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偏最小二乘判别分析在表达蛋白质组学二维差异凝胶研究中的应用。

Application of partial least squares discriminant analysis to two-dimensional difference gel studies in expression proteomics.

作者信息

Karp Natasha A, Griffin Julian L, Lilley Kathryn S

机构信息

Department of Biochemistry, University of Cambridge, Cambridge CB2 1QW, UK.

出版信息

Proteomics. 2005 Jan;5(1):81-90. doi: 10.1002/pmic.200400881.

Abstract

Two-dimensional difference gel electrophoresis (DIGE) is a tool for measuring changes in protein expression between samples involving pre-electrophoretic labeling ith cyanine dyes. In multi-gel experiments, univariate statistical tests have been used to identify differential expression between sample types by looking for significant changes in spot volume. Multivariate statistical tests, which look for correlated changes between sample types, provide an alternate approach for identifying spots with differential expression. Partial least squares-discriminant analysis (PLS-DA), a multivariate statistical approach, was combined with an iterative threshold process to identify which protein spots had the greatest contribution to the model, and compared to univariate test for three datasets. This included one dataset where no biological difference was expected. The novel multivariate approach, detailed here, represents a method to complement the univariate approach in identification of differentially expressed protein spots. This new approach has the advantages of reduced risk of false-positives and the identification of spots that are significantly altered in terms of correlated expression rather than absolute expression values.

摘要

二维差异凝胶电泳(DIGE)是一种用于测量涉及用花青染料进行预电泳标记的样品之间蛋白质表达变化的工具。在多凝胶实验中,单变量统计测试已被用于通过寻找斑点体积的显著变化来识别样品类型之间的差异表达。多变量统计测试,即寻找样品类型之间的相关变化,为识别差异表达的斑点提供了另一种方法。偏最小二乘判别分析(PLS-DA),一种多变量统计方法,与迭代阈值过程相结合,以识别哪些蛋白质斑点对模型贡献最大,并与三个数据集的单变量测试进行比较。这包括一个预期没有生物学差异的数据集。本文详细介绍的这种新颖的多变量方法,代表了一种在识别差异表达蛋白质斑点时补充单变量方法的方法。这种新方法具有降低假阳性风险的优点,并且能够识别在相关表达而非绝对表达值方面有显著变化的斑点。

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