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From the CoverPNAS Plus: Design and characterization of a nanopore-coupled polymerase for single-molecule DNA sequencing by synthesis on an electrode array

机译:来自CoverPNAS Plus:设计和表征纳米孔偶联的聚合酶用于通过电极阵列上的合成进行单分子DNA测序

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摘要

Scalable, high-throughput DNA sequencing is a prerequisite for precision medicine and biomedical research. Recently, we presented a nanopore-based sequencing-by-synthesis (Nanopore-SBS) approach, which used a set of nucleotides with polymer tags that allow discrimination of the nucleotides in a biological nanopore. Here, we designed and covalently coupled a DNA polymerase to an α-hemolysin (αHL) heptamer using the SpyCatcher/SpyTag conjugation approach. These porin–polymerase conjugates were inserted into lipid bilayers on a complementary metal oxide semiconductor (CMOS)-based electrode array for high-throughput electrical recording of DNA synthesis. The designed nanopore construct successfully detected the capture of tagged nucleotides complementary to a DNA base on a provided template. We measured over 200 tagged-nucleotide signals for each of the four bases and developed a classification method to uniquely distinguish them from each other and background signals. The probability of falsely identifying a background event as a true capture event was less than 1.2%. In the presence of all four tagged nucleotides, we observed sequential additions in real time during polymerase-catalyzed DNA synthesis. Single-polymerase coupling to a nanopore, in combination with the Nanopore-SBS approach, can provide the foundation for a low-cost, single-molecule, electronic DNA-sequencing platform.
机译:可扩展的高通量DNA测序是精密医学和生物医学研究的先决条件。最近,我们提出了一种基于纳米孔的合成测序(Nanopore-SBS)方法,该方法使用了一组带有聚合物标签的核苷酸,从而可以区分生物纳米孔中的核苷酸。在这里,我们使用SpyCatcher / SpyTag偶联方法设计了DNA聚合酶并将其与α-溶血素(αHL)七聚体共价偶联。这些孔蛋白-聚合酶偶联物被插入基于互补金属氧化物半导体(CMOS)的电极阵列上的脂质双层中,以高通量电记录DNA合成。设计的纳米孔构建体在提供的模板上成功检测到与DNA互补的标记核苷酸的捕获。我们测量了四个碱基中每个碱基的200多个标记核苷酸信号,并开发了一种分类方法以将它们彼此唯一地与背景信号区分开。错误地将背景事件识别为真实捕获事件的可能性小于1.2%。在所有四个标记核苷酸的存在下,我们观察到在聚合酶催化的DNA合成过程中实时实时顺序添加。将单聚合酶偶联至纳米孔,再结合使用纳米孔-SBS方法,可以为低成本,单分子电子DNA测序平台提供基础。

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