基于图神经网络的环状RNA生物标志物筛选预测算法

Yang Li, Xuegang Hu, Lei Wang, Peipei Li, Zhuhong You

科研成果: 期刊稿件文章同行评审

1 引用 (Scopus)

摘要

Emerging evidence has revealed that circular RNA (circRNA) plays an indispensable role in the pathogenesis of complex human diseases and various biological processes. Identifying the associations between circRNAs and diseases is crucial for diagnosing and treating these diseases. However, traditional wet-lab methods are often inefficient, time-consuming, and expensive, with high false-positive rates. Therefore, there is an urgent need for efficient and feasible computational methods to predict potential circRNA-disease associations on a large scale. In this paper, we propose a novel approach to predict the association between circRNA and disease by combining the high-order graph convolutional network algorithm of graph neural network with a random ferns classifier. This approach can effectively extract high-level features with high-order mixed neighborhood information from the multi-source similarity network constructed by multiple attribute information of circRNAs and diseases and accurately classify them. In a 5-fold cross-validation experiment, our method achieved an average AUC score of 93.75% on the CircR2Disease dataset. Furthermore, in case studies, the prediction results of the model were supported by biological wet experiments, and 13 of the top 15 predicted circRNA-disease associations were confirmed by recently published literature. These excellent results indicate that the proposed model is an effective tool for predicting circRNA-disease associations, and can provide a theoretical basis and highly reliable candidate biomarkers of circRNAs for biological wet experiments.

投稿的翻译标题Prediction algorithm for screening circRNA biomarker based on graph neural network
源语言繁体中文
页(从-至)2214-2229
页数16
期刊Scientia Sinica Informationis
53
11
DOI
出版状态已出版 - 2023

关键词

  • circRNA
  • circRNA-disease association
  • graph neural network
  • high-order graph convolutional network
  • random ferns

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