Baginsky Sacha
Institute of Plant Sciences, Swiss Federal Institute of Technology, Universitätsstrasse 2, 8092 Zurich, Switzerland.
Mass Spectrom Rev. 2009 Jan-Feb;28(1):93-120. doi: 10.1002/mas.20183.
Proteomics is an essential source of information about biological systems because it generates knowledge about the concentrations, interactions, functions, and catalytic activities of proteins, which are the major structural and functional determinants of cells. In the last few years significant technology development has taken place both at the level of data analysis software and mass spectrometry hardware. Conceptual progress in proteomics has made possible the analysis of entire proteomes at previously unprecedented density and accuracy. New concepts have emerged that comprise quantitative analyses of full proteomes, database-independent protein identification strategies, targeted quantitative proteomics approaches with proteotypic peptides and the systematic analysis of an increasing number of posttranslational modifications at high temporal and spatial resolution. Although plant proteomics is making progress, there are still several analytical challenges that await experimental and conceptual solutions. With this review I will highlight the current status of plant proteomics and put it into the context of the aforementioned conceptual progress in the field, illustrate some of the plant-specific challenges and present my view on the great opportunities for plant systems biology offered by proteomics.
蛋白质组学是了解生物系统的重要信息来源,因为它能提供有关蛋白质浓度、相互作用、功能和催化活性的知识,而蛋白质是细胞主要的结构和功能决定因素。在过去几年中,数据分析软件和质谱硬件层面都取得了重大技术进展。蛋白质组学的概念性进步使得以前所未有的密度和准确性分析整个蛋白质组成为可能。出现了一些新概念,包括全蛋白质组的定量分析、与数据库无关的蛋白质鉴定策略、使用蛋白质型肽的靶向定量蛋白质组学方法以及在高时空分辨率下对越来越多的翻译后修饰进行系统分析。尽管植物蛋白质组学正在取得进展,但仍有一些分析挑战有待通过实验和概念性解决方案来解决。在这篇综述中,我将突出植物蛋白质组学的现状,并将其置于该领域上述概念性进展的背景下,阐述一些植物特有的挑战,并就蛋白质组学为植物系统生物学带来的巨大机遇发表我的看法。