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利用生物正交化学阐明磷脂的蛋白-脂质结合相互作用和其他生物学功能。

Exploiting bioorthogonal chemistry to elucidate protein-lipid binding interactions and other biological roles of phospholipids.

机构信息

Department of Chemistry, the University of Tennessee, Knoxville, Tennessee 37996, USA.

出版信息

Acc Chem Res. 2011 Sep 20;44(9):686-98. doi: 10.1021/ar200060y. Epub 2011 May 6.

Abstract

Lipids play critical roles in a litany of physiological and pathophysiological events, often through the regulation of protein function. These activities are generally difficult to characterize, however, because the membrane environment in which lipids operate is very complex. Moreover, lipids have a diverse range of biological functions, including the recruitment of proteins to membrane surfaces, actions as small-molecule ligands, and covalent protein modification through lipidation. Advancements in the development of bioorthogonal reactions have facilitated the study of lipid activities by providing the ability to selectively label probes bearing bioorthogonal tags within complex biological samples. In this Account, we discuss recent efforts to harness the beneficial properties of bioorthogonal labeling strategies in elucidating lipid function. Initially, we summarize strategies for the design and synthesis of lipid probes bearing bioorthogonal tags. This discussion includes issues to be considered when deciding where to incorporate the tag, particularly the presentation within a membrane environment. We then present examples of the application of these probes to the study of lipid activities, with a particular emphasis on the elucidation of protein-lipid binding interactions. One such application involves the development of lipid and membrane microarray analysis as a high-throughput platform for characterizing protein-binding interactions. Here we discuss separate strategies for binding analysis involving the immobilization of either whole liposomes or simplified isolated lipid structures. In addition, we present the different strategies that have been used to derivatize membrane surfaces via bioorthogonal reactions, either by using this chemistry to produce functionalized lipid scaffolds that can be incorporated into membranes or through direct modification of intact membrane surfaces. We then provide an overview of the development of lipid activity probes to label and identify proteins that bind to a particular lipid from complex biological samples. This process involves the strategy of activity-based proteomics, in which proteins are collectively labeled on the basis of function (in this case, ligand binding) rather than abundance. We summarize strategies for designing and applying lipid activity probes that allow for the selective labeling and characterization of protein targets. Additionally, we briefly comment on applications other than studying protein-lipid binding. These include the generation of new lipid structures with beneficial properties, labeling of tagged lipids in live cells for studies involving fluorescence imaging, elucidation of covalent protein lipidation, and identification of biosynthetic lipid intermediates. These applications illustrate the early phase of the promising field of applying bioorthogonal chemistry to the study of lipid function.

摘要

脂质在众多生理和病理生理事件中起着至关重要的作用,通常通过调节蛋白质功能来实现。然而,这些活动通常很难进行表征,因为脂质作用的膜环境非常复杂。此外,脂质具有广泛的生物学功能,包括将蛋白质募集到膜表面、作为小分子配体的作用以及通过脂质化进行共价蛋白质修饰。生物正交反应的发展进步通过提供选择性标记带有生物正交标签的探针的能力,从而促进了对脂质活性的研究,这些探针存在于复杂的生物样品中。在本报告中,我们讨论了利用生物正交标记策略阐明脂质功能的最新进展。首先,我们总结了带有生物正交标签的脂质探针的设计和合成策略。这部分讨论包括在决定何处引入标签时需要考虑的问题,特别是在膜环境中的呈现方式。然后,我们介绍了这些探针在研究脂质活性中的应用实例,特别强调了阐明蛋白质-脂质结合相互作用。其中一种应用涉及脂质和膜微阵列分析的开发,作为一种用于表征蛋白质结合相互作用的高通量平台。在这里,我们讨论了两种独立的结合分析策略,分别涉及全脂质体或简化的分离脂质结构的固定化。此外,我们还介绍了通过生物正交反应对膜表面进行衍生化的不同策略,这些策略既可以通过使用该化学方法来制备可以掺入膜中的功能化脂质支架,也可以通过直接修饰完整的膜表面来实现。然后,我们概述了开发脂质活性探针的情况,这些探针用于从复杂的生物样品中标记和鉴定与特定脂质结合的蛋白质。这一过程涉及基于活性的蛋白质组学策略,其中根据功能(在这种情况下是配体结合)而不是丰度来对蛋白质进行集体标记。我们总结了设计和应用脂质活性探针的策略,这些策略允许对蛋白质靶标进行选择性标记和鉴定。此外,我们还简要讨论了除了研究蛋白质-脂质结合之外的其他应用。这些应用包括生成具有有益性质的新型脂质结构、对活细胞中标记的标签脂质进行荧光成像研究、阐明共价蛋白质脂质化以及鉴定生物合成脂质中间体。这些应用说明了将生物正交化学应用于脂质功能研究的这一有前景的领域的早期阶段。

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