College of Veterinary Medicine, Yangzhou University, Yangzhou 225012, China.
Center of Animal Disease Control and Prevention, Songjiang District, Shanghai 201600, China.
Genes (Basel). 2024 Feb 7;15(2):215. doi: 10.3390/genes15020215.
Polymerase chain reaction (PCR) is a widely used technique in gene expression analysis, diagnostics, and various molecular biology applications. However, the accuracy and sensitivity of PCR can be compromised by primer-template mismatches, potentially leading to erroneous results. In this study, we strategically designed 111 primer-template combinations with varying numbers, types, and locations of mismatches to meticulously assess their impact on qPCR performance while two distinctly different types of DNA polymerases were used. Notably, when a single-nucleotide mismatch occurred at the 3' end of the primer, we observed significant decreases in the analytical sensitivity (0-4%) with Invitrogen™ Platinum™ DNA Polymerase High Fidelity, while the analytical sensitivity remained unchanged with Takara Ex Hot Start Version DNA Polymerase. Leveraging these findings, we designed a highly specific PCR to amplify while effectively avoiding the genetically close . Through elucidating the critical interplay between types of DNA polymerases and primer-template mismatches, this research provides valuable insights for improving PCR accuracy and performance. These findings have important implications for researchers aiming to achieve robust qPCR results in various molecular biology applications.
聚合酶链式反应(PCR)是基因表达分析、诊断和各种分子生物学应用中广泛使用的技术。然而,引物-模板错配会影响 PCR 的准确性和灵敏度,可能导致错误的结果。在这项研究中,我们设计了 111 对引物-模板组合,具有不同数量、类型和位置的错配,以仔细评估它们在使用两种截然不同的 DNA 聚合酶时对 qPCR 性能的影响。值得注意的是,当引物的 3' 端发生单个核苷酸错配时,我们观察到 Invitrogen™ Platinum™ DNA 聚合酶高保真度的分析灵敏度显著降低(0-4%),而 Takara Ex Hot Start Version DNA 聚合酶的分析灵敏度保持不变。利用这些发现,我们设计了一个高度特异性的 PCR 来扩增 ,同时有效地避免了遗传上相近的 。通过阐明不同类型的 DNA 聚合酶和引物-模板错配之间的关键相互作用,这项研究为提高 PCR 的准确性和性能提供了有价值的见解。这些发现对于旨在在各种分子生物学应用中获得稳健的 qPCR 结果的研究人员具有重要意义。