Shallow water (paddling) variants of water maze tests in mice

Robert M J Deacon1

  • 1Department of Experimental Psychology, University of Oxford. robert.deacon@psy.ox.ac.uk

Insights

Researchers developed a new shallow water paddling maze to improve behavioral testing for mice. This refined apparatus addresses issues with traditional water mazes, offering a more natural and less stressful escape strategy for improved mouse welfare and research accuracy.

Area of Science:

  • Behavioral Neuroscience
  • Animal Behavior
  • Laboratory Animal Science

Background:

  • Traditional Morris water maze presents challenges for certain mouse strains due to their natural aversion to water and risk of hypothermia.
  • Mice, unlike rats, evolved in arid environments, making deep water testing problematic and potentially confounding.
  • Existing methods require extensive post-trial care to prevent hypothermia, impacting experimental efficiency and animal welfare.

Purpose of the Study:

  • To refine existing water maze protocols for improved mouse behavioral testing.
  • To develop an apparatus that accommodates mice's natural escape tendencies and reduces stress.
  • To enhance the 'Refinement' principle of the '3 Rs' in animal research.

Main Methods:

  • Development of a shallow water (2 cm deep) paddling maze.
  • Incorporation of an escape strategy mimicking natural thigmotaxis (swimming to the edge).
  • Utilized transparent walls with multiple visually similar true and false exits.

Main Results:

  • The shallow water and naturalistic escape significantly reduced issues like passive floating and diving observed in traditional mazes.
  • The design facilitates learning by aligning with evolved escape behaviors.
  • Successful testing of dodecagonal and transparent Y-maze variations, indicating adaptability.

Conclusions:

  • The shallow water paddling maze offers a more suitable and ethical alternative for mouse behavioral studies.
  • This refined method improves data reliability by reducing stress and confounding factors.
  • The design aligns with the principles of animal welfare in scientific research.

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