Edwards Alistair V G, Cordwell Stuart J, White Melanie Y
Discipline of Pathology, School of Medical Sciences, The University of Sydney, New South Wales, Australia.
Circ Cardiovasc Genet. 2011 Oct;4(5):575. doi: 10.1161/CIRCGENETICS.110.957787.
Protein phosphorylation underpins major cellular processes including energy metabolism, signal transduction, excitation-contraction coupling, apoptosis, and cell survival mechanisms and is thus critical to the myocyte. Targeted approaches, whereby a handful of phosphoproteins are investigated, can suffer from a relatively narrow view of cellular phosphorylation. In contrast, recent technical advances have allowed for the comprehensive documentation of phosphorylation events in complex biological environments, providing a deeper view of the "phosphoproteome." A global, high-throughput characterization of the myocardial phosphoproteome, however, has not yet been achieved. Efficient analysis of phosphorylated proteins and their roles in a dynamic cellular environment requires high-resolution strategies that can identify, localize, and quantify many thousands of phosphorylation sites in a single experiment. Such an approach requires specific enrichment and purification techniques, developed to align with high-end instrumentation for analysis. Cutting-edge phosphoproteomics is no longer restricted to gel-based technology, instead focusing on affinity enrichment prior to liquid chromatography and mass spectrometry. We will describe the best current methods and how they can be applied, as well as the challenges associated with them. We also present current phosphoproteomic investigations in the myocyte and its subcompartments. Although the techniques and instrumentation required to achieve the goal of a myocardial phosphoprotein catalog in physiological and diseased states are highly specialized, the potential biological insight provided by such an approach makes phosphoproteomics an important new avenue of investigation for the cardiovascular researcher.
蛋白质磷酸化是包括能量代谢、信号转导、兴奋-收缩偶联、细胞凋亡和细胞存活机制在内的主要细胞过程的基础,因此对心肌细胞至关重要。针对少数磷酸化蛋白进行研究的靶向方法,可能会因对细胞磷酸化的认识相对狭隘而存在局限性。相比之下,最近的技术进步使得在复杂生物环境中全面记录磷酸化事件成为可能,从而能更深入地了解“磷酸化蛋白质组”。然而,尚未实现对心肌磷酸化蛋白质组的全面、高通量表征。要在动态细胞环境中高效分析磷酸化蛋白及其作用,需要高分辨率策略,以便在单个实验中识别、定位和定量数千个磷酸化位点。这种方法需要特定的富集和纯化技术,这些技术是为配合高端分析仪器而开发的。前沿的磷酸化蛋白质组学不再局限于基于凝胶的技术,而是侧重于在液相色谱和质谱分析之前进行亲和富集。我们将描述当前最佳的方法及其应用方式,以及与之相关的挑战。我们还介绍了目前在心肌细胞及其亚细胞结构中的磷酸化蛋白质组学研究。尽管在生理和疾病状态下实现心肌磷酸化蛋白目录这一目标所需的技术和仪器高度专业化,但这种方法所提供的潜在生物学见解使磷酸化蛋白质组学成为心血管研究人员的一个重要新研究途径。