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CRlncRC: a machine learning-based method for cancer-related long noncoding RNA identification using integrated features
Zhang, Xuan1; Wang, Jun2; Li, Jing; Chen, Wen; Liu, Changning
2018
Source PublicationBMC MEDICAL GENOMICS
ISSN1755-8794
Volume11Issue:xPages:-
Abstract

BackgroundLong noncoding RNAs (lncRNAs) are widely involved in the initiation and development of cancer. Although some computational methods have been proposed to identify cancer-related lncRNAs, there is still a demanding to improve the prediction accuracy and efficiency. In addition, the quick-update data of cancer, as well as the discovery of new mechanism, also underlay the possibility of improvement of cancer-related lncRNA prediction algorithm. In this study, we introduced CRlncRC, a novel Cancer-Related lncRNA Classifier by integrating manifold features with five machine-learning techniques.ResultsCRlncRC was built on the integration of genomic, expression, epigenetic and network, totally in four categories of features. Five learning techniques were exploited to develop the effective classification model including Random Forest (RF), Naive bayes (NB), Support Vector Machine (SVM), Logistic Regression (LR) and K-Nearest Neighbors (KNN). Using ten-fold cross-validation, we showed that RF is the best model for classifying cancer-related lncRNAs (AUC=0.82). The feature importance analysis indicated that epigenetic and network features play key roles in the classification. In addition, compared with other existing classifiers, CRlncRC exhibited a better performance both in sensitivity and specificity. We further applied CRlncRC to lncRNAs from the TANRIC (The Atlas of non-coding RNA in Cancer) dataset, and identified 121 cancer-related lncRNA candidates. These potential cancer-related lncRNAs showed a certain kind of cancer-related indications, and many of them could find convincing literature supports.ConclusionsOur results indicate that CRlncRC is a powerful method for identifying cancer-related lncRNAs. Machine-learning-based integration of multiple features, especially epigenetic and network features, had a great contribution to the cancer-related lncRNA prediction. RF outperforms other learning techniques on measurement of model sensitivity and specificity. In addition, using CRlncRC method, we predicted a set of cancer-related lncRNAs, all of which displayed a strong relevance to cancer as a valuable conception for the further cancer-related lncRNA function studies.

KeywordPromotes Cell-proliferation Gc Content Transposable Elements Interferon Response Expression Profile Signaling Pathway Enhancer Activity Dna Methylation Messenger-rna Transcription
Subject AreaGenetics & Heredity
DOI10.1186/s12920-018-0436-9
Indexed BySCI
Language英语
WOS IDWOS:000454634100009
Citation statistics
Document Type期刊论文
Identifierhttps://ir.xtbg.ac.cn/handle/353005/11242
Collection2012年后新成立研究组
Corresponding AuthorLiu, Changning
Affiliation1.Chinese Acad Sci, Xishuangbanna Trop Bot Garden, CAS Key Lab Trop Plant Resources & Sustainable Us, Menglun 666303, Yunnan, Peoples R China
2.Univ Chinese Acad Sci, Beijing 100049, Peoples R China
3.Cent S Univ, Xiangya Hosp, Inst Med Sci, Changsha 410008, Hunan, Peoples R China
Recommended Citation
GB/T 7714
Zhang, Xuan,Wang, Jun,Li, Jing,et al. CRlncRC: a machine learning-based method for cancer-related long noncoding RNA identification using integrated features[J]. BMC MEDICAL GENOMICS,2018,11(x):-.
APA Zhang, Xuan,Wang, Jun,Li, Jing,Chen, Wen,&Liu, Changning.(2018).CRlncRC: a machine learning-based method for cancer-related long noncoding RNA identification using integrated features.BMC MEDICAL GENOMICS,11(x),-.
MLA Zhang, Xuan,et al."CRlncRC: a machine learning-based method for cancer-related long noncoding RNA identification using integrated features".BMC MEDICAL GENOMICS 11.x(2018):-.
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