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相关校正因子在微阵列跨平台重现性研究中的应用。

Application of a correlation correction factor in a microarray cross-platform reproducibility study.

作者信息

Archer Kellie J, Dumur Catherine I, Taylor G Scott, Chaplin Michael D, Guiseppi-Elie Anthony, Grant Geraldine, Ferreira-Gonzalez Andrea, Garrett Carleton T

机构信息

Department of Biostatistics, Virginia Commonwealth University, 730 East Broad St,, Richmond, VA, USA.

出版信息

BMC Bioinformatics. 2007 Nov 15;8:447. doi: 10.1186/1471-2105-8-447.

Abstract

BACKGROUND

Recent research examining cross-platform correlation of gene expression intensities has yielded mixed results. In this study, we demonstrate use of a correction factor for estimating cross-platform correlations.

RESULTS

In this paper, three technical replicate microarrays were hybridized to each of three platforms. The three platforms were then analyzed to assess both intra- and cross-platform reproducibility. We present various methods for examining intra-platform reproducibility. We also examine cross-platform reproducibility using Pearson's correlation. Additionally, we previously developed a correction factor for Pearson's correlation which is applicable when X and Y are measured with error. Herein we demonstrate that correcting for measurement error by estimating the "disattenuated" correlation substantially improves cross-platform correlations.

CONCLUSION

When estimating cross-platform correlation, it is essential to thoroughly evaluate intra-platform reproducibility as a first step. In addition, since measurement error is present in microarray gene expression data, methods to correct for attenuation are useful in decreasing the bias in cross-platform correlation estimates.

摘要

背景

近期有关基因表达强度跨平台相关性的研究结果不一。在本研究中,我们展示了一种用于估计跨平台相关性的校正因子的应用。

结果

本文中,三个技术重复的微阵列与三个平台中的每一个进行杂交。然后对这三个平台进行分析,以评估平台内和跨平台的可重复性。我们提出了各种用于检查平台内可重复性的方法。我们还使用Pearson相关性来检查跨平台可重复性。此外,我们之前开发了一种适用于X和Y存在测量误差时的Pearson相关性校正因子。在此我们证明,通过估计“去衰减”相关性来校正测量误差可显著改善跨平台相关性。

结论

在估计跨平台相关性时,首先全面评估平台内可重复性至关重要。此外,由于微阵列基因表达数据存在测量误差,校正衰减的方法有助于减少跨平台相关性估计中的偏差。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69da/2211756/d8604470315b/1471-2105-8-447-1.jpg

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