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Regularized Multivariate Regression for Identifying Master Predictors with Application to Integrative Genomics Study of Breast Cancer

机译:正则化多元回归用于确定主要预测因子并在乳腺癌综合基因组学研究中的应用

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摘要

In this paper, we propose a new method remMap — REgularized Multivariate regression for identifying MAster Predictors — for fitting multivariate response regression models under the high-dimension-low-sample-size setting. remMap is motivated by investigating the regulatory relationships among different biological molecules based on multiple types of high dimensional genomic data. Particularly, we are interested in studying the influence of DNA copy number alterations on RNA transcript levels. For this purpose, we model the dependence of the RNA expression levels on DNA copy numbers through multivariate linear regressions and utilize proper regularization to deal with the high dimensionality as well as to incorporate desired network structures. Criteria for selecting the tuning parameters are also discussed. The performance of the proposed method is illustrated through extensive simulation studies. Finally, remMap is applied to a breast cancer study, in which genome wide RNA transcript levels and DNA copy numbers were measured for 172 tumor samples. We identify a trans-hub region in cytoband 17q12–q21, whose amplification influences the RNA expression levels of more than 30 unlinked genes. These findings may lead to a better understanding of breast cancer pathology.
机译:在本文中,我们提出了一种新的方法 remMap -用于识别MAster预测变量的REgularized多元回归-用于在高维低样本量设置下拟合多元响应回归模型。 remMap 的动机是基于多种类型的高维基因组数据,研究不同生物分子之间的调控关系。特别地,我们对研究DNA拷贝数变化对RNA转录水平的影响感兴趣。为此,我们通过多变量线性回归对RNA表达水平对DNA拷贝数的依赖性进行建模,并利用适当的正则化处理高维数以及合并所需的网络结构。还讨论了选择调整参数的标准。通过广泛的仿真研究说明了该方法的性能。最后, remMap 用于乳腺癌研究,其中对172个肿瘤样品的全基因组RNA转录水平和DNA拷贝数进行了测量。我们在细胞带17q12–q21中鉴定出一个反集线器区域,该区域的扩增会影响30多个未连锁基因的RNA表达水平。这些发现可能会导致对乳腺癌病理学的更好理解。

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