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IIM-CNN: Intelligent Identifier of 6mA Sites on Different Species by Using Convolution Neural Network

  • Abdul Wahab
  • , Syed Danish Ali
  • , Hilal Tayara*
  • , Kil To Chong
  • *Corresponding author for this work
  • Jeonbuk National University
  • University of Azad Jammu and Kashmir

Research output: Contribution to journalJournal articlepeer-review

Abstract

DNA N6-methyladenine (6mA) is related to a vast range of biological progress like transcription, replication, and repair of DNA. The precise discrimination of the 6mA sites plays a vital role in the understanding of its biological functions. Even though biochemical experiments produced positive results, they were inefficient in terms of cost and time. Therefore, to facilitate the identification of 6mA sites it is important to develop a robust computational model. In this regard, we develop a deep learning-based computational model named as iIM-CNN for the identification of N6-methyladenine sites from DNA sequences. The iIM-CNN is capable of extracting important features using a convolution neural network (CNN). The proposed model achieves the Mathew correlation coefficient (MCC) of 0.651, 0.752 and 0.941 for cross-species, Rice, and M. musculus genome respectively. The comparison of the outcomes depicts that the proposed model outperforms the existing computational tools for the prediction of the 6mA sites. Finally, a publically available user-friendly web server is available at https://home.jbnu.ac.kr/NSCL/iIMCNN.htm.

Original languageEnglish
Article number8930537
Pages (from-to)178577-178583
Number of pages7
JournalIEEE Access
Volume7
DOIs
StatePublished - 2019

Keywords

  • convolution neural network
  • cross-species
  • deep learning
  • DNA N6-methyladenine
  • sequence analysis

Quacquarelli Symonds(QS) Subject Topics

  • Materials Science
  • Computer Science & Information Systems
  • Engineering - Electrical & Electronic
  • Engineering - Petroleum

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