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Predicting the success of primer extension genotyping assays using statistical modeling - art. no. e131

机译:使用统计建模预测引物延伸基因分型分析的成功-art。没有。 e131

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Using an empirical panel of more than 20 000 single base primer extension (SNP-IT) assays we have developed a set of statistical scores for evaluating and rank ordering various parameters of the SNP-IT reaction to facilitate high-throughput assay primer design with improved likelihood of success. Each score predicts either signal magnitude from primer extension or signal noise caused by mispriming of primers and structure of the PCR product. All scores have been shown to correlate with the success/ failure rate of the SNP-IT reaction, based on analysis of assay results. A logistic regression analysis was applied to combine all scored parameters into one measure predicting the overall success/failure rate of a given SNP marker. Three training sets for different types of SNP-IT reaction, each containing about 22 000 SNP markers, were used to assign weights to each score and optimize the prediction of the combined measure. c-Statistics of 0.69, 0.77 and 0.72 were achieved for three training sets. This new statistical prediction can be used to improve primer design for the SNP-IT reaction and evaluate the probability of genotyping success for a given SNP based on analysis of the surrounding genomic sequence.
机译:使用超过2万个单碱基引物延伸(SNP-IT)分析的经验小组,我们开发了一套统计评分,用于评估和排序SNP-IT反应的各种参数,以促进高通量分析引物设计的改进。成功的可能性。每个分数都可以根据引物的延伸预测信号强度,也可以预测由于引物的错误引物和PCR产物的结构而引起的信号噪声。根据分析结果的分析,所有得分均与SNP-IT反应的成功/失败率相关。应用逻辑回归分析将所有计分的参数合并为一个度量,以预测给定SNP标记的总体成功/失败率。使用三个针对不同类型SNP-IT反应的训练集,每个训练集包含约22 000个SNP标记,为每个分数分配权重,并优化组合度量的预测。三个训练集的c统计量分别为0.69、0.77和0.72。这种新的统计预测可用于改进SNP-IT反应的引物设计,并基于对周围基因组序列的分析,评估给定SNP的基因分型成功的可能性。

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