Dipole source localization by mottled sculpin. I. Approach strategies

Abstract Lake Michigan mottled sculpin respond to a chemically-inert vibrating sphere (a dipole source) with an initial orientation towards the source followed by a step-wise progression towards and final strike at the source. An analysis of videotape recordings of this behavior indicate that although pathways to the source varied, they tended to be influenced by the fish's position at signal onset. Fish heading toward the source at signal onset approached the source in an indirect fashion by either (a) keeping the source to one side in a smoothly arching path to the source or (b) alternating between keeping the source to the left and to the right. When the source was to the side of the fish at the time of stimulus onset, fish tended to approach the source in a more direct path. Most (79%) initial orienting responses placed the fish within 45° of the source, but response angles were not strongly correlated with initial source angle. Most (83%) unsuccessful strikes (misses) occurred when the source was directly in front of the fish (± 20°) and source angles associated with misses were significantly smaller than source angles associated with successful strikes. Approach strategies used by mottled sculpin in finding dipole sources appear to include (1) moving in a direction that increases the pressure difference along the head while keeping it consistently low (between 1 and 10 Pa) across the head, (2) narrowing the fish-to-source gap with each successive step in the pathway, (3) keeping the source lateralized (on average, 30° to one or the other side of the head) and (4) avoiding approach positions that are perpendicular to the flow line or that place the fish in the pressure null area of the dipole field. These results are consistent with the hypothesis that spatial excitation patterns along the lateral line system play a major role in encoding both source direction and distance.

[1]  Sheryl Coombs,et al.  Dipole source localization by the mottled sculpin II. The role of lateral line excitation patterns , 1997, Journal of Comparative Physiology A.

[2]  S. Coombs Natural Orienting Behaviors For Measuring Lateral Line Function , 1995 .

[3]  J. Janssen,et al.  Localization of Substrate Vibrations by the Mottled Sculpin (Cottus bairdi) , 1990 .

[4]  P. Morse Vibration and Sound , 1949, Nature.

[5]  C. Hopkins,et al.  Electric fish approach stationary signal sources by following electric current lines. , 1987, The Journal of experimental biology.

[6]  Elke Blübaum-Gronau,et al.  The Lateral Line System of Surface-Feeding Fish: Anatomy, Physiology, and Behavior , 1989 .

[7]  Olav Sand,et al.  Selective and Reversible Blocking of the Lateral Line in Freshwater Fish , 1987 .

[8]  R. Hinde,et al.  Animal Behavior: A Synthesis of Ethology and Comparative Psychology , 1967 .

[9]  J. Janssen,et al.  Lateral Line Receptivity in the Mottled Sculpin (Cottus bairdi) , 1986 .

[10]  R. Fay,et al.  Hot-film anemometry for measuring lateral line stimuli. , 1989, The Journal of the Acoustical Society of America.

[11]  J. Gray,et al.  Interaction of sound pressure and particle acceleration in the excitation of the lateral-line neuromasts of sprats , 1984, Proceedings of the Royal Society of London. Series B. Biological Sciences.

[12]  E. Denton,et al.  Mechanical factors in the excitation of clupeid lateral lines , 1983, Proceedings of the Royal Society of London. Series B. Biological Sciences.

[13]  J. Gray,et al.  Patterns of Excitation of the Lateral Line of the Ruffe , 1989 .

[14]  S. Coombs,et al.  Nearfield detection of dipole sources by the goldfish (Carassius auratus) and the mottled sculpin (Cottus bairdi). , 1994, The Journal of experimental biology.

[15]  Carl D. Hopkins,et al.  Behavioural analysis of electric signal localization in the electric fish, Gymnotus carapo (Gymnotiformes) , 1988, Animal Behaviour.

[16]  Stimulation of the Acoustico-Lateralis System of Clupeid Fish by External Sources and their Own Movements , 1993 .

[17]  El-S. Hassan,et al.  Mathematical description of the stimuli to the lateral line system of fish, derived from a three-dimensional flow field analysis. III. The case of an oscillating sphere near the fish , 1993, Biological Cybernetics.

[18]  Ad. J. Kalmijn,et al.  Detection of Weak Electric Fields , 1988 .

[19]  Ad. J. Kalmijn,et al.  Functional Evolution of Lateral Line and Inner Ear Sensory Systems , 1989 .