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OPTIMIR a novel algorithm for integrating available genome-wide genotype data into miRNA sequence alignment analysis

机译:OPTIMIR一种将可用的全基因组基因型数据整合到miRNA序列比对分析中的新颖算法

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摘要

Next-generation sequencing is an increasingly popular and efficient approach to characterize the full set of microRNAs (miRNAs) present in human biosamples. MiRNAs’ detection and quantification still remain a challenge as they can undergo different posttranscriptional modifications and might harbor genetic variations (polymiRs) that may impact on the alignment step. We present a novel algorithm, OPTIMIR, that incorporates biological knowledge on miRNA editing and genome-wide genotype data available in the processed samples to improve alignment accuracy. OPTIMIR was applied to 391 human plasma samples that had been typed with genome-wide genotyping arrays. OPTIMIR was able to detect genotyping errors, suggested the existence of novel miRNAs and highlighted the allelic imbalance expression of polymiRs in heterozygous carriers. OPTIMIR is written in python, and freely available on the GENMED website (http://www.genmed.fr/index.php/fr/) and on Github (github.com/FlorianThibord/OptimiR).
机译:下一代测序是一种越来越流行和有效的方法,用于表征人类生物样品中存在的全套microRNA(miRNA)。 MiRNA的检测和定量仍然面临挑战,因为它们可能会经历不同的转录后修饰,并可能包含可能影响比对步骤的遗传变异(polymiR)。我们提出了一种新颖的算法OPTIMIR,该算法结合了关于miRNA编辑的生物学知识和已处理样品中可用的全基因组基因型数据,以提高比对准确性。 OPTIMIR被应用于391个人类血浆样品,这些样品已经用全基因组基因分型阵列进行了分型。 OPTIMIR能够检测基因分型错误,提示存在新型miRNA,并强调了杂合子携带者中polymiRs的等位基因表达失衡。 OPTIMIR用python编写,可以在GENMED网站(http://www.genmed.fr/index.php/fr/)和Github(github.com/FlorianThibord/OptimiR)上免费获得。

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