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Click-PEGylation - a mobility shift approach to assess the redox state of cysteines in candidate proteins

机译:Click-pEGylation - 一种迁移率变换方法,用于评估候选蛋白中半胱氨酸的氧化还原状态

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摘要

The redox state of cysteine thiols is critical for protein function. Whereas cysteines play an important role in the maintenance of protein structure through the formation of internal disulfides, their nucleophilic thiol groups can become oxidatively modified in response to diverse redox challenges and thereby function in signalling and antioxidant defences. These oxidative modifications occur in response to a range of agents and stimuli, and can lead to the existence of multiple redox states for a given protein. To assess the role(s) of a protein in redox signalling and antioxidant defence, it is thus vital to be able to assess which of the multiple thiol redox states are present and to investigate how these alter under different conditions. While this can be done by a range of mass spectrometric-based methods, these are time-consuming, costly, and best suited to study abundant proteins or to perform an unbiased proteomic screen. One approach that can facilitate a targeted assessment of candidate proteins, as well as proteins that are low in abundance or proteomically challenging, is by electrophoretic mobility shift assays. Redox-modified cysteine residues are selectively tagged with a large group, such as a polyethylene glycol (PEG) polymer, and then the proteins are separated by electrophoresis followed by immunoblotting, which allows the inference of redox changes based on band shifts. However, the applicability of this method has been impaired by the difficulty of cleanly modifying protein thiols by large PEG reagents. To establish a more robust method for redox-selective PEGylation, we have utilised a Click chemistry approach, where free thiol groups are first labelled with a reagent modified to contain an alkyne moiety, which is subsequently Click-reacted with a PEG molecule containing a complementary azide function. This strategy can be adapted to study reversibly reduced or oxidised cysteines. Separation of the thiol labelling step from the PEG conjugation greatly facilitates the fidelity and flexibility of this approach. Here we show how the Click-PEGylation technique can be used to interrogate the redox state of proteins.
机译:半胱氨酸硫醇的氧化还原状态对于蛋白质功能至关重要。半胱氨酸通过内部二硫键的形成在维持蛋白质结构中起着重要作用,而它们的亲核硫醇基团可以响应各种氧化还原挑战而被氧化修饰,从而在信号传导和抗氧化防御中发挥作用。这些氧化修饰响应于一系列试剂和刺激而发生,并且可以导致给定蛋白质存在多个氧化还原状态。为了评估蛋白质在氧化还原信号传导和抗氧化防御中的作用,因此至关重要的是,能够评估存在多个硫醇氧化还原状态中的哪个,并研究它们在不同条件下如何变化。尽管这可以通过多种基于质谱的方法来完成,但这些方法既耗时,昂贵又最适合研究丰富的蛋白质或进行无偏蛋白质组学筛选。一种可以促进对候选蛋白质以及丰度低或蛋白质组学具有挑战性的蛋白质进行靶向评估的方法是通过电泳迁移率变动分析。氧化还原修饰的半胱氨酸残基被一大批分子(例如聚乙二醇(PEG)聚合物)选择性标记,然后通过电泳和免疫印迹的方法分离蛋白质,从而可以推断基于带位移的氧化还原变化。但是,该方法的适用性由于难以通过大型PEG试剂干净地修饰蛋白硫醇而受到损害。为了建立一种更可靠的氧化还原选择性PEG化方法,我们采用了Click化学方法,其中首先用修饰为含有炔基的试剂标记游离的巯基,然后再将其与包含互补基团的PEG分子进行Click-反应。叠氮化物功能。该策略可适用于研究可逆还原或氧化的半胱氨酸。巯基标记步骤与PEG结合的分离极大地促进了这种方法的保真度和灵活性。在这里,我们展示了Click-PEGylation技术如何用于讯问蛋白质的氧化还原状态。

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