Identifying Human miRNA Target Sites via Learning the Interaction Patterns between miRNA and mRNA Segments

Tzu Hsien Yang, Jhih Cheng Chen, Yuan Han Lee, Shang Yi Lu, Sheng Hang Wu, Fang Yuan Chang, Yan Cheng Huang, Mei Hsien Lee, Yan Yuan Tseng, Wei Sheng Wu

Research output: Contribution to journalArticlepeer-review

3 Citations (Scopus)

Abstract

miRNAs (microRNAs) target specific mRNA (messenger RNA) sites to regulate their translation expression. Although miRNA targeting can rely on seed region base pairing, animal miRNAs, including human miRNAs, typically cooperate with several cofactors, leading to various noncanonical pairing rules. Therefore, identifying the binding sites of animal miRNAs remains challenging. Because experiments for mapping miRNA targets are costly, computational methods are preferred for extracting potential miRNA-mRNA fragment binding pairs first. However, existing prediction tools can have significant false positives due to the prevalent noncanonical miRNA binding behaviors and the information-biased training negative sets that were used while constructing these tools. To overcome these obstacles, we first prepared an information-balanced miRNA binding pair ground-truth data set. A miRNA-mRNA interaction-aware model was then designed to help identify miRNA binding events. On the test set, our model (auROC = 94.4%) outperformed existing models by at least 2.8% in auROC. Furthermore, we showed that this model can suggest potential binding patterns for miRNA-mRNA sequence interacting pairs. Finally, we made the prepared data sets and the designed model available at http://cosbi2.ee.ncku.edu.tw/mirna_binding/download.

Original languageEnglish
Pages (from-to)2445-2453
Number of pages9
JournalJournal of Chemical Information and Modeling
Volume64
Issue number7
DOIs
Publication statusPublished - 2024 Apr 8

All Science Journal Classification (ASJC) codes

  • General Chemistry
  • General Chemical Engineering
  • Computer Science Applications
  • Library and Information Sciences

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