Identification of antibiotic collateral sensitivity and resistance interactions in population surveillance data

Laura B Zwep1, Yob Haakman1, Kevin L W Duisters2

  • 1Leiden Academic Centre for Drug Research, Leiden University, Leiden, The Netherlands.

Abstract

Insights

This study introduces a new method to detect collateral resistance and sensitivity in antibiotic treatments using surveillance data. The approach helps identify antibiotic combinations that can guide future combination therapies and prescribing practices.

Area of Science:

  • Microbiology
  • Computational Biology
  • Epidemiology

Background:

  • Antibiotic resistance poses a significant global health threat.
  • Collateral effects, including collateral resistance (CR) and collateral sensitivity (CS), describe how resistance to one antibiotic impacts sensitivity to another.
  • Current methods for detecting these collateral effects in large-scale clinical surveillance data are limited.

Purpose of the Study:

  • To develop a novel methodology for quantifying the directionality and effect size of collateral effects from population surveillance data.
  • To provide a systematic approach for identifying collateral resistance and sensitivity in clinical settings.

Main Methods:

  • A conditional t-test-based methodology was developed to analyze collateral effects.
  • The approach was validated using Minimum Inhibitory Concentration (MIC) data for 419 *Escherichia coli* strains across 20 antibiotics from the PATRIC database.

Main Results:

  • The methodology successfully identified antibiotic combinations exhibiting symmetrical and non-symmetrical CR and CS.
  • Several identified collateral effects were previously validated through experimental studies.
  • The study provides insights into the method's power across various collateral effect sizes and MIC distributions.

Conclusions:

  • The developed approach offers a valuable tool for analyzing large-scale antimicrobial resistance surveillance data.
  • It enables broad, systematic identification of collateral effects, aiding in the mapping of CS and CR.
  • The methodology, available as an R package, can inform future antibiotic combination therapies and prescribing strategies.

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