Reduction of use of animals in regulatory genotoxicity testing: Identification and implementation

Stefan Pfuhler1, David Kirkland, Peter Kasper

  • 1Procter & Gamble, Cosmital SA, CH-1723 Marly, Switzerland. pfuhler.s@pg.com

Mutation Research
|September 22, 2009
PubMed

Insights

Genotoxicity testing uses many animals, but experts identified scientifically valid methods to reduce animal use. Implementing these strategies requires addressing regulatory and awareness barriers for wider adoption.

Area of Science:

  • In vivo genetic toxicology
  • Chemical safety assessment
  • Regulatory science

Background:

  • In vivo genetic toxicology tests are crucial for predicting mutagenic and carcinogenic potential.
  • Increasing regulatory demands, such as EU REACH legislation, may significantly increase animal testing for genotoxicity.
  • Current standard genotoxicity tests consume substantial animal numbers.

Framework:

  • A workshop convened genotoxicity experts to identify strategies for reducing animal use in standard tests.
  • The primary goal was to discuss and promote scientifically credible, animal-reducing test strategies.
  • Key objectives included evaluating smarter test designs and implementation pathways.

Implementation:

  • Experts agreed on scientifically valid reduction options, including using one sex, fewer administrations, and adjusted sampling times for micronucleus (MN), chromosomal aberration (CA), and Comet assays.
  • Integrating the MN endpoint into repeat-dose toxicity studies and omitting routine positive controls in CA and MN tests are viable options.
  • Combining acute MN and Comet assays is guideline-compliant, with minor adjustments needed for sampling times.

Implications:

  • Despite available reduction options, their utilization is limited due to regulatory uncertainty, lack of awareness, and scientific acceptance concerns.
  • Increased promotion and data dissemination are encouraged to enhance the acceptance of these animal-saving approaches.
  • Further research is ongoing to validate additional reduction methods, such as integrating the Comet assay into repeat-dose toxicity studies.

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