Zebrafish: A Cost-Effective Model for Enhanced Forensic Toxicology Capabilities in Low- and Middle-Income Countries

Sourik Mukherjee1, Aman K Mohanty1, Raj Kumar Chinnadurai1

  • 1Zebrafish Research Unit, Mahatma Gandhi Medical Advanced Research Institute, Sri Balaji Vidyapeeth (Deemed-to-be-University), Pondicherry, IND.

Cureus
|January 23, 2025
PubMed

Insights

Zebrafish offer a cost-effective alternative to traditional models for forensic toxicology in low- and middle-income countries. Their unique advantages facilitate efficient toxicological studies and novel metabolite discovery for novel psychoactive substances (NPSs).

Area of Science:

  • Forensic Toxicology
  • Toxicology
  • Animal Models

Background:

  • Low- and middle-income countries (LMICs) face increasing medicolegal case burdens.
  • Traditional forensic methods and rodent models present cost and ethical limitations.
  • Zebrafish (Danio rerio) emerge as a practical, cost-effective alternative for toxicological studies in LMICs.

Purpose of the Study:

  • To review the potential of zebrafish as a versatile model for forensic toxicology in LMICs.
  • To highlight the application of zebrafish in novel psychoactive substance (NPS) research.
  • To forecast the broader adoption of zebrafish in forensic toxicology.

Main Methods:

  • Utilizing zebrafish for toxicological studies due to their cost-effectiveness and rapid development.
  • Leveraging the optical transparency of zebrafish embryos and larvae for non-invasive in vivo observations.
  • Investigating behavioral, developmental, and cardiotoxic effects of novel psychoactive substances (NPSs) in zebrafish.

Main Results:

  • Zebrafish facilitate faster, more economical toxicological studies, even in limited laboratory settings.
  • Zebrafish exhibit robust metabolic profiling with significant overlap in human metabolism.
  • Zebrafish can identify novel metabolites missed by traditional models, aiding in NPS research.

Conclusions:

  • Zebrafish present a cost-effective and adaptable model for forensic toxicology in LMICs.
  • Standardization of protocols and addressing interlaboratory variability are key for widespread adoption.
  • Global efforts are underway to integrate zebrafish models into forensic toxicology practices.

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