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铰链引发的引物依赖性核酸扩增(HIP)-一种新的通用等温扩增方法。

Hinge-initiated Primer-dependent Amplification of Nucleic Acids (HIP) - A New Versatile Isothermal Amplification Method.

机构信息

Division of Molecular Biotechnology and Functional Genomics, Technical University of Applied Sciences Wildau, Hochschulring 1, Wildau, 15745, Germany.

出版信息

Sci Rep. 2017 Aug 9;7(1):7683. doi: 10.1038/s41598-017-08067-x.

Abstract

The growing demand for cost-effective nucleic acid detection assays leads to an increasing number of different isothermal amplification reaction methods. However, all of the most efficient methods suffer from highly complex assay conditions due to the use of complicated primer sets and/or auxiliary enzymes. The present study describes the application of a new linker moiety that can be incorporated between a primer and a secondary target binding site which can act both as a block to polymerase extension as well as a hinge for refolding. This novel "hinge-primer" approach results in an efficient regeneration of the primer binding site and thus improves the strand-displacement and amplification process under isothermal conditions. Our investigations revealed that the reaction with forward and reverse hinge-primer including an abasic site is very efficient. The assay complexity can be reduced by combining the hinge-primer with a corresponding linear primer. Furthermore, the reaction speed can be increased by reducing the length of the amplified target sequence. We tested the sensitivity down to 10 copies and found a linear correlation between reaction time and input copy number. Our approach overcomes the usually cumbersome primer-design and extends the range of isothermal amplification methods using a polymerase with strand-displacement activity.

摘要

不断增长的成本效益核酸检测需求导致了越来越多不同的等温扩增反应方法。然而,由于使用复杂的引物组和/或辅助酶,所有最有效的方法都由于高度复杂的实验条件而受到限制。本研究描述了一种新的连接子部分的应用,该连接子部分可以在引物和二级靶标结合位点之间被引入,其可以作为聚合酶延伸的阻断物以及重新折叠的铰链。这种新颖的“铰链-引物”方法导致了引物结合位点的有效再生,从而在等温条件下改善了链置换和扩增过程。我们的研究表明,带有无碱基位点的正向和反向铰链-引物的反应非常有效。通过将铰链-引物与相应的线性引物相结合,可以降低反应的复杂性。此外,通过缩短扩增靶序列的长度,可以提高反应速度。我们测试了灵敏度低至 10 拷贝,发现反应时间和输入拷贝数之间存在线性关系。我们的方法克服了通常繁琐的引物设计,并通过使用具有链置换活性的聚合酶扩展了等温扩增方法的范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a82/5550438/bcce13448717/41598_2017_8067_Fig1_HTML.jpg

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