Related Experiment Video
Updated: Jun 20, 2026

The Lambda Select cII Mutation Detection System
Published on: April 26, 2018
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
Abstract:
In vivo genetic toxicology tests measure direct DNA damage or the formation of gene or chromosomal mutations, and are used to predict the mutagenic and carcinogenic potential of compounds for regulatory purposes and/or to follow-up positive results from in vitro testing. These tests are widely used and consume large numbers of animals, with a foreseeable marked increase as a result of the EU chemicals legislation (REACH), which may require follow-up of any positive outcome in the in vitro standard battery with appropriate in vivo tests, regardless of the tonnage level of the chemical. A 2-day workshop with genotoxicity experts from academia, regulatory agencies and industry was hosted by the European Centre for the Validation of Alternative Methods (ECVAM) in Ranco, Italy from 24 to 25 June 2008. The objectives of the workshop were to discuss how to reduce the number of animals in standard genotoxicity tests, whether the application of smarter test strategies can lead to lower animal numbers, and how the possibilities for reduction can be promoted and implemented. The workshop agreed that there are many reduction options available that are scientifically credible and therefore ready for use. Most of these are compliant with regulatory guidelines, i.e. the use of one sex only, one administration and two sampling times versus two or three administrations and one sampling time for micronucleus (MN), chromosomal aberration (CA) and Comet assays; and the integration of the MN endpoint into repeat-dose toxicity studies. The omission of a concurrent positive control in routine CA and MN tests has been proven to be scientifically acceptable, although the OECD guidelines still require this; also the combination of acute MN and Comet assay studies are compliant with guidelines, except for sampling times. Based on the data presented at the workshop, the participants concluded that these options have not been sufficiently utilized to date. Key factors for this seem to be the uncertainty regarding regulatory compliance/acceptance, lack of awareness, and an in many cases unjustified uncertainty regarding the scientific acceptance of reduction options. The workshop therefore encourages the use and promotion of these options as well as the dissemination of data related to reduction opportunities by the scientific community in order to boost the acceptance level of these approaches. Furthermore, experimental proof is needed and under way to demonstrate the credibility of additional options for reduction of the number of animals, such as the integration of the Comet assay into repeat-dose toxicity studies.
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.
Related Concept Videos
Toxicity Testing in Animals
In vitro Mutagenesis
In-vitro Mutagenesis
Mutagenicity and Carcinogenicity

