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首页> 外文期刊>Gene: An International Journal Focusing on Gene Cloning and Gene Structure and Function >Comparisons of isomiR patterns and classification performance using the rank-based MANOVA and 10-fold cross-validation
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Comparisons of isomiR patterns and classification performance using the rank-based MANOVA and 10-fold cross-validation

机译:使用基于秩的MANOVA和10倍交叉验证比较isoomiR模式和分类性能

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摘要

Next generation sequencing technology has identified a series of miRNA variants (named "isomiRs"), which might be associated with cancer progression. We provide a new strategy to reanalyze the miR-seq datasets through a view of the isomiR spectrum. Firstly, differentially expressed (DE) isomiRs were detected with the DESeq algorithm based on negative binomial distribution. Secondly, the rank-based MANOVA was adopted to compare the isomiR patterns between normal and tumor tissues. Moreover, a comprehensive survey on classification performance of three features was conducted, including the logistic regression, k-nearest neighbors and Random Forest. Finally, functional enrichment analysis was performed with the putative targets of specific isomiRs to elucidate their biological functions. Furthermore, the methods were applied to the downloaded miR-seq datasets of breast invasive carcinoma from TCGA. We found that the expression levels of multiple isomiRs derived from the same miRNA locus showed significant inconsistency between normal and tumor samples. In most cases, logistic regression with multiple DE isomiRs was superior to the others, with highest AUC and lowest AIC. Similarly, DE isomiRs performed best in the average accuracy of standard classifiers. Integrated targets were significantly enriched in some cancer-related pathways, including MAPK signaling pathway, and focal adhesion. Collectively, we could recommend the rank-based MANOVA for comparing different isomiR patterns, and further investigation on isomiRs needs to be considered in miRNA sequencing research.
机译:下一代测序技术已经鉴定出一系列可能与癌症进展相关的miRNA变体(称为“ isomiRs”)。我们提供了一种通过isomiR谱图重新分析miR-seq数据集的新策略。首先,使用基于负二项分布的DESeq算法检测差异表达(DE)的isoomiR。其次,采用基于秩的MANOVA来比较正常组织和肿瘤组织之间的isomir模式。此外,对三个特征的分类性能进行了全面调查,包括逻辑回归,k最近邻和随机森林。最后,利用特定的isoomiRs的假定目标进行功能富集分析,以阐明其生物学功能。此外,该方法已应用于从TCGA下载的乳腺浸润癌的miR-seq数据集。我们发现,源自相同miRNA基因座的多个isomiRs的表达水平在正常样品与肿瘤样品之间显示出明显的不一致。在大多数情况下,具有多个DE等值线的logistic回归优于其他方法,具有最高的AUC和最低的AIC。同样,DE等值线在标准分类器的平均准确性方面表现最佳。整合的靶标显着丰富了一些与癌症相关的途径,包括MAPK信号传导途径和粘着斑。总之,我们可以推荐基于等级的MANOVA来比较不同的isomiR模式,并且在miRNA测序研究中需要考虑对isomiR的进一步研究。

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