Chin Wai Hoe, Sun Yi, Høgberg Jonas, Hung Tran Quang, Wolff Anders, Bang Dang Duong
National Food Institute, Technical University of Denmark, Mørkhøj Bygade 19, 2860, Søborg, Denmark.
Department of Micro- and Nanotechnology, Technical University of Denmark, 2800, Kongens Lyngby, Denmark.
Anal Bioanal Chem. 2017 Apr;409(10):2715-2726. doi: 10.1007/s00216-017-0216-y. Epub 2017 Feb 11.
Solid-phase PCR (SP-PCR) has attracted considerable interest in different research fields since it allows parallel DNA amplification on the surface of a solid substrate. However, the applications of SP-PCR have been hampered by the low efficiency of the solid-phase amplification. In order to increase the yield of the solid-phase amplification, we studied various parameters including the length, the density, as well as the annealing position of the solid support primer. A dramatic increase in the signal-to-noise (S/N) ratio was observed when increasing the length of solid support primers from 45 to 80 bp. The density of the primer on the surface was found to be important for the S/N ratio of the SP-PCR, and the optimal S/N was obtained with a density of 1.49 × 10 molecules/mm. In addition, the use of solid support primers with a short overhang at the 5' end would help improve the S/N ratio of the SP-PCR. With optimized conditions, SP-PCR can achieve amplification efficiency comparable to conventional PCR, with a limit of detection of 1.5 copies/μl (37.5 copies/reaction). These improvements will pave the way for wider applications of SP-PCR in various fields such as clinical diagnosis, high-throughput DNA sequencing, and single-nucleotide polymorphism analysis. Graphical abstract Schematic representation of solid-phase PCR.
固相聚合酶链式反应(SP-PCR)因其能够在固体基质表面进行平行DNA扩增,在不同研究领域引起了广泛关注。然而,固相扩增效率低下阻碍了SP-PCR的应用。为了提高固相扩增的产量,我们研究了各种参数,包括固相支持引物的长度、密度以及退火位置。当固相支持引物的长度从45个碱基对增加到80个碱基对时,观察到信噪比(S/N)显著提高。发现引物在表面的密度对SP-PCR的信噪比很重要,密度为1.49×10个分子/mm时获得了最佳信噪比。此外,使用5'端有短突出端的固相支持引物有助于提高SP-PCR的信噪比。在优化条件下,SP-PCR可实现与传统PCR相当的扩增效率,检测限为1.5拷贝/微升(37.5拷贝/反应)。这些改进将为SP-PCR在临床诊断、高通量DNA测序和单核苷酸多态性分析等各个领域的更广泛应用铺平道路。图形摘要:固相聚合酶链式反应的示意图。