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NOGEA: A Network-oriented Gene Entropy Approach for Dissecting Disease Comorbidity and Drug Repositioning

Authors :
Guo, Zihu
Fu, Yingxue
Huang, Chao
Zheng, Chunli
Wu, Ziyin
Chen, Xuetong
Gao, Shuo
Ma, Yaohua
Shahen, Mohamed
Li, Yan
Tu, Pengfei
Zhu, Jingbo
Wang, Zhenzhong
Xiao, Wei
Wang, Yonghua
Source :
Genomics Proteomics and Bioinformatics; 20210101, Issue: Preprints
Publication Year :
2021

Abstract

Rapid development of high-throughput technologies has permitted the identification of an increasing number of disease-associated genes (DAGs), which are important for understanding disease initiation and developing precision therapeutics. However, DAGs often contain large amounts of redundant or false positive information, leading to difficulties in quantifying and prioritizing potential relationships between these DAGs and human diseases. In this study, a network-oriented gene entropy approach (NOGEA) is proposed for accurately inferring master genes that contribute to specific diseases by quantitatively calculating their perturbation abilities on directed disease-specific gene networks. In addition, we confirmed that the master genes identified by NOGEA have a high reliability for predicting disease-specific initiation events and progression risk. Master genes may also be used to extract the underlying information of different diseases, thus revealing mechanisms of disease comorbidity. More importantly, approved therapeutic targets are topologically localized in a small neighborhood of master genes on the interactome network, which provides a new way for predicting drug-disease associations. Through this method, 11 old drugs were newly identified and predicted to be effective for treating pancreatic cancer and then validated by in vitroexperiments. Collectively, the NOGEA was useful for identifying master genes that control disease initiation and co-occurrence, thus providing a valuable strategy for drug efficacy screening and repositioning. NOGEA codes are publicly available at https://github.com/guozihuaa/NOGEA.

Details

Language :
English
ISSN :
16720229
Issue :
Preprints
Database :
Supplemental Index
Journal :
Genomics Proteomics and Bioinformatics
Publication Type :
Periodical
Accession number :
ejs55582820
Full Text :
https://doi.org/10.1016/j.gpb.2020.06.023