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Profiling serine hydrolase activities in complex proteomes

机译:分析复杂蛋白质组中的丝氨酸水解酶活性

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Serine hydrolases represent one of the largest and most diverse families of enzymes in higher eukaryotes, comprising numerous proteases, lipases, esterases, and amidases. The activities of many serine hydrolases are tightly regulated by posttranslational mechanisms, limiting the suitability of standard genomics and proteomics methods for the functional characterization of these enzymes. To facilitate the global analysis of seine hydrolase activities in complex proteomes, a biotinylated fluorophosphonate (FP-biotin) was recently synthesized and shown to serve as an activity-based probe for several members of this enzyme family. However, the extent to which FP-biotin reacts with the complete repertoire of active seine hydrolases present in a given proteome remains largely unexplored. Herein, we describe the synthesis and utility of a variant of FP-biotin in which the agent’s hydrophobic alkyl chain linker was replaced by a more hydrophilic poly(ethylene glycol) moiety (FP-peg-biotin). When incubated with both soluble and membrane proteomes for extended reaction times, FP-biotin and FP-peg-biotin generated similar “maximal coverage” seine hydrolase activity profiles. However, kinetic analyses revealed that several seine hydrolases reacted at different rates with each FP agent. These rate differences were exploited in studies that used the biotinylated FPs to examine the target selectivity of reversible serine hydrolase inhibitors directly in complex proteomes. Finally, a general method for the avidin-based affinity isolation of FP-biotinylated proteins was developed, permitting the rapid and simultaneous identification of multiple seine peptidases, lipases, and esterases. Collectively, these studies demonstrate that chemical probes such as the biotinylated FPs can greatly accelerate both the functional characterization and molecular identification of active enzymes in complex proteomes.
机译:丝氨酸水解酶代表高等真核生物中最大和最多样化的酶家族之一,其包含许多蛋白酶,脂肪酶,酯酶和酰胺酶。许多丝氨酸水解酶的活性受到翻译后机制的严格调节,从而限制了标准基因组学和蛋白质组学方法对这些酶的功能表征的适用性。为了促进复杂蛋白质组中围网水解酶活性的全局分析,最近合成了生物素化的氟代膦酸酯(FP-biotin),并显示出可作为该酶家族几个成员的基于活性的探针。但是,FP-生物素与给定蛋白质组中存在的活性塞纳水解酶的完整组成部分反应的程度仍在很大程度上尚待探索。本文中,我们描述了FP-生物素变体的合成和实用性,其中该试剂的疏水性烷基链接头被更具亲水性的聚乙二醇部分(FP-peg-生物素)取代。当与可溶性和膜蛋白质组一起孵育延长的反应时间时,FP-生物素和FP-peg-生物素产生相似的“最大覆盖”围网水解酶活性谱。但是,动力学分析表明,几种围网水解酶与每种FP试剂的反应速率不同。这些速率差异在使用生物素化FP来直接检查复杂蛋白质组中可逆丝氨酸水解酶抑制剂的目标选择性的研究中得到了利用。最后,开发了一种基于亲和素的FP-生物素化蛋白亲和力分离的通用方法,可以快速,同时鉴定多种围网肽酶,脂肪酶和酯酶。总而言之,这些研究表明,化学探针(例如生物素化的FP)可以大大加速复杂蛋白质组中活性酶的功能表征和分子鉴定。

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