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利用质谱法对磷酸化蛋白质和磷酸化蛋白质组进行表征。

Characterizing phosphoproteins and phosphoproteomes using mass spectrometry.

作者信息

Goshe Michael B

机构信息

Department of Molecular and Structural Biochemistry, North Carolina State University, 128 Polk Hall, Campus Box 7622, Raleigh, NC 27695-7622, USA.

出版信息

Brief Funct Genomic Proteomic. 2006 Feb;4(4):363-76. doi: 10.1093/bfgp/eli007. Epub 2006 Feb 7.

Abstract

The reversible phosphorylation of proteins plays a major role in many vital cellular processes by modulating protein function and transmitting signals within cellular pathways and networks. Because phosphorylation is dynamic and the sites of modification cannot be predicted by an organism's genome, proteomic measurements are required to identify sites of and changes in the phosphorylation state of proteins. The low stoichiometry of phosphorylation sites that accompany the multifarious nature of protein phosphorylation in biological systems continues to challenge the dynamic range of present mass spectrometry (MS) technologies and proteomic measurements, despite the preponderance of research and analytical methods devoted to this area. This review addresses some of the strategies and limitations involving the use of MS to map and quantify changes in protein phosphorylation sites for samples that range from a single protein to an entire proteome, and presents several compelling reasons as to why comprehensive phosphorylation site analysis has proven to be so elusive without a hypothesis-driven experimental approach to elicit more meaningful and confident results.

摘要

蛋白质的可逆磷酸化在许多重要的细胞过程中发挥着主要作用,它通过调节蛋白质功能以及在细胞途径和网络中传递信号来实现。由于磷酸化是动态的,且修饰位点无法通过生物体的基因组进行预测,因此需要进行蛋白质组学测量来识别蛋白质磷酸化状态的位点和变化。尽管在这一领域有大量的研究和分析方法,但生物系统中蛋白质磷酸化的多样性所伴随的磷酸化位点的低化学计量比,仍然对当前质谱(MS)技术和蛋白质组学测量的动态范围构成挑战。本综述探讨了一些涉及使用质谱来绘制和量化从单一蛋白质到整个蛋白质组的样品中蛋白质磷酸化位点变化的策略和局限性,并提出了几个令人信服的理由,解释了为什么在没有假设驱动的实验方法来获得更有意义和可靠结果的情况下,全面的磷酸化位点分析如此难以实现。

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