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一种用于整合多组学数据以识别癌症亚型的相似性回归融合模型。

A Similarity Regression Fusion Model for Integrating Multi-Omics Data to Identify Cancer Subtypes.

作者信息

Guo Yang, Zheng Jianning, Shang Xuequn, Li Zhanhuai

机构信息

School of Computer Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China.

出版信息

Genes (Basel). 2018 Jun 21;9(7):314. doi: 10.3390/genes9070314.

Abstract

The identification of cancer subtypes is crucial to cancer diagnosis and treatments. A number of methods have been proposed to identify cancer subtypes by integrating multi-omics data in recent years. However, the existing methods rarely consider the biases of similarity between samples and weights of different omics data in integration. More accurate and flexible integration approaches need to be developed to comprehensively investigate cancer subtypes. In this paper, we propose a simple and flexible similarity fusion model for integrating multi-omics data to identify cancer subtypes. We consider the similarity biases between samples in each omics data and predict corrected similarities between samples using a generalized linear model. We integrate the corrected similarity information from multi-omics data according to different data-view weights. Based on the integrative similarity information, we cluster patient samples into different subtype groups. Comprehensive experiments demonstrate that the proposed approach obtains more significant results than the state-of-the-art integrative methods. In conclusion, our approach provides an effective and flexible tool to investigate subtypes in cancer by integrating multi-omics data.

摘要

癌症亚型的识别对于癌症的诊断和治疗至关重要。近年来,已经提出了许多通过整合多组学数据来识别癌症亚型的方法。然而,现有方法在整合过程中很少考虑样本间相似性的偏差以及不同组学数据的权重。需要开发更准确、灵活的整合方法来全面研究癌症亚型。在本文中,我们提出了一种简单灵活的相似性融合模型,用于整合多组学数据以识别癌症亚型。我们考虑了每个组学数据中样本间的相似性偏差,并使用广义线性模型预测样本间的校正相似性。我们根据不同的数据视图权重整合来自多组学数据的校正相似性信息。基于整合后的相似性信息,我们将患者样本聚类为不同的亚型组。综合实验表明,所提出的方法比当前最先进的整合方法取得了更显著的结果。总之,我们的方法提供了一种有效且灵活的工具,通过整合多组学数据来研究癌症中的亚型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/929f/6070922/f665746ac7c4/genes-09-00314-g001.jpg

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