Meta-iPVP: a sequence-based meta-predictor for improving the prediction of phage virion proteins using effective

Phasit Charoenkwan1, Chanin Nantasenamat2, Md Mehedi Hasan3

  • 1Modern Management and Information Technology, College of Arts, Media and Technology, Chiang Mai University, Chiang Mai, 50200, Thailand.

Insights

Accurately identifying phage virion proteins (PVPs) is key to understanding phage biology. A new computational tool, Meta-iPVP, uses probabilistic features for fast and accurate PVP identification, improving on existing methods.

Area of Science:

  • Microbiology
  • Bioinformatics
  • Computational Biology

Background:

  • Phage virion proteins (PVPs) are essential for phage replication, mediating host cell membrane perforation and subsequent lysis.
  • Accurate identification of PVPs is critical for elucidating their biological functions and mechanisms.
  • Existing computational methods for PVP identification require improvement in speed and accuracy.

Purpose of the Study:

  • To develop a novel, fast, and accurate computational method for identifying phage virion proteins (PVPs).
  • To introduce a sequence-based meta-predictor, Meta-iPVP, that utilizes probabilistic information for enhanced PVP prediction.

Main Methods:

  • A novel sequence-based meta-predictor, Meta-iPVP, was developed.
  • Probabilistic features were generated using four machine learning algorithms and seven feature encodings.
  • The approach employed an efficient feature representation strategy.

Main Results:

  • Meta-iPVP demonstrated the ability to distinguish between PVPs and non-PVPs.
  • The predictor achieved high accuracy (0.817) and Matthews Correlation Coefficient (MCC) (0.642).
  • Meta-iPVP showed significant improvements (6-10% accuracy, 14-21% MCC) over existing PVP predictors.

Conclusions:

  • Meta-iPVP represents a robust and efficient tool for PVP identification.
  • The developed predictor offers a promising advancement in understanding phage biology.
  • The Meta-iPVP webserver is publicly available for research use.

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