Webb-Robertson Bobbie-Jo M, Cannon William R
Department of Computational Biology & Bioinformatics, Pacific Northwest National Laboratory, P.O. BOX 999, Richland, WA 99352, USA.
Brief Bioinform. 2007 Sep;8(5):304-17. doi: 10.1093/bib/bbm023. Epub 2007 Jun 20.
Mass spectrometry offers a high-throughput approach to quantifying the proteome associated with a biological sample and hence has become the primary approach of proteomic analyses. Computation is tightly coupled to this advanced technological platform as a required component of not only peptide and protein identification, but quantification and functional inference, such as protein modifications and interactions. Proteomics faces several key computational challenges such as identification of proteins and peptides from tandem mass spectra as well as their quantitation. In addition, the application of proteomics to systems biology requires understanding the functional proteome, including how the dynamics of the cell change in response to protein modifications and complex interactions between biomolecules. This review presents an overview of recently developed methods and their impact on these core computational challenges currently facing proteomics.
质谱分析法提供了一种高通量方法来定量与生物样品相关的蛋白质组,因此已成为蛋白质组学分析的主要方法。计算与这个先进的技术平台紧密相连,它不仅是肽和蛋白质鉴定的必要组成部分,也是定量和功能推断(如蛋白质修饰和相互作用)的必要组成部分。蛋白质组学面临着几个关键的计算挑战,例如从串联质谱中鉴定蛋白质和肽以及对它们进行定量。此外,将蛋白质组学应用于系统生物学需要了解功能蛋白质组,包括细胞动力学如何响应蛋白质修饰以及生物分子之间的复杂相互作用而发生变化。本综述概述了最近开发的方法及其对蛋白质组学目前面临的这些核心计算挑战的影响。