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Evaluation of methods for oligonucleotide array data via quantitative real-time PCR

机译:通过定量实时PCR评估寡核苷酸阵列数据的方法

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摘要

BackgroundThere are currently many different methods for processing and summarizing probe-level data from Affymetrix oligonucleotide arrays. It is of great interest to validate these methods and identify those that are most effective. There is no single best way to do this validation, and a variety of approaches is needed. Moreover, gene expression data are collected to answer a variety of scientific questions, and the same method may not be best for all questions. Only a handful of validation studies have been done so far, most of which rely on spike-in datasets and focus on the question of detecting differential expression. Here we seek methods that excel at estimating relative expression. We evaluate methods by identifying those that give the strongest linear association between expression measurements by array and the "gold-standard" assay.Quantitative reverse-transcription polymerase chain reaction (qRT-PCR) is generally considered the "gold-standard" assay for measuring gene expression by biologists and is often used to confirm findings from microarray data. Here we use qRT-PCR measurements to validate methods for the components of processing oligo array data: background adjustment, normalization, mismatch adjustment, and probeset summary. An advantage of our approach over spike-in studies is that methods are validated on a real dataset that was collected to address a scientific question.
机译:背景技术当前有许多不同的方法可用于处理和汇总Affymetrix寡核苷酸阵列的探针水平数据。验证这些方法并确定最有效的方法非常重要。没有唯一的最佳方法来进行此验证,因此需要多种方法。而且,收集基因表达数据来回答各种科学问题,而相同的方法可能并非对所有问题都最佳。到目前为止,仅进行了少数验证研究,其中大多数研究依赖于尖峰数据集,并且侧重于检测差异表达的问题。在这里,我们寻求在估计相对表达方面出色的方法。我们通过鉴定那些在阵列表达测量和“金标准”测定之间给出最强线性关联的方法来评估方法。定量逆转录聚合酶链反应(qRT-PCR)通常被认为是“金标准”测定方法由生物学家进行基因表达,通常用于确认微阵列数据的发现。在这里,我们使用qRT-PCR测量来验证处理寡核苷酸阵列数据的组成部分的方法:背景调整,归一化,错配调整和探针集汇总。我们的方法相对于尖峰研究的优势在于,方法是在收集来解决科学问题的真实数据集上进行验证的。

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