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番茄基因的共表达分析及功能富集共表达模块中基因协同表达的实验验证。

Coexpression analysis of tomato genes and experimental verification of coordinated expression of genes found in a functionally enriched coexpression module.

机构信息

Kazusa DNA Research Institute, 2-6-7 Kazusa-Kamatari, Kisarazu 292-0818, Japan.

出版信息

DNA Res. 2010 Apr;17(2):105-16. doi: 10.1093/dnares/dsq002. Epub 2010 Feb 3.

DOI:10.1093/dnares/dsq002
PMID:20130013
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2853382/
Abstract

Gene-to-gene coexpression analysis is a powerful approach to infer the function of uncharacterized genes. Here, we report comprehensive identification of coexpression gene modules of tomato (Solanum lycopersicum) and experimental verification of coordinated expression of module member genes. On the basis of the gene-to-gene correlation coefficient calculated from 67 microarray hybridization data points, we performed a network-based analysis. This facilitated the identification of 199 coexpression modules. A gene ontology annotation search revealed that 75 out of the 199 modules are enriched with genes associated with common functional categories. To verify the coexpression relationships between module member genes, we focused on one module enriched with genes associated with the flavonoid biosynthetic pathway. A non-enzyme, non-transcription factor gene encoding a zinc finger protein in this module was overexpressed in S. lycopersicum cultivar Micro-Tom, and expression levels of flavonoid pathway genes were investigated. Flavonoid pathway genes included in the module were up-regulated in the plant overexpressing the zinc finger gene. This result demonstrates that coexpression modules, at least the ones identified in this study, represent actual transcriptional coordination between genes, and can facilitate the inference of tomato gene function.

摘要

基因间共表达分析是一种推断未鉴定基因功能的强大方法。在这里,我们报告了番茄(Solanum lycopersicum)共表达基因模块的综合鉴定,并对模块成员基因的协调表达进行了实验验证。基于从 67 个微阵列杂交数据点计算的基因间相关系数,我们进行了基于网络的分析。这促成了 199 个共表达模块的识别。基因本体论注释搜索表明,199 个模块中有 75 个富集了与常见功能类别相关的基因。为了验证模块成员基因之间的共表达关系,我们集中研究了一个富含与类黄酮生物合成途径相关基因的模块。该模块中一个非酶、非转录因子基因编码一个锌指蛋白,在番茄栽培品种 Micro-Tom 中过表达,研究了类黄酮途径基因的表达水平。该模块中包含的类黄酮途径基因在过表达锌指基因的植物中上调。这一结果表明,共表达模块(至少是本研究中鉴定的那些)代表基因之间的实际转录协调,并且可以促进番茄基因功能的推断。

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