu-based gene transfer technologies toward medical applications such as human gene therapy. Moreover, the work provides a platform for further design of custom transposases.
机译:噬菌体Mu DNA转座系统为分子生物学,基因工程和基因组修饰应用提供了一种通用的物种非特异性工具。 Mu转座由MuA转座酶催化,DNA裂解和整合反应最终将转座子DNA附着到靶DNA上。为了提高Mu DNA转座机制的活性,我们诱变了MuA蛋白,并使用体内试验筛选了引起过度活跃的替代物。将单个增强活性的置换定位到MuA-DNA复合结构上,该结构包含MuA转座酶的四聚体,两个Mu末端片段和一个靶DNA。这项分析与突变在不同分析中的不同作用相结合,暗示了突变以多种方式发挥其作用,包括优化蛋白质-蛋白质和蛋白质-DNA接触。基于这些见解,我们通过结合位于蛋白质不同亚结构域中的多个协同作用取代,设计了高度活跃的MuA版本。纯化的高活性MuA变体现已准备好在各种基于Mu的DNA转座应用中用作第二代工具。这些变体也将把基于Mu的基因转移技术的范围扩展到医学应用中,例如人类基因治疗。此外,这项工作为进一步设计定制转座酶提供了平台。

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