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Modelling TERT regulation across 19 different cancer types based on the MIPRIP 2.0 gene regulatory network approach

机译:基于MIPRIP 2.0基因监管网络方法模拟19种不同癌症类型的TERT调节

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BACKGROUND:Reactivation of the telomerase reverse transcriptase gene TERT is a central feature for unlimited proliferation of the majority of cancers. However, the underlying regulatory processes are only partly understood.RESULTS:We assembled regulator binding information from serveral sources to construct a generic human and mouse gene regulatory network. Advancing our "Mixed Integer linear Programming based Regulatory Interaction Predictor" (MIPRIP) approach, we identified the most common and cancer-type specific regulators of TERT across 19 different human cancers. The results were validated by using the well-known TERT regulation by the ETS1 transcription factor in a subset of melanomas with mutations in the TERT promoter. Our improved MIPRIP2 R-package and the associated generic regulatory networks are freely available at https://github.com/KoenigLabNM/MIPRIP.CONCLUSION:MIPRIP 2.0 identified common as well as tumor type specific regulators of TERT. The software can be easily applied to transcriptome datasets to predict gene regulation for any gene and disease/condition under investigation.
机译:背景:端粒酶逆转录酶基因TERT的再活化是大多数癌症的无限增殖的中心特征。然而,潜在的监管程序仅部分地理解。结果:我们从服务器源组装稳压器绑定信息以构建通用人和小鼠基因监管网络。推进我们的“混合整数基于线性规划的监管交互预测仪”(MIPRIP)方法,我们确定了跨越19种不同人类癌症的最常见和癌症型特定调节器。通过使用突变促进剂中的Melanomas子集中的ETS1转录因子中的众所周知的TERT调节来验证结果。我们改进的MIPRIP2 R包和相关的通用监管网络在HTTPS://github.com/koeniglabnm/miprip.Conclusion:MIPRIP 2.0确定常见的以及肿瘤类型特定的TERT。该软件可以很容易地应用于转录组数据集以预测用于在调查中的任何基因和疾病/条件的基因调节。

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