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Visual Signals in an Optomotor Reflex: Systems and Information Theoretic Analysis

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Abstract

Compensatory optomotor reflexes were examined in crayfish (Procambarus clarkii) with oscillating sine wave gratings and step displacements of a single stripe. A capacitance transducer was used to measure the rotation of the eyestalk about its longitudinal axis. System studies reveal a spatial frequency response independent of velocity and stimulus amplitude and linear contrast sensitivity similar to that of neurons in the visual pathway. The reflex operates at low temporal frequencies (<0.002 Hz to 0.5 Hz) and exhibits a low-pass temporal frequency response with cut-off frequency of 0.1 Hz. Eyestalk rotation increases as a saturable function of the angular stimulus displacement. When compared to the oscillatory response, transient responses are faster, and they exhibit a lower gain for large stimulus displacements. These differences may reflect system nonlinearity and/or the presence of at least two classes of afferents in the visual pathway. Our metric for information transmission is the Kullback-Leibler (K-L) distance, which is inversely proportional to the probability of an error in distinguishing two stimuli. K-L distances are related to differences in responsiveness for variations in spatial frequency, contrast, and angular displacement. The results are interpreted in terms of the neural filters that shape the system response and the constraints that the K-L distances place on information transmission in the afferent visual pathway.

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References

  • Barnes WJP, Horseman BG, Macauley MWS (2001) The detection and analysis of optic flow by crabs: From eye movements to electrophysiology. In: K Wiese, ed. Crustacean Neurobiology. Springer Verlag, New York.

    Google Scholar 

  • Egelhaaf M, Borst A, Reichardt W(1989) Computational structure of a biological motion detection system as revealed by local detector analysis in the fly's nervous system. Journal of the Optical Society of America 6: 1070–1087.

    Google Scholar 

  • Glantz RM(1994) Directional selectivity in a nonspiking interneuron of the crayfish optic lobe: Evaluation of a linear mode. Journal of Neurophysiology 72: 180–193.

    Google Scholar 

  • Glantz RM, Bartels A(1994) The spatiotemporal transfer function of crayfish lamina monopolar neurons. Journal of Neurophysiology 72: 2168–2182.

    Google Scholar 

  • Glantz RM, Nudelman H (1988) Interval coding and band-pass filtering at oculomotor synapses in crayfish. Journal of Neurophysiology 59: 56–76.

    Google Scholar 

  • Glantz RM, Nudelman H, Waldrop B (1984) Linear integration of convergent visual inputs in an oculomotor reflex pathway. Journal of Neurophysiology 52: 1213–1225.

    Google Scholar 

  • Glantz RM, Wyatt C, Mahncke H (1995) Directionally selective motion detection in the sustaining fibers of the crayfish optic nerve: Linear and nonlinear mechanisms. Journal of Neurophysiology 74: 142–152.

    Google Scholar 

  • Harris DA, Stark L (1972) Information theoretical analysis of a cray-fish behavioral system. Brain Research 36: 425–430.

    Google Scholar 

  • Higuchi T, Hisada M (1973) Visual and geotactic contributions to oculomotor responses in the crayfish Procambarus clarkii. Journal of the Faculty of Science Hokkaido Medical School VI 18(4): 495–506.

    Google Scholar 

  • Hisada M, Sugawara K, Higuchi T (1969) Visual and geotactic control of compensatory eyecup movement in the crayfish, Procambarus clarkii. Journal of the Faculty of Science Hokkaido Medical School VI 17: 224–239.

    Google Scholar 

  • Johnson DH, Dudgeon DE(1993) Array Signal Processing. Prentice-Hall, Englewood Cliffs, NJ.

    Google Scholar 

  • Johnson DH, Gruner CM, Glantz RM (2000) Quantifying information transfer in spike generation. Neurocomputing 32- 33: 1047–1054.

