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Prediction of new potential associations between LncRNAs and environmental factors based on KATZ measure

机译:基于KATZ测量的LNCRNA与环境因素的新潜在关联预测

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摘要

The associations between genetic and environmental factors (EFs) are significant to understand the development and progression of many complex human diseases. There have been many research studies concerning genetic factors (protein-coding genes, microRNAs) and EFs but limited research addressing the associations between long noncoding RNAs (lncRNAs) and EFs. LncRNAs of more than 200 nucleotides are an important class of non coding transcripts and are effective in the organization of gene expressions and, therefore, on the formation of diseases. Environmental factors can alter the expression patterns of some lncRNAs, so a thorough understanding of the associations between lncRNAs and environmental factors will contribute to the understanding of the mechanisms of many complex diseases at the molecular level. In this study, we have developed a model based on the KATZ measure to find potential new associations between lncRNAs and EFs by using the DLREFD database, which contains proven associations between lncRNAs and EFs. The KATZ measure and Gaussian interaction profile kernel similarity were used to predict new potential associations between lncRNAs and EFs. The AUC results obtained by global leave-one-out cross-validation and 2-fold and 5-fold cross-validations were 0.855, 0.827, 0.838, respectively. These results show that our model can predict new potential associations between lncRNAs and EFs with high reliability. Also, the results obtained in case studies demonstrate the effectiveness of our model.
机译:遗传和环境因素(EFS)之间的关联是了解许多复杂人类疾病的发展和进展。已经有许多关于遗传因子(蛋白质编码基因,MicroRNA)和EFS的研究研究,而是有限的研究解决了长期非编码RNA(LNCRNA)和EFS之间的关联。超过200个核苷酸的LNCRNA是一类重要的非编码转录物,并且在组织基因表达中是有效的,因此在形成疾病时。环境因素可以改变一些LNCRNA的表达模式,因此对LNCRNA和环境因素之间的关联的彻底理解将有助于了解分子水平许多复杂疾病的机制。在这项研究中,我们通过使用DLREFD数据库,基于KATZ测量的基于KATZ测量来查找LNCRNA和EFS之间的潜在新关联,其中包含LNCRNA和EFS之间的经过验证的关联。 KATZ测量和高斯互动配置文件内核相似性用于预测LNCRNA和EFS之间的新潜在关联。全球休假交叉验证和2倍和5倍交叉效应获得的AUC结果分别为0.855,0.827,0.838。这些结果表明,我们的模型可以预测LNCRNA和EF之间具有高可靠性的新的潜在关联。此外,在案例研究中获得的结果证明了我们模型的有效性。

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