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Characterization of Human Aspartoacylase:The Brain Enzyme Responsible for Canavan Disease

机译:人类天冬氨酸酰化酶的表征:负责Canavan疾病的脑酶

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Aspartoacylase catalyzes the deacetylation of N-acetylaspartic acid (NAA) to produce acetate and L-aspartate and is the only brain enzyme that has been shown to effectively metabolize NAA.Although the exact role of this enzymatic reaction has not yet been completely elucidated,the metabolism of NAA appears to be necessary in the formation of myelin lipids,and defects in this enzyme lead to Canavan disease,a fatal neurological disorder.The low catalytic activity and inherent instability observed with the Escherichia coli-expressed form of aspartoacylase suggested the need for a suitable eukaryotic expression system that would be capable of producing a fully functional,mature enzyme.Human aspartoacylase has now been successfully expressed in Pichia pastoris.While the expression yields are lower than in E.coli,the purified enzyme is significantly more stable.This enzyme form has the same substrate specificity but is 150-fold more active than the E.coli-expressed enzyme.The molecular weight of the purified enzyme,measured by mass spectrometry,is higher than predicted,suggesting the presence of some post-translational modifications.Deglycosylation of aspartoacylase or mutation at the glycosylation site causes decreased enzyme stability and diminished catalytic activity.A carbohydrate component has been removed and characterized by mass spectrometry.In addition to this carbohydrate moiety,the enzyme has also been shown to contain one zinc atom per subunit.Chelation studies to remove the zinc result in a reversible loss of catalytic activity,thus establishing aspartoacylase as a zinc metalloenzyme.
机译:天冬氨酸酰化酶催化N-乙酰基天冬氨酸(NAA)脱乙酰基化以生成乙酸盐和L-天冬氨酸,并且是唯一被证明可有效代谢NAA的脑酶。 NAA的代谢似乎是形成髓磷脂脂质所必需的,并且该酶的缺陷会导致致命的神经系统疾病Canavan病。以大肠杆菌表达的天冬酰胺酰酶形式的低催化活性和固有的不稳定性提示需要一种合适的真核表达系统,能够产生功能完整的成熟酶。现已在巴斯德毕赤酵母中成功表达了人类天冬氨酸酰化酶。虽然表达量比大肠杆菌低,但纯化后的酶更加稳定。酶形式具有相同的底物特异性,但活性比表达大肠杆菌的酶高150倍。通过质谱法测定的纯化酶的t高于预期值,表明存在一些翻译后修饰。天冬氨酸酶的去糖基化或糖基化位点的突变导致酶稳定性下降,催化活性降低。碳水化合物成分已被去除除该碳水化合物部分外,该酶还显示每个亚基含有一个锌原子。螯合研究除去锌会导致可逆的催化活性损失,从而将天冬氨酸酰基转移酶确立为锌金属酶。

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