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Single-Site Oxidation Cysteine 108 to Cysteine Sulfinic Acid in d-Amino Acid Oxidase from Trigonopsis variabilis and Its Structural and Functional Consequences

机译:单点氧化半胱氨酸108到半胱氨酸亚硫酸在三角龙虾的d-氨基酸氧化酶中及其结构和功能后果

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摘要

One of the primary sources of enzyme instability is protein oxidative modification triggering activity loss or denaturation. We show here that the side chain of Cys108 is the main site undergoing stress-induced oxidation in Trigonopsis variabilis d-amino acid oxidase, a flavoenzyme employed industrially for the conversion of cephalosporin C. High-resolution anion-exchange chromatography was used to separate the reduced and oxidized protein forms, which constitute, in a molar ratio of about 3:1, the active biocatalyst isolated from the yeast. Comparative analysis of their tryptic peptides by electrospray tandem mass spectrometry allowed unequivocal assignment of the modification as the oxidation of Cys108 into cysteine sulfinic acid. Cys108 is likely located on a surface-exposed protein region within the flavin adenine dinucleotide (FAD) binding domain, but remote from the active center. Its oxidized side chain was remarkably stable in solution, thus enabling the relative biochemical characterization of native and modified enzyme forms. The oxidation of Cys108 causes a global conformational response that affects the protein environment of the FAD cofactor. In comparison with the native enzyme, it results in a fourfold-decreased specific activity, reflecting a catalytic efficiency for reduction of dioxygen lowered by about the same factor, and a markedly decreased propensity to aggregate under conditions of thermal denaturation. These results open up unprecedented routes for stabilization of the oxidase and underscore the possible significance of protein chemical heterogeneity for biocatalyst function and stability.
机译:酶不稳定性的主要来源之一是蛋白质氧化修饰,引发活性丧失或变性。我们在这里显示Cys108的侧链是三角果变种d-氨基酸氧化酶(一种工业上用于转化头孢菌素C的黄酮酶)中应力诱导的氧化的主要位点。高分辨率阴离子交换色谱法用于分离还原和氧化的蛋白质形式,以约3:1的摩尔比构成从酵母菌中分离出的活性生物催化剂。通过电喷雾串联质谱对它们的胰蛋白酶肽进行比较分析,可以明确修饰该修饰,因为Cys108氧化为半胱氨酸亚磺酸。 Cys108可能位于黄素腺嘌呤二核苷酸(FAD)结合域内的表面暴露蛋白区域,但远离活性中心。它的氧化侧链在溶液中非常稳定,因此可以对天然和修饰的酶形式进行相对生化表征。 Cys108的氧化会导致整体构象反应,从而影响FAD辅因子的蛋白质环境。与天然酶相比,它的比活性降低了四倍,反映了降低双氧的催化效率降低了大约相同的因素,并且在热变性条件下的聚集倾向显着降低。这些结果为氧化酶的稳定化开辟了前所未有的途径,并强调了蛋白质化学异质性对于生物催化剂功能和稳定性的可能意义。

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