Early detection of ampicillin susceptibility in Enterococcus faecium with MALDI-TOF/MS and machine learning

Thomas Pichl1, Lucas Miranda2, Matthias T Warkotsch1

  • 1Institute of Medical Microbiology, Immunology and Hygiene, TUM School of Medicine and Health, Department of Preclinical Medicine, Technical University of Munich, Munich, Germany.

Abstract

Insights

Machine learning models can predict ampicillin susceptibility in Enterococcus faecium infections directly from MALDI-TOF spectra. Bacteriocin T8 is a key marker for ampicillin resistance, enabling optimized treatment strategies.

Area of Science:

  • Microbiology
  • Infectious Diseases
  • Computational Biology

Background:

  • Enterococcus faecium causes severe infections, often resistant to ampicillin.
  • Ampicillin resistance necessitates broad-spectrum antibiotics, driving multidrug resistance.
  • Early detection of ampicillin susceptibility is crucial for effective treatment.

Purpose of the Study:

  • To develop machine learning models for predicting ampicillin susceptibility in E. faecium from MALDI-TOF spectra.
  • To identify specific MALDI-TOF spectral features associated with ampicillin resistance.
  • To assess the generalizability and transferability of developed models.

Main Methods:

  • Analysis of two clinical E. faecium MALDI-TOF spectra datasets (TUM and MS-UMG).
  • Evaluation of logistic regression (LR) and LightGBM machine learning models.
  • Exploration of model transferability using target-domain-adapted external validation.
  • Identification of discriminatory MALDI-TOF peaks using LC-MS/MS.

Main Results:

  • LightGBM models slightly outperformed LR in predicting ampicillin susceptibility (AUPRC > 0.90).
  • Target-domain-adapted LightGBM models showed good transferability to unseen datasets (AUPRC of 0.869).
  • A MALDI-TOF peak at m/z ≈ 5091, identified as bacteriocin T8, was the most discriminative feature.

Conclusions:

  • Machine learning models (LightGBM, LR) accurately predict ampicillin-susceptible E. faecium from MALDI-TOF spectra.
  • Bacteriocin T8 is a key marker linked to ampicillin resistance in E. faecium.
  • Further development with larger datasets can enhance clinical implementation for optimized antibiotic therapy.

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