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一种改造DNA聚合酶以提高持续合成能力并改善体外性能的新策略。

A novel strategy to engineer DNA polymerases for enhanced processivity and improved performance in vitro.

作者信息

Wang Yan, Prosen Dennis E, Mei Li, Sullivan John C, Finney Michael, Vander Horn Peter B

机构信息

Department of Research and Development, MJ Bioworks Inc., 7000 Shoreline Court, South San Francisco, CA 94080, USA.

出版信息

Nucleic Acids Res. 2004 Feb 18;32(3):1197-207. doi: 10.1093/nar/gkh271. Print 2004.

Abstract

Mechanisms that allow replicative DNA polymerases to attain high processivity are often specific to a given polymerase and cannot be generalized to others. Here we report a protein engineering-based approach to significantly improve the processivity of DNA polymerases by covalently linking the polymerase domain to a sequence non-specific dsDNA binding protein. Using Sso7d from Sulfolobus solfataricus as the DNA binding protein, we demonstrate that the processivity of both family A and family B polymerases can be significantly enhanced. By introducing point mutations in Sso7d, we show that the dsDNA binding property of Sso7d is essential for the enhancement. We present evidence supporting two novel conclusions. First, the fusion of a heterologous dsDNA binding protein to a polymerase can increase processivity without compromising catalytic activity and enzyme stability. Second, polymerase processivity is limiting for the efficiency of PCR, such that the fusion enzymes exhibit profound advantages over unmodified enzymes in PCR applications. This technology has the potential to broadly improve the performance of nucleic acid modifying enzymes.

摘要

使复制性DNA聚合酶获得高持续合成能力的机制通常特定于某一种聚合酶,无法推广至其他聚合酶。在此,我们报告一种基于蛋白质工程的方法,通过将聚合酶结构域与序列非特异性双链DNA结合蛋白共价连接,显著提高DNA聚合酶的持续合成能力。以来自嗜热栖热菌的Sso7d作为DNA结合蛋白,我们证明A族和B族聚合酶的持续合成能力均可得到显著增强。通过在Sso7d中引入点突变,我们表明Sso7d的双链DNA结合特性对增强作用至关重要。我们提供了支持两个新结论的证据。第一,将异源双链DNA结合蛋白与聚合酶融合可提高持续合成能力,而不影响催化活性和酶稳定性。第二,聚合酶的持续合成能力限制了PCR效率,因此在PCR应用中,融合酶比未修饰的酶具有显著优势。该技术有可能广泛提高核酸修饰酶的性能。

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