VAMPr: VAriant Mapping and Prediction of antibiotic resistance via explainable features and machine learning

Jiwoong Kim1, David E Greenberg2,3, Reed Pifer2

  • 1Quantitative Biomedical Research Center, Department of Population and Data Sciences, University of Texas Southwestern Medical Center, Dallas, Texas, United States of America.

Insights

A new bioinformatics tool, VAMPr, predicts antimicrobial resistance (AMR) using whole genome sequencing data. This approach aids in understanding AMR mechanisms and has potential clinical applications for combating this growing public health threat.

Area of Science:

  • Genomics
  • Bioinformatics
  • Microbiology

Background:

  • Antimicrobial resistance (AMR) poses a significant global health challenge.
  • Current AMR detection methods are often inefficient phenotypic approaches.
  • Genomic data is increasingly available, offering potential for predicting AMR.

Purpose of the Study:

  • To develop a bioinformatics tool for predicting AMR from genomic data.
  • To identify genetic variants associated with AMR phenotypes.
  • To facilitate the discovery of novel AMR mechanisms.

Main Methods:

  • Developed VAMPr (Variant Mapping and Prediction of Antibiotic Resistance) tool.
  • Derived gene ortholog-based sequence features for variants.
  • Built association and prediction models using whole genome sequencing data from 3,393 bacterial isolates across 9 species and 29 antibiotics.

Main Results:

  • Detected 14,615 variant genotypes and built 93 association and prediction models.
  • Confirmed known AMR mechanisms, such as blaKPC and carbapenem resistance.
  • Achieved high prediction accuracy (mean 91.1%) validated both internally and externally.

Conclusions:

  • VAMPr is a valuable tool for AMR research, aiding in understanding genetic resistance.
  • The tool has potential for clinical applications in diagnosing and managing AMR.
  • Genomic data analysis can significantly advance AMR research and public health strategies.

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