Literature DB >> 29873784

BASiNET-BiologicAl Sequences NETwork: a case study on coding and non-coding RNAs identification.

Eric Augusto Ito1, Isaque Katahira1, Fábio Fernandes da Rocha Vicente1, Luiz Filipe Protasio Pereira1,2, Fabrício Martins Lopes1.   

Abstract

With the emergence of Next Generation Sequencing (NGS) technologies, a large volume of sequence data in particular de novo sequencing was rapidly produced at relatively low costs. In this context, computational tools are increasingly important to assist in the identification of relevant information to understand the functioning of organisms. This work introduces BASiNET, an alignment-free tool for classifying biological sequences based on the feature extraction from complex network measurements. The method initially transform the sequences and represents them as complex networks. Then it extracts topological measures and constructs a feature vector that is used to classify the sequences. The method was evaluated in the classification of coding and non-coding RNAs of 13 species and compared to the CNCI, PLEK and CPC2 methods. BASiNET outperformed all compared methods in all adopted organisms and datasets. BASiNET have classified sequences in all organisms with high accuracy and low standard deviation, showing that the method is robust and non-biased by the organism. The proposed methodology is implemented in open source in R language and freely available for download at https://cran.r-project.org/package=BASiNET.

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Year:  2018        PMID: 29873784      PMCID: PMC6144827          DOI: 10.1093/nar/gky462

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


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