首页> 外文OA文献 >Phytochelatin synthase, a dipeptidyltransferase that undergoes multisite acylation with γ-glutamylcysteine during catalysis. Stoichiometric and site-directed mutagenic analysis of arabidopsis thaliana PCS1-catalyzed phytochelatin synthesis
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Phytochelatin synthase, a dipeptidyltransferase that undergoes multisite acylation with γ-glutamylcysteine during catalysis. Stoichiometric and site-directed mutagenic analysis of arabidopsis thaliana PCS1-catalyzed phytochelatin synthesis

机译:植物螯合酶合酶,一种二肽基转移酶,在催化过程中与γ-谷氨酰半胱氨酸进行多位酰化。拟南芥PCS1催化植物螯合素合成的化学计量和定点诱变分析

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摘要

Phytochelatin (PC) synthase has been assumed to be a γ-glutamylcysteine dipeptidyl transpeptidase (EC 2.3.2.15) and, more recently, as exemplified by analyses of the immunopurified recombinant enzyme from Arabidopsis thaliana (AtPCS1-FLAG), has been shown to catalyze a PC synthetic reaction with kinetics that approximates a bisubstrate-substituted enzyme mechanism in which millimolar concentrations of free GSH and micromolar concentrations of heavy metal·GSH thiolates (e.g. cadmium·GS2) or millimolar concentrations of S-alkylglutathiones serve as cosubstrates. Here, we show, by direct analyses of the stoichiometry of AtPCS1-FLAG-catalyzed PC synthesis, the kinetics and stoichiometry of acylation of the enzyme and release of free glycine from γ-Glu-Cys donors, and the effects of the Cys-to-Ser or -Ala and Ser-to-Ala substitution of conserved residues in the catalytic N-terminal half of the enzyme, that PC synthase is indeed a dipeptidyltransferase that undergoes γ-Glu-Cys acylation at two sites during catalysis, one of which, in accord with a cysteine protease model, likely corresponds to or is at least tightly coupled with Cys56. The identity of the second site of enzyme modification remains to be determined, but it is distinguishable from the first Cys56-dependent site, which is amenable to γ-Glu-Cys acylation by free GSH, because its acylation not only depends on the provision of Cd2+ or GSH with a blocked, S-alkylated thiol group, but is also necessary for net PC synthesis. We conclude that des-Gly-PCs are not generated as an immediate by-product, but rather that the enzyme catalyzes a dipeptidyl transfer reaction in which some of the energy liberated upon cleavage of the Cys–Gly bonds of the γ-Glu-Cys donors in the first phase of the catalytic cycle is conserved through the formation of a two site-substituted γ-Glu-Cys acyl-enzyme intermediate whose hydrolysis provides the energy required for the formation of the new peptide bond required for the extension of PC chain length by one γ-Glu-Cys repeat per catalytic cycle.
机译:植物螯合素(PC)合酶被认为是一种γ-谷氨酰半胱氨酸二肽基转肽酶(EC 2.3.2.15),最近,如对拟南芥免疫纯化重组酶(AtPCS1-FLAG)的分析所证明的那样,该酶已被证明具有催化作用。具有动力学的PC合成反应,其近似于双底物取代的酶机制,其中游离摩尔浓度的游离GSH和微摩尔浓度的重金属·GSH硫醇盐(例如镉·GS2)或摩尔浓度的S-烷基谷胱甘肽用作共底物。在这里,我们通过直接分析AtPCS1-FLAG催化的PC合成的化学计量,酰化反应的动力学和化学计量以及从γ-Glu-Cys供体释放游离甘氨酸的动力学和化学计量,以及Cys-to的影响-Ser或-Ala以及该酶催化N末端一半中保守残基的Ser-to-Ala取代,表明PC合酶确实是一种二肽基转移酶,在催化过程中的两个位点都经过γ-Glu-Cys酰化,其中之一根据半胱氨酸蛋白酶模型,可能对应于或至少紧密与Cys56紧密结合。酶修饰的第二个位点的身份尚待确定,但可与第一个Cys56依赖性位点区分开,后者可通过游离GSH进行γ-Glu-Cys酰化,因为其酰化不仅取决于Cd2 +或GSH带有封闭的S-烷基化硫醇基,但对于净PC合成也是必需的。我们得出的结论是,des-Gly-PC不是作为直接副产物生成的,而是该酶催化二肽基转移反应,其中某些能量在裂解γ-Glu-Cys的Cys-Gly键后释放催化循环第一阶段的供体通过形成两个位点取代的γ-Glu-Cys酰基酶中间体而得以保留,该中间体的水解提供了延伸PC链所需的新肽键形成所需的能量每个催化循环的长度重复一个γ-Glu-Cys。

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