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Glycosylation is crucial for a proper catalytic site organization in human glucocerebrosidase

机译:糖基化对于人类葡萄糖脑苷脂酶中正确的催化位点组织至关重要

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摘要

Gaucher disease, an autosomal recessive disorder, is caused by a deficiency of glucocerebrosidase (GCase) enzyme, a peripheral membrane-associated glycoprotein that hydrolyses glucosylceramide in lysosomes. Glycosylation is essential for the development of a catalytically active enzyme, specifically in the first site, located at Asn19. However, both the molecular basis of the relevance of N-glycosylation over GCase activity and the effects of glycosylation over its structure and dynamics are still not fully understood. Thus, the present work evaluated GCase enzyme in increasing glycosylation content using triplicate unbiased molecular dynamics simulations. Accordingly, the N-linked glycan chains caused local conformational stabilization effects over the protein, as well as in regions flanking the enzyme catalytic dyad. In the case of the Asn19-linked glycan, it also occurred around region 438-444, where one of the most prevalent GCase mutations is found. Markedly, an increasing catalytic dyad organization was related to increasing glycosylation contents, offering the first atomic-level explanation for the experimental observation that GCase activity is controlled by glycosylation, especially at Asn19.
机译:Gaucher病是一种常染色体隐性遗传疾病,由葡萄糖脑苷脂酶(GCase)酶的缺乏引起,GCase是一种与外周膜相关的糖蛋白,可水解溶酶体中的糖基神经酰胺。糖基化对于开发具有催化活性的酶至关重要,特别是在Asn19的第一个位点。然而,仍然没有完全理解N-糖基化与GCase活性相关的分子基础以及糖基化对其结构和动力学的影响。因此,本研究使用三重无偏分子动力学模拟评估了增加糖基化含量的GCase酶。因此,N-连接的聚糖链对蛋白质以及在酶催化二元体侧翼的区域引起局部构象稳定作用。就Asn19连接的聚糖而言,它也发生在438-444区域附近,在该区域发现了最普遍的GCase突变之一。明显地,增加的催化二聚体组织与增加的糖基化含量有关,为实验观察到的GCase活性受糖基化控制,特别是在Asn19上提供了第一个原子水平的解释。

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