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用于鉴定差异表达基因的分析方法和荟萃分析

Methods of Analysis and Meta-Analysis for Identifying Differentially Expressed Genes.

作者信息

Kontou Panagiota I, Pavlopoulou Athanasia, Bagos Pantelis G

机构信息

Department of Computer Science and Biomedical Informatics, University of Thessaly, Lamia, Greece.

International Biomedicine and Genome Institute (iBG-Izmir), Dokuz Eylul University, Izmir, 35340, Turkey.

出版信息

Methods Mol Biol. 2018;1793:183-210. doi: 10.1007/978-1-4939-7868-7_12.

Abstract

Microarray approaches are widely used high-throughput techniques to assess simultaneously the expression of thousands of genes under certain conditions and study the effects of certain treatments, diseases, and developmental stages. The traditional way to perform such experiments is to design oligonucleotide hybridization probes that correspond to specific genes and then measure the expression of the genes in order to determine which of them are up- or down-regulated compared to a condition that is used as a control. Hitherto, individual experiments cannot capture the bigger picture of how a biological system works and, therefore, data integration from multiple experimental studies and external data repositories is necessary to understand the function of genes and their expression patterns under certain conditions. Therefore, the development of methods for handling, integrating, comparing, interpreting and visualizing microarray data is necessary. The selection of an appropriate method for analysing microarray datasets is not an easy task. In this chapter, we provide an overview of the various methods developed for microarray data analysis, as well as suggestions for choosing the appropriate method for microarray meta-analysis.

摘要

微阵列方法是广泛使用的高通量技术,用于在特定条件下同时评估数千个基因的表达,并研究某些治疗、疾病和发育阶段的影响。进行此类实验的传统方法是设计与特定基因相对应的寡核苷酸杂交探针,然后测量这些基因的表达,以确定与用作对照的条件相比,哪些基因上调或下调。迄今为止,单个实验无法全面了解生物系统的运作方式,因此,有必要整合来自多个实验研究和外部数据存储库的数据,以了解特定条件下基因的功能及其表达模式。因此,开发处理、整合、比较、解释和可视化微阵列数据的方法是必要的。选择合适的方法分析微阵列数据集并非易事。在本章中,我们概述了为微阵列数据分析开发的各种方法,以及为微阵列荟萃分析选择合适方法的建议。

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