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Analytical methods for inferring functional effects of single base pair substitutions in human cancers.

机译:推断人类癌症中单碱基对取代的功能作用的分析方法。

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摘要

Cancer is a genetic disease that results from a variety of genomic alterations. Identification of some of these causal genetic events has enabled the development of targeted therapeutics and spurred efforts to discover the key genes that drive cancer formation. Rapidly improving sequencing and genotyping technology continues to generate increasingly large datasets that require analytical methods to identify functional alterations that deserve additional investigation. This review examines statistical and computational approaches for the identification of functional changes among sets of single-nucleotide substitutions. Frequency-based methods identify the most highly mutated genes in large-scale cancer sequencing efforts while bioinformatics approaches are effective for independent evaluation of both non-synonymous mutations and polymorphisms. We also review current knowledge and tools that can be utilized for analysis of alterations in non-protein-coding genomic sequence.
机译:癌症是由多种基因组改变导致的遗传疾病。对其中一些因果遗传事件的鉴定使靶向治疗的发展成为可能,并促使人们发现了驱动癌症形成的关键基因。快速改进的测序和基因分型技术继续产生越来越大的数据集,这些数据集需要分析方法来识别功能改变,值得进一步研究。这项审查审查统计和计算方法,以识别单核苷酸取代组之间的功能变化。基于频率的方法可识别大规模癌症测序工作中突变程度最高的基因,而生物信息学方法可有效地独立评估非同义突变和多态性。我们还审查了当前的知识和工具,可用于分析非蛋白质编码基因组序列的变化。

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