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KRAS genotyping by digital PCR combined with melting curve analysis

机译:数字PCR结合熔解曲线分析进行KRAS基因分型

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摘要

Digital PCR (dPCR) has been developed as a method that can quantify nucleic acids more sensitively than real-time PCR. However, dPCR exhibits large fluctuations in the fluorescence intensity of the compartment, resulting in low accuracy. The main cause is most likely due to insufficient PCR. In this study, we proposed a new method that combines dPCR with melting curve analysis and applied that method to KRAS genotyping. Since the melting temperature (Tm) of the PCR product hardly depends on the amplification efficiency, genotyping accuracy is improved by using the Tm value. The results showed that the peaks of the distribution of the Tm values of DNA in the wells were 68.7, 66.3, and 62.6 °C for wild-type KRAS, the G12R mutant, and the G12D mutant, respectively, and the standard deviation of the Tm values was 0.2 °C for each genotype. This result indicates that the proposed method is capable of discriminating between the wild-type sequence and the two mutants. To the best of our knowledge, this is the first demonstration of the genotyping of single mutations by combining melting curve analysis and dPCR. The application of this approach could be useful for the quantification and genotyping of cancer-related genes in low-abundance samples.
机译:已经开发出数字PCR(dPCR)作为一种比实时PCR更灵敏地定量核酸的方法。然而,dPCR在隔室的荧光强度上表现出较大的波动,导致准确性低。主要原因可能是PCR不足。在这项研究中,我们提出了一种将dPCR与熔解曲线分析相结合的新方法,并将该方法应用于KRAS基因分型。由于PCR产物的解链温度(Tm)几乎不取决于扩增效率,因此通过使用Tm值可以提高基因分型的准确性。结果表明,对于野生型KRAS,G12R突变体和G12D突变体,孔中DNA的Tm值分布的峰值分别为68.7、66.3和62.6 C,并且标准偏差为每种基因型的Tm值为0.2°C。该结果表明,所提出的方法能够区分野生型序列和两个突变体。据我们所知,这是通过融合解链曲线分析和dPCR对单个突变进行基因分型的第一个证明。该方法的应用对于低丰度样品中癌症相关基因的定量和基因分型可能有用。

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