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Combined genomic expressions as a diagnostic factor for oral squamous cell carcinoma

机译:联合基因组表达作为口腔鳞状细胞癌的诊断因素

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摘要

Trends in genetics are transforming in order to identify differential coexpressions of correlated gene expression rather than the significant individual gene. Moreover, it is known that a combined biomarker pattern improves the discrimination of a specific cancer. The identification of the combined biomarker is also necessary for the early detection of invasive oral squamous cell carcinoma (OSCC). To identify the combined biomarker that could improve the discrimination of OSCC, we explored an appropriate number of genes in a combined gene set in order to attain the highest level of accuracy. After detecting a significant gene set, including the pre-defined number of genes, a combined expression was identified using the weights of genes in a gene set. We used the Principal Component Analysis (PCA) for the weight calculation. In this process, we used three public microarray datasets. One dataset was used for identifying the combined biomarker, and the other two datasets were used for validation. The discrimination accuracy was measured by the out-of-bag (OOB) error. There was no relation between the significance and the discrimination accuracy in each individual gene. The identified gene set included both significant and insignificant genes. One of the most significant gene sets in the classification of normal and OSCC included MMP1, SOCS3 and ACOX1. Furthermore, in the case of oral dysplasia and OSCC discrimination, two combined biomarkers were identified. The combined expression revealed good performance in the validation datasets. The combined genomic expression achieved better performance in the discrimination of different conditions than a single significant gene. Therefore, it could be expected that accurate diagnosis for cancer could be possible with a combined biomarker.
机译:遗传学的趋势正在发生变化,以便确定相关基因表达的差异共表达,而不是重要的单个基因。此外,已知组合的生物标志物模式改善了对特定癌症的辨别力。早期诊断浸润性口腔鳞状细胞癌(OSCC)的组合生物标志物的识别也是必要的。为了确定可以改善OSCC区分度的组合生物标志物,我们在组合基因集中探索了适当数量的基因,以便获得最高水平的准确性。在检测到一个重要的基因组(包括预定数量的基因)后,使用基因组中基因的权重确定了组合表达。我们使用主成分分析(PCA)进行重量计算。在此过程中,我们使用了三个公共微阵列数据集。一个数据集用于鉴定组合的生物标志物,另外两个数据集用于验证。判别准确性是通过袋外(OOB)误差来衡量的。每个基因的显着性与判别准确性之间没有关系。鉴定的基因集包括重要和无关紧要的基因。正常和OSCC分类中最重要的基因集之一包括MMP1,SOCS3和ACOX1。此外,在口腔发育不良和OSCC歧视的情况下,确定了两个组合的生物标记。组合表达式在验证数据集中显示出良好的性能。组合的基因组表达在区分不同条件方面比单个重要基因具有更好的性能。因此,可以预期,结合使用生物标志物,可以对癌症进行准确的诊断。

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