    Google Scholar 

  • Mellon DeF (1977) The anatomy and motor nerve distribution of the eye muscles in the crayfish. Journal of Comparative Physiology 121: 349–366.

    Google Scholar 

  • Mellon DeF, Lorton ED (1977) Reflex actions of the functional divions in the crayfish oculomotor system. Journal of Comparative Physiology 121: 367–380.

    Google Scholar 

  • Miller GA (1956) The magical number seven, plus or minus two: Some limits on our capacity for information processing. Psychological Reviews 63: 81–97.

    Google Scholar 

  • Miller C, Glantz R (2000) Measurement and simulation of stimulus and response in the dorsal light reflex of the crayfish. Ninth Annual Computational Neuroscience Meeting (abstracts), p. 99.

  • Milsum JH (1966) Biological Control Systems Analysis. McGraw-Hill, New York.

    Google Scholar 

  • Nalbach H-O (1989) Three temporal frequency channels constitute the dynamics of the optokinetic system of the crab Carcinus maenas (L.). Biological Cybernetics 61: 59–70.

    Google Scholar 

  • Neil DM, Schöne H, Scapini F, Miyan JA (1983) Optokinetic responses, visual adaptation and multisensory control of eye movements in the spiny lobster, Palinurus vulgaris. Journal of Experimental Biology 107: 349–366.

    Google Scholar 

  • Okada Y, Yamaguchi T (1988) Nonspiking giant interneurons in the crayfish brain: Morphological and physiological characteristics of the neurons postsynaptic to visual interneurons. Journal of Comparative Physiology 162: 705–714.

    Google Scholar 

  • Reichardt W (1969) Movement perception in insects. In: W Reichardt, ed. Processing of Optical Data by Organisms and by Machines. Academic Press, New York, pp. 465–493.

    Google Scholar 

  • Reichardt W (1987) Evaluation of optical motion information by movement detectors. Journal of Comparative Physiology 161: 533–547.

    Google Scholar 

  • Sagi E, Wong W, Norwich KH (2001) Mathematical studies of the information in the stimulus-response matrix. Journal of Mathematical Psychology 45: 99–114.

    Google Scholar 

  • Sandeman DC (1968) A sensitive position measuring device for biological systems. Comparative Biochemistry and Physiology 24: 635–638.

    Google Scholar 

  • Sandeman DC, Kein J, Erber J (1975) Optokinetic eyemovements in the crab, Carcinus maenas. II. Responses of optokinetic interneurons. Journal of Comparative Physiology 101: 259–274.

    Google Scholar 

  • Schöne H, Neil DM, Scapini F, Dreissman G (1983) Interaction of substrate, gravity and visual cues in the control of compensatory eye responses in the spiny lobster, Palinurus vulgaris. Journal of Comparative Physiology 150: 23–30.

    Google Scholar 

  • Sugawara KM, Hisada M, Higuchi T (1971) Eyestalk musculature of the crayfish, Procambarus clarkii. Journal of the Faculty of Science Hokkaido Medical School VI Zool. 18: 45–50.

    Google Scholar 

  • Waterman TH, Wiersma CAG, Bush BM (1964) Afferent visual responses in the optic nerve of the crab, Podophthalmus. Journal of Cellular Physiology 63: 135–155.

    Google Scholar 

  • Wiersma CAG, Oberjat T (1968) The selective responsiveness of various crayfish oculomotor fibers to sensory stimuli. Comparative Biochemistry and Physiology 26: 1–16.

    Google Scholar 

  • Wilson EO (1975) Sociobiology. Harvard University Press, Cambridge, MA. pp. 194–200.

    Google Scholar 

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Miller, C.S., Johnson, D.H., Schroeter, J.P. et al. Visual Signals in an Optomotor Reflex: Systems and Information Theoretic Analysis. J Comput Neurosci 13, 5–21 (2002). https://doi.org/10.1023/A:1019601809908

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  • DOI: https://doi.org/10.1023/A:1019601809908