Research Center of Molecular Diagnostics and Sequencing, Research Institute of Tsinghua University in Shenzhen, Shenzhen, Guangdong, 518057, China.
MOE Key Lab of Bioinformatics, School of Life Sciences, Tsinghua University, Beijing, 100101, China.
Microb Biotechnol. 2021 Jul;14(4):1642-1656. doi: 10.1111/1751-7915.13830. Epub 2021 May 19.
Phi29 DNA polymerase (Phi29 Pol) has been successfully applied in DNA nanoball-based sequencing, real-time DNA sequencing from single polymerase molecules and nanopore sequencing employing the sequencing by synthesis (SBS) method. Among these, polymerase-assisted nanopore sequencing technology analyses nucleotide sequences as a function of changes in electrical current. This ionic, current-based sequencing technology requires polymerases to perform replication at high salt concentrations, for example 0.3 M KCl. Nonetheless, the salt tolerance of wild-type Phi29 Pol is relatively low. Here, we fused helix-hairpin-helix (HhH) domains E-L (eight repeats in total) of topoisomerase V (Topo V) from the hyperthermophile Methanopyrus kandleri to the Phi29 Pol COOH terminus, designated Phi29EL DNA polymerase (Phi29EL Pol). Domain fusion increased the overall enzyme replication efficiency by fourfold. Phi29EL Pol catalysed rolling circle replication in a broader range of salt concentrations than did Phi29 Pol, extending the KCl concentration range for activity up to 0.3 M. In addition, the mutation of Glu to Ser or Gln increased Phi29EL Pol activity in the presence of KCl. In this work, we produced a salt-tolerant Phi29 Pol derivative by means of (HhH) domain insertion. The multiple advantages of this insertion make it a good substitute for Phi29 Pol, especially for use in nanopore sequencing or other circumstances that require high salt concentrations.
Phi29 DNA 聚合酶(Phi29 Pol)已成功应用于 DNA 纳米球测序、单聚合酶分子实时 DNA 测序和基于合成测序(SBS)的纳米孔测序。在这些方法中,聚合酶辅助的纳米孔测序技术通过分析电流变化来分析核苷酸序列。这种离子电流测序技术要求聚合酶在高盐浓度下进行复制,例如 0.3 M KCl。然而,野生型 Phi29 Pol 的耐盐性相对较低。在这里,我们将来自嗜热古菌 Methanopyrus kandleri 的拓扑异构酶 V(Topo V)的 HhH 结构域 E-L(总共 8 个重复)融合到 Phi29 Pol 的 COOH 末端,命名为 Phi29EL DNA 聚合酶(Phi29EL Pol)。结构域融合将酶的整体复制效率提高了四倍。与 Phi29 Pol 相比,Phi29EL Pol 可以在更宽的盐浓度范围内催化滚环复制,将 KCl 活性浓度范围扩展到 0.3 M。此外,将 Glu 突变为 Ser 或 Gln 增加了 KCl 存在时 Phi29EL Pol 的活性。在这项工作中,我们通过(HhH)结构域插入产生了一种耐盐的 Phi29 Pol 衍生物。这种插入的多种优势使其成为 Phi29 Pol 的良好替代品,特别是在纳米孔测序或其他需要高盐浓度的情况下。