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A Multiparametric Computational Algorithm for Comprehensive Assessment of Genetic Mutations in Mucopolysaccharidosis Type IIIA (Sanfilippo Syndrome)

机译:综合评估IIIA型粘多糖贮积病(Sanfilippo综合征)遗传突变的多参数计算算法。

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摘要

Mucopolysaccharidosis type IIIA (MPS-IIIA, Sanfilippo syndrome) is a Lysosomal Storage Disease caused by cellular deficiency of N-sulfoglucosamine sulfohydrolase (SGSH). Given the large heterogeneity of genetic mutations responsible for the disease, a comprehensive understanding of the mechanisms by which these mutations affect enzyme function is needed to guide effective therapies. We developed a multiparametric computational algorithm to assess how patient genetic mutations in SGSH affect overall enzyme biogenesis, stability, and function. 107 patient mutations for the SGSH gene were obtained from the Human Gene Mutation Database representing all of the clinical mutations documented for Sanfilippo syndrome. We assessed each mutation individually using ten distinct parameters to give a comprehensive predictive score of the stability and misfolding capacity of the SGSH enzyme resulting from each of these mutations. The predictive score generated by our multiparametric algorithm yielded a standardized quantitative assessment of the severity of a given SGSH genetic mutation toward overall enzyme activity. Application of our algorithm has identified SGSH mutations in which enzymatic malfunction of the gene product is specifically due to impairments in protein folding. These scores provide an assessment of the degree to which a particular mutation could be treated using approaches such as chaperone therapies. Our multiparametric protein biogenesis algorithm advances a key understanding in the overall biochemical mechanism underlying Sanfilippo syndrome. Importantly, the design of our multiparametric algorithm can be tailored to many other diseases of genetic heterogeneity for which protein misfolding phenotypes may constitute a major component of disease manifestation.
机译:IIIA型粘多糖贮积病(MPS-IIIA,Sanfilippo综合征)是一种溶酶体贮积病,由N-磺基葡萄糖胺硫酸水解酶(SGSH)的细胞缺乏引起。鉴于造成该疾病的遗传突变存在很大的异质性,因此需要对这些突变影响酶功能的机制有一个全面的了解,以指导有效的治疗方法。我们开发了一种多参数计算算法来评估SGSH中的患者遗传突变如何影响整体酶的生物发生,稳定性和功能。从人类基因突变数据库获得了SGSH基因的107个患者突变,代表了Sanfilippo综合征记录的所有临床突变。我们使用十个不同的参数分别评估了每个突变,以给出由这些突变中的每一个引起的SGSH酶的稳定性和错折叠能力的综合预测评分。由我们的多参数算法生成的预测得分对给定的SGSH基因突变对总体酶活性的严重性进行了标准化的定量评估。我们算法的应用已经确定了SGSH突变,其中基因产物的酶促功能异常是由于蛋白质折叠受损所致。这些分数评估了使用伴侣疗法等方法可以治疗特定突变的程度。我们的多参数蛋白质生物发生算法对Sanfilippo综合征的整体生化机制有重要的了解。重要的是,我们的多参数算法的设计可以适合于许多其他遗传异质性疾病,这些疾病的蛋白质错误折叠表型可能构成疾病表现的主要组成部分。

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