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The structure of human GALNS reveals the molecular basis for mucopolysaccharidosis IV A

机译:人类GALNS的结构揭示了粘多糖贮积症IV A的分子基础

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Lysosomal enzymes catalyze the breakdown of macromolecules in the cell. In humans, loss of activity of a lysosomal enzyme leads to an inherited metabolic defect known as a lysosomal storage disorder. The human lysosomal enzyme galactosamine-6-sulfatase (GALNS, also known as N-acetylgalactosamine-6- sulfatase and GalN6S; E.C. 3.1.6.4) is deficient in patients with the lysosomal storage disease mucopolysaccharidosis IV A (also known as MPS IV A and Morquio A). Here, we report the three-dimensional structure of human GALNS, determined by X-ray crystallography at 2.2 ? resolution. The structure reveals a catalytic gem diol nucleophile derived from modification of a cysteine side chain. The active site of GALNS is a large, positively charged trench suitable for binding polyanionic substrates such as keratan sulfate and chondroitin-6-sulfate. Enzymatic assays on the insect-cell-expressed human GALNS indicate activity against synthetic substrates and inhibition by both substrate and product. Mapping 120 MPS IV A missense mutations onto the structure reveals that a majority of mutations affect the hydrophobic core of the structure, indicating that most MPS IV A cases result from misfolding of GALNS. Comparison of the structure of GALNS to paralogous sulfatases shows a wide variety of active-site geometries in the family but strict conservation of the catalytic machinery. Overall, the structure and the known mutations establish the molecular basis for MPS IV A and for the larger MPS family of diseases.
机译:溶酶体酶催化细胞中大分子的分解。在人类中,溶酶体酶活性的丧失导致被称为溶酶体贮积症的遗传性代谢缺陷。人溶酶体酶半乳糖胺-6-硫酸酯酶(GALNS,也称为N-乙酰半乳糖胺-6-硫酸酯酶和GalN6S; EC 3.1.6.4)在溶酶体贮积病粘多糖贮积症IV A(也称为MPS IV A和Morquio A)。在这里,我们报告了人GALNS的三维结构,该结构由X射线晶体学在2.2?解析度。该结构揭示了衍生自半胱氨酸侧链修饰的催化的宝石二醇亲核体。 GALNS的活性位点是一个大的带正电荷的沟槽,适合于结合聚阴离子基质,例如硫酸角质素和6-硫酸软骨素。在昆虫细胞表达的人GALNS上的酶促测定表明,其对合成底物具有活性,并且对底物和产物均具有抑制作用。将120个MPS IV A错义突变映射到该结构上表明,大多数突变影响该结构的疏水核心,这表明大多数MPS IV A病例是由GALNS错折叠引起的。 GALNS与旁系硫酸酯酶的结构比较表明,该家族中活性位点的几何形状多种多样,但严格保留了催化机制。总体而言,结构和已知突变为MPS IV A和较大的MPS疾病家族奠定了分子基础。

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