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BALL-SNPgp-from genetic variants toward computational diagnostics

机译:BALL-SNPgp-从遗传变异转向计算诊断

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In medical research, it is crucial to understand the functional consequences of genetic alterations, for example, non-synonymous single nucleotide variants (nsSNVs). NsSNVs are known to be causative for several human diseases. However, the genetic basis of complex disorders such as diabetes or cancer comprises multiple factors. Methods to analyze putative synergetic effects of multiple such factors, however, are limited. Here, we concentrate on nsSNVs and present BALL-SNPgp, a tool for structural and functional characterization of nsSNVs, which is aimed to improve pathogenicity assessment in computational diagnostics. Based on annotated SNV data, BALL-SNPgp creates a three-dimensional visualization of the encoded protein, collects available information from different resources concerning disease relevance and other functional annotations, performs cluster analysis, predicts putative binding pockets and provides data on known interaction sites.
机译:在医学研究中,至关重要的是了解遗传改变的功能后果,例如非同义的单核苷酸变体(nsSNV)。已知NsSNV可导致多种人类疾病。但是,诸如糖尿病或癌症等复杂疾病的遗传基础包括多个因素。但是,分析多个此类因素的假定协同效应的方法是有限的。在这里,我们重点介绍nsSNV,并介绍BALL-SNPgp,这是nsSNV的结构和功能表征工具,旨在改善计算诊断中的致病性评估。基于注释的SNV数据,BALL-SNPgp创建编码蛋白质的三维可视化,从有关疾病相关性和其他功能注释的不同资源收集可用信息,执行聚类分析,预测推定的结合口袋,并提供已知相互作用位点的数据。

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