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The Proteome-Wide Potential for Reversible Covalency at Cysteine

机译:半胱氨酸可逆共价的蛋白质组潜力

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摘要

Reversible covalency, achieved with, for instance, highly electron-deficient olefins, offers a compelling strategy to design chemical probes and drugs that benefit from the sustained target engagement afforded by irreversible compounds, while avoiding permanent protein modification. Reversible covalency has mainly been evaluated for cysteine residues in individual kinases and the broader potential for this strategy to engage cysteines across the proteome remains unexplored. Herein, we describe a mass-spectrometry-based platform that integrates gel filtration with activity-based protein profiling to assess cysteine residues across the human proteome for both irreversible and reversible interactions with small-molecule electrophiles. Using this method, we identify numerous cysteine residues from diverse protein classes that are reversibly engaged by cyanoacrylamide fragment electrophiles, revealing the broad potential for reversible covalency as a strategy for chemical-probe discovery.
机译:例如高电子缺乏烯烃实现的可逆共价提供了令人令人讨厌的策略来设计从不可逆化合物所提供的持续目标接合中受益的化学探针和药物,同时避免永久蛋白质改性。 在单个激酶中的半胱氨酸残基主要评估可逆共价,并且这种策略在蛋白质组中映射半胱氨酸的更广泛的潜力仍未探索。 在此,我们描述了一种基于质谱的基础平台,其将凝胶过滤与基于活性的蛋白质分析相结合,以评估人类蛋白质组中的半胱氨酸残基,用于与小分子化学物质的不可逆和可逆相互作用。 使用该方法,我们鉴定了来自多种蛋白质类别的多种半胱氨酸残基,该蛋白质类是由氰基丙烯酰胺片段电泳可逆地接合的,揭示可逆共价的广泛潜力作为化学探测发现的策略。

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