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A Deep Learning Fusion Clustering framework for breast cancer subtypes identification by integrating multi-omics data

机译:通过集成多OMICS数据,对乳腺癌亚型识别的深度学习融合框架

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─Breast cancer subtype attains the great importance for disease diagnosis and individualized patient therapy. With the advance of the high-throughput sequencing techniques, huge and various types of genetic data have been produced. It has been shown that integration of multi-omics data contributes to cancer subtype identification. However, most of the existing methods used only gene expression to identify cancer subtypes; another major issue is that most of existing clustering methods completely ignore results from prior knowledge. In this paper, a new deep learning fusion clustering framework is proposed to integrate multi-omics data (mRNA expression, miRNA expression and DNA methylation) on the TCGA BRAC dataset for breast cancer subtype identification named as DLFC. Stacked autoencoder (SAE) and autoencoder (AE) are used to learn high-level data representations. Prior biological knowledge is used to guide the representation learning. The final learned high-level data representations is used as input to the clustering model for cancer subtype identification. The new deep learning fusion clustering framework is an effective method to integrate increasingly complex multi-omics data to identify breast cancer subtypes.
机译:─溴癌亚型达到疾病诊断和个体化患者治疗的重要意义。随着高通量测序技术的进展,已经产生了巨大和各种类型的遗传数据。已经表明,多OMICS数据的集成有助于癌症亚型识别。然而,大多数现有方法仅使用基因表达来鉴定癌症亚型;另一个主要问题是,大多数现有的聚类方法完全忽略了先前知识的结果。本文提出了一种新的深度学习融合聚类框架,用于将多OMICS数据(mRNA表达,miRNA表达和DNA甲基化物集成在TCGA BRAC DataSet中,用于乳腺癌亚型鉴定作为DLFC。堆叠的AutoEncoder(SAE)和AutoEncoder(AE)用于学习高级数据表示。先前的生物学知识用于指导代表学习。最终学习的高级数据表示用作癌症亚型识别的聚类模型的输入。新的深度学习融合聚类框架是一种有效的方法,可以集成越来越复杂的多OMICS数据以识别乳腺癌亚型。

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