Prediction of human miRNA target genes using computationally reconstructed ancestral mammalian sequences

Mickael Leclercq1, Abdoulaye Baniré Diallo2, Mathieu Blanchette3

  • 1School of Computer Science and McGill Centre for Bioinformatics, McGill University, Montreal, Quebec, H3A0E9, Canada.

Nucleic Acids Research
|December 1, 2016
PubMed

Insights

This study introduces MirAncesTar, a novel computational tool that enhances microRNA target gene prediction accuracy. By utilizing ancestral genome reconstruction, it significantly improves the identification of microRNA regulatory interactions.

Area of Science:

  • Genomics
  • Bioinformatics
  • Molecular Biology

Background:

  • MicroRNAs (miRNAs) are key post-transcriptional regulators.
  • Experimental identification of miRNA target genes (MTGs) is costly and incomplete.
  • Existing in silico MTG prediction tools lack sufficient accuracy.

Purpose of the Study:

  • To develop a novel computational approach, MirAncesTar, for improving the accuracy of human microRNA target gene prediction.
  • To leverage ancestral genome reconstruction to enhance existing prediction methods.

Main Methods:

  • MirAncesTar integrates existing prediction tools with ancestral genome reconstruction.
  • It analyzes target sites in human UTRs, mammalian orthologs, and inferred ancestral sequences.
  • The method evaluates selective pressure for target site conservation and integrates multiple predictive measures using logistic regression.

Main Results:

  • MirAncesTar significantly improves the accuracy of existing MTG predictors.
  • Accuracy gains range from 26% to 157% compared to current methods.
  • The approach accounts for target site turnover and selective pressure.

Conclusions:

  • MirAncesTar offers a substantial advancement in the accuracy of microRNA target gene prediction.
  • The method provides a valuable tool for researchers studying miRNA function and regulation.
  • Ancestral genome reconstruction is an effective strategy for enhancing computational biology predictions.

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