School of Pharmaceutical Science, Sun Yat-sen University, Guangzhou, 510006, PR China.
Sun Yat-Sen Memorial Hospital, Sun Yat-Sen University, Guangzhou, 510120, PR China.
Talanta. 2020 Dec 1;220:121432. doi: 10.1016/j.talanta.2020.121432. Epub 2020 Jul 24.
Single nucleotide polymorphism (SNP) analysis based on allele-specific polymerase chain reaction (AS-PCR) is a relatively effective and economical method compared with other genotyping technologies such as DNA sequencing, DNA hybridization and isothermal amplification strategies. But AS-PCR is limited by its labor-intensive optimization of reaction parameters and time-consuming result assessment. In this study, we put forward a novel idea of data processing to address this problem. SNP analysis was accomplished by AS-PCR with endpoint electrochemical detection. For each sample, two separate reactions were run simultaneously with two sets of allele-specific primers (wild-type primers for W system and mutant primers for M system). We measured their redox current signals on screen-printed electrodes once AS-PCR finished and calculated the difference value of current signals between two systems to determine the genotyping result. Based on the difference value of fluorescent signals, real-time fluorescent PCR was used to study reaction parameters in AS-PCR. With screened parameters, we obtained the genotyping results within 50 min. 36 hair-root samples from volunteers were analyzed by our method and their genotypes of ALDH2 gene (encoding aldehyde dehydrogenase 2) were totally identical with data from commercialized sequencing. Our work first employed difference value between two reaction systems to differentiate allele and provided a novel idea of data processing in AS-PCR method. It is able to promote the quick analysis of SNP in the fields of health monitor, disease precaution, and personalized diagnosis and treatment.
基于等位基因特异性聚合酶链反应(AS-PCR)的单核苷酸多态性(SNP)分析与 DNA 测序、DNA 杂交和等温扩增策略等其他基因分型技术相比,是一种相对有效和经济的方法。但 AS-PCR 受到其反应参数的劳动密集型优化和耗时的结果评估的限制。在这项研究中,我们提出了一种新的数据处理思路来解决这个问题。SNP 分析是通过终点电化学检测的 AS-PCR 完成的。对于每个样本,同时运行两个单独的反应,使用两套等位基因特异性引物(用于 W 系统的野生型引物和用于 M 系统的突变型引物)。一旦 AS-PCR 完成,我们就在丝网印刷电极上测量它们的氧化还原电流信号,并计算两个系统之间电流信号的差值,以确定基因分型结果。基于荧光信号的差值,实时荧光 PCR 用于研究 AS-PCR 中的反应参数。利用筛选出的参数,我们在 50 分钟内获得了基因分型结果。我们用这种方法分析了 36 个志愿者的发根样本,他们的 ALDH2 基因(编码醛脱氢酶 2)的基因型与商业化测序数据完全一致。我们的工作首次采用两个反应系统之间的差值来区分等位基因,并为 AS-PCR 方法中的数据处理提供了一种新的思路。它能够促进 SNP 在健康监测、疾病预防、个性化诊断和治疗等领域的快速分析。