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A fish that escapes towards looming-disk stimuli
Wolfram Schulze1, Peter Machnik1, Stefan Schuster1
1Department of Animal Physiology, University of Bayreuth, Universitätsstrasse 30, 95447 Bayreuth, Germany.
The Journal of Experimental Biology
|September 30, 2025
Summary
Fish escape responses usually move away from danger. However, shell-dwelling cichlids unexpectedly turn towards their shell, even when a threat approaches, challenging conserved escape circuitry theories.
Area of Science:
- Ethology
- Neuroethology
- Animal Behavior
Background:
- Escape responses are crucial for animal survival.
- Typically, fish escape stimuli by moving away from the perceived threat.
- Conserved neural circuits are believed to direct these evasive maneuvers.
Purpose of the Study:
- To investigate the directionality of escape responses in shell-dwelling cichlids.
- To challenge the prevailing view of conserved, conserved circuitry in fish escape behavior.
- To determine if visual looming stimuli consistently elicit away-directed escapes in all fish species.
Main Methods:
- Observation of shell-dwelling cichlids' reactions to visual looming-disk stimuli.
- Analysis of the initial direction of C-start escape responses.
- Comparison of escape directions relative to stimulus presentation and shell proximity.
Main Results:
- Visual looming-disk stimuli elicited rapid C-start escape responses in shell-dwelling cichlids.
- The direction of these C-starts was not consistently away from the stimulus.
- Fish initiated escapes towards their protective shell, irrespective of the stimulus's direction.
Conclusions:
- Shell-dwelling cichlids exhibit a unique escape strategy, prioritizing shelter over immediate evasion.
- This behavior provides a counterexample to the hypothesis of universally conserved escape circuitry in fish.
- The findings suggest greater behavioral plasticity and context-dependent escape responses than previously assumed.

