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A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris

MicroRNAs (miRNAs) are important types of noncoding RNAs, and there is a lack of holistic and systematic understanding of the functions they play in disease. We proposed a research strategy, including two parts network analysis and network modelling, to analyze, model, and predict the regulatory net...

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Autores principales: Qi, Guanpeng, Xu, Ze, Dan, Hanyu, Jia, Xiangnan, Jiang, Qiang, Zhang, Aijun, Li, Zhaohang, Liu, Xin, Ma, Juman, Zheng, Xiaosong, Li, Zuojing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9803582/
https://www.ncbi.nlm.nih.gov/pubmed/36590836
http://dx.doi.org/10.1155/2022/5852089
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author Qi, Guanpeng
Xu, Ze
Dan, Hanyu
Jia, Xiangnan
Jiang, Qiang
Zhang, Aijun
Li, Zhaohang
Liu, Xin
Ma, Juman
Zheng, Xiaosong
Li, Zuojing
author_facet Qi, Guanpeng
Xu, Ze
Dan, Hanyu
Jia, Xiangnan
Jiang, Qiang
Zhang, Aijun
Li, Zhaohang
Liu, Xin
Ma, Juman
Zheng, Xiaosong
Li, Zuojing
author_sort Qi, Guanpeng
collection PubMed
description MicroRNAs (miRNAs) are important types of noncoding RNAs, and there is a lack of holistic and systematic understanding of the functions they play in disease. We proposed a research strategy, including two parts network analysis and network modelling, to analyze, model, and predict the regulatory network of miRNAs from a network perspective, using unstable angina pectoris as an example. In the network analysis section, we proposed the WGCNA & SimCluster method using both correlation and similarity to find hub miRNAs, and validation on two datasets showed better results than the methods using correlation or similarity alone. In the network modelling section, we used six knowledge graph or graph neural network models for link prediction of three types of edges and multilabel classification of two types of nodes. Comparative experiments showed that the RotatE model was a good model for link prediction, while the RGCN model was the best model for multilabel classification. Potential target genes were predicted for hub miRNAs and validation of hub miRNA-target gene interactions, target genes as biomarkers and target gene functions were performed using a three-step validation approach. In conclusion, our study provides a new strategy to analyze and model miRNA regulatory networks.
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spelling pubmed-98035822022-12-31 A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris Qi, Guanpeng Xu, Ze Dan, Hanyu Jia, Xiangnan Jiang, Qiang Zhang, Aijun Li, Zhaohang Liu, Xin Ma, Juman Zheng, Xiaosong Li, Zuojing Comput Intell Neurosci Research Article MicroRNAs (miRNAs) are important types of noncoding RNAs, and there is a lack of holistic and systematic understanding of the functions they play in disease. We proposed a research strategy, including two parts network analysis and network modelling, to analyze, model, and predict the regulatory network of miRNAs from a network perspective, using unstable angina pectoris as an example. In the network analysis section, we proposed the WGCNA & SimCluster method using both correlation and similarity to find hub miRNAs, and validation on two datasets showed better results than the methods using correlation or similarity alone. In the network modelling section, we used six knowledge graph or graph neural network models for link prediction of three types of edges and multilabel classification of two types of nodes. Comparative experiments showed that the RotatE model was a good model for link prediction, while the RGCN model was the best model for multilabel classification. Potential target genes were predicted for hub miRNAs and validation of hub miRNA-target gene interactions, target genes as biomarkers and target gene functions were performed using a three-step validation approach. In conclusion, our study provides a new strategy to analyze and model miRNA regulatory networks. Hindawi 2022-12-23 /pmc/articles/PMC9803582/ /pubmed/36590836 http://dx.doi.org/10.1155/2022/5852089 Text en Copyright © 2022 Guanpeng Qi et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Qi, Guanpeng
Xu, Ze
Dan, Hanyu
Jia, Xiangnan
Jiang, Qiang
Zhang, Aijun
Li, Zhaohang
Liu, Xin
Ma, Juman
Zheng, Xiaosong
Li, Zuojing
A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris
title A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris
title_full A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris
title_fullStr A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris
title_full_unstemmed A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris
title_short A Complex Heterogeneous Network Model of Disease Regulated by Noncoding RNAs: A Case Study of Unstable Angina Pectoris
title_sort complex heterogeneous network model of disease regulated by noncoding rnas: a case study of unstable angina pectoris
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9803582/
https://www.ncbi.nlm.nih.gov/pubmed/36590836
http://dx.doi.org/10.1155/2022/5852089
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