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Validation of oligonucleotide microarray data using microfluidic low-density arrays: a new statistical method to normalize real-time RT-PCR data

机译:使用微流体低密度阵列验证寡核苷酸微阵列数据:一种标准化实时RT-PCR数据的新统计方法

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摘要

Profiling studies using microarrays to measure messenger RNA (mRNA) expression frequently identify long lists of differentially expressed genes. Differential expression is often validated using real-time reverse transcription PCR (RT-PCR) assays. In conventional real-time RT-PCR assays, expression is normalized to a control, or housekeeping gene. However, no single housekeeping gene can be used for all studies. We used TaqMan Low-Density Arrays, a medium-throughput method for real-time RT-PCR using microfluidics to simultaneously assay the expression of 96 genes in nine samples of chronic lymphocytic leukemia (CLL). We developed a novel statistical method, based on linear mixed-effects models, to analyze the data. This method automatically identifies the genes whose expression does not vary significantly over the samples, allowing them to be used to normalize the remaining genes. We compared the normalized real-time RT-PCR values with results obtained from Affymetrix Hu133A GeneChip oligonucleotide microarrays. We found that real-time RT-PCR using TaqMan Low-Density Arrays yielded reproducible measurements over seven orders of magnitude. Our model identified numerous genes that were expressed at nearly constant levels, including the housekeeping genes PGK1, GAPD, GUSB, TFRC, and 18S rRNA. After normalizing to the geometric mean of the unvarying genes, the correlation between real-time RT-PCR and microarrays was high for genes that were moderately expressed and varied across samples.
机译:使用微阵列测量信使RNA(mRNA)表达的分析研究通常会发现一长串差异表达基因。通常使用实时逆转录PCR(RT-PCR)分析来验证差异表达。在常规的实时RT-PCR分析中,将表达相对于对照或管家基因进行标准化。但是,不能将单个管家基因用于所有研究。我们使用TaqMan低密度阵列,一种使用微流控技术进行实时RT-PCR的中通量方法,同时测定了9个慢性淋巴细胞性白血病(CLL)样品中96个基因的表达。我们基于线性混合效应模型开发了一种新颖的统计方法来分析数据。该方法可自动识别其表达在样品中变化不明显的基因,从而可将其用于归一化其余基因。我们将标准化的实时RT-PCR值与从Affymetrix Hu133A GeneChip寡核苷酸微阵列获得的结果进行了比较。我们发现使用TaqMan低密度阵列的实时RT-PCR可以在七个数量级上产生可重复的测量结果。我们的模型鉴定了许多以几乎恒定水平表达的基因,包括管家基因PGK1,GAPD,GUSB,TFRC和18S rRNA。在对不变基因的几何平均值进行归一化后,实时RT-PCR和微阵列之间的相关性对于在样品中适度表达和变化的基因而言是很高的。

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