Transformation of peripheral inputs by the first-order lateral line brainstem nucleus
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J. Mogdans | J. Montgomery | S. Coombs | M. Halstead | J. Mogdans | S. Coombs | M. Halstead | J. Montgomery
[1] E. Ağar,,et al. Physiological-Morphologial Properties Of The Anteroventral Cochlear Nucleus , 1997 .
[2] B. Claas,et al. Projection of lateral line afferents in a teleost's brain , 1981, Neuroscience Letters.
[3] S. Coombs,et al. Cytoarchitecture of the medial octavolateralis nucleus in the goldfish, Carassius auratus , 1996, The Journal of comparative neurology.
[4] C A McCormick,et al. Connections of octaval and lateral line nuclei of the medulla in the goldfish, including the cytoarchitecture of the secondary octaval population in goldfish and catfish. , