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首页> 外文期刊>Methods: A Companion to Methods in Enzymology >Integrating gene and protein expression data: pattern analysis and profile mining.
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Integrating gene and protein expression data: pattern analysis and profile mining.

机译:整合基因和蛋白质表达数据:模式分析和谱图挖掘。

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摘要

Proteomics and functional genomics are emerging new research fields devoted to the study of the entire collection of proteins and mRNA transcripts (collectively known as gene products) that define a biological system. DNA microarrays are now a popular platform for measuring changes in messenger RNA transcript levels on a genome-wide scale, while gel-free shotgun profiling methods based on tandem mass spectrometry are increasingly being used to determine the identity, modification states, and relative abundance of large numbers of proteins. By defining the behavior of entire biological pathways and networks under various physiological states, these studies aim to extend traditional reductionist molecular genetic approaches regarding the biological roles of the vast array of uncharacterized gene products. A key goal is to determine how the information encoded by the myriad of expressed gene products is integrated at the molecular, cellular, and even whole organism level to create the dynamic biochemical processes and complex physiological controls that sustain life. While comparison of the complementary information contained in proteomic and mRNA data sets poses considerable analytical challenges, these efforts should provide added insight into the fundamental mechanisms underlying physiology, development, and the emergence of disease. Here, we outline several analytical approaches, methods, and tools that have proven to be helpful in the face of this important challenge.
机译:蛋白质组学和功能基因组学是新兴的新兴研究领域,致力于研究定义生物学系统的整个蛋白质和mRNA转录本(统称为基因产物)。 DNA微阵列现已成为在全基因组规模上测量信使RNA转录水平变化的流行平台,而基于串联质谱的无凝胶shot弹枪轮廓分析方法正越来越多地用于确定其身份,修饰状态和相对丰度。大量的蛋白质。通过定义在各种生理状态下整个生物途径和网络的行为,这些研究旨在扩展关于大量未表征基因产物的生物学作用的传统还原论分子遗传学方法。一个关键目标是确定如何将无数表达基因产物编码的信息在分子,细胞乃至整个生物体水平上整合在一起,以创建维持生命的动态生化过程和复杂的生理控制。虽然蛋白质组学和mRNA数据集中包含的补充信息的比较构成了巨大的分析挑战,但这些努力应提供对生理,发育和疾病出现的基本机制的更多了解。在这里,我们概述了几种分析方法,方法和工具,这些方法,方法和工具在面对这一重要挑战时被证明是有用的。

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