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Finding Unexpected Patterns in Microarray Data

机译:在微阵列数据中查找意外模式

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摘要

We describe the performance of a protocol based on the sequential application of unsupervised and supervised methods to analyze microarray samples defined by a combination of factors. Correspondence analysis is used to visualize the emerging patterns of three set of novel or previously published data: photoreceptor mutants of Arabidopsis grown under different light/dark conditions, Arabidopsis exposed to different types of biotic and abiotic stress, and human acute leukemia. We find, for instance, that light has a dramatic effect on plants despite the absence of the four major photoreceptors, that bacterial-, fungal-, and viral-induced responses converge at later stages of attack, and that sample preparation procedures used in different hospitals have large effects on transcriptome patterns. We use canonical discriminant analysis to identify the genes associated with these patters and hierarchical clustering to find groups of coregulated genes that are easily visualized in a second round of correspondence analysis and ordered tables. The unconventional combination of standard descriptive multivariate methods offers a previously unrecognized tool to uncover unexpected information.
机译:我们基于无监督和有监督的方法的顺序应用来描述协议的性能,以分析由因素组合定义的微阵列样品。对应分析用于显示三组新的或先前发表的数据的新兴模式:在不同光照/黑暗条件下生长的拟南芥感光受体突变体,暴露于不同类型的生物和非生物胁迫下的拟南芥以及人类急性白血病。例如,我们发现,尽管缺少四种主要的光感受器,光仍然对植物产生了巨大影响,细菌,真菌和病毒诱导的反应在攻击的后期会聚,并且样品制备程序用于不同的环境。医院对转录组模式有很大影响。我们使用规范判别分析来识别与这些模式和层次聚类相关的基因,以找到可在第二轮对应分析和有序表中轻松查看的成核基因组。标准描述性多变量方法的非常规组合提供了以前无法识别的工具,可以发现意外信息。

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