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甲状腺癌中 RNA 结合蛋白的综合分析。

Integrated analysis of RNA-binding proteins in thyroid cancer.

机构信息

Department of Geriatric Endocrinology, Sichuan Academy of Medical Sciences and Sichuan Provincial People's Hospital, Chengdu, P.R. China.

Medical Center of Vascular Surgery and Thyroid, Sichuan Academy of Medical Sciences and Sichuan Provincial People's Hospital, Chengdu, P.R. China.

出版信息

PLoS One. 2021 Mar 12;16(3):e0247836. doi: 10.1371/journal.pone.0247836. eCollection 2021.

Abstract

Recently, the incidence of thyroid cancer (THCA) has been on the rise. RNA binding proteins (RBPs) and their abnormal expression are closely related to the emergence and pathogenesis of tumor diseases. In this study, we obtained gene expression data and corresponding clinical information from the TCGA database. A total of 162 aberrantly expressed RBPs were obtained, comprising 92 up-regulated and 70 down-regulated RBPs. Then, we performed a functional enrichment analysis and constructed a PPI network. Through univariate Cox regression analysis of key genes and found that NOLC1 (p = 0.036), RPS27L (p = 0.011), TDRD9 (p = 0.016), TDRD6 (p = 0.002), IFIT2 (p = 0.037), and IFIT3 (p = 0.02) were significantly related to the prognosis. Through the online website Kaplan-Meier plotter and multivariate Cox analysis, we identified 2 RBP-coding genes (RPS27L and IFIT3) to construct a predictive model in the entire TCGA dataset and then validate in two subsets. In-depth analysis revealed that the data gave by this model, the patient's high-risk score is very closely related to the overall survival rate difference (p = 0.038). Further, we investigated the correlation between the model and the clinic, and the results indicated that the high-risk was in the male group (p = 0.011) and the T3-4 group (p = 0.046) was associated with a poor prognosis. On the whole, the conclusions of our research this time can make it possible to find more insights into the research on the pathogenesis of THCA, this could be beneficial for individualized treatment and medical decision making.

摘要

最近,甲状腺癌(THCA)的发病率一直在上升。RNA 结合蛋白(RBPs)及其异常表达与肿瘤疾病的发生和发病机制密切相关。在本研究中,我们从 TCGA 数据库中获得了基因表达数据和相应的临床信息。共获得 162 个异常表达的 RBPs,包括 92 个上调和 70 个下调的 RBPs。然后,我们进行了功能富集分析并构建了 PPI 网络。通过对关键基因的单变量 Cox 回归分析,发现 NOLC1(p = 0.036)、RPS27L(p = 0.011)、TDRD9(p = 0.016)、TDRD6(p = 0.002)、IFIT2(p = 0.037)和 IFIT3(p = 0.02)与预后显著相关。通过在线网站 Kaplan-Meier plotter 和多变量 Cox 分析,我们在整个 TCGA 数据集和两个子集中识别出 2 个 RBP 编码基因(RPS27L 和 IFIT3)来构建预测模型。深入分析表明,该模型提供的数据,患者的高风险评分与总体生存率差异非常密切(p = 0.038)。进一步,我们研究了模型与临床的相关性,结果表明,该模型在男性组(p = 0.011)和 T3-4 组(p = 0.046)中与预后不良相关。总的来说,我们这次研究的结论可以使人们更深入地了解 THCA 发病机制的研究,这可能有助于个性化治疗和医疗决策。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfcc/7954316/3a7df0ee244e/pone.0247836.g001.jpg

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