Subtype-WGME enables whole-genome-wide multi-omics cancer subtyping

被引:2
作者
Yang, Hai [1 ]
Zhao, Liang [1 ]
Li, Dongdong [1 ]
An, Congcong [1 ]
Fang, Xiaoyang [2 ]
Chen, Yiwen [3 ]
Liu, Jingping [1 ]
Xiao, Ting [1 ]
Wang, Zhe [1 ]
机构
[1] East China Univ Sci & Technol, Dept Comp Sci & Engn, Shanghai 200237, Peoples R China
[2] Cornell Univ, Cornell Tech, New York, NY 14853 USA
[3] Natl Univ Singapore, Ctr Continuing & Lifelong Educ, Singapore 119077, Singapore
来源
CELL REPORTS METHODS | 2024年 / 4卷 / 06期
关键词
PROGNOSTIC BIOMARKER; POOR-PROGNOSIS; EXPRESSION; NETWORK; GENE;
D O I
10.1016/j.crmeth.2024.100781
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
We present an innovative strategy for integrating whole-genome-wide multi-omics data, which facilitates adaptive amalgamation by leveraging hidden layer features derived from high -dimensional omics data through a multi -task encoder. Empirical evaluations on eight benchmark cancer datasets substantiated that our proposed framework outstripped the comparative algorithms in cancer subtyping, delivering superior subtyping outcomes. Building upon these subtyping results, we establish a robust pipeline for identifying whole-genome-wide biomarkers, unearthing 195 significant biomarkers. Furthermore, we conduct an exhaustive analysis to assess the importance of each omic and non -coding region features at the wholegenome-wide level during cancer subtyping. Our investigation shows that both omics and non -coding region features substantially impact cancer development and survival prognosis. This study emphasizes the potential and practical implications of integrating genome-wide data in cancer research, demonstrating the potency of comprehensive genomic characterization. Additionally, our findings offer insightful perspectives for multi-omics analysis employing deep learning methodologies.
引用
收藏
页数:19
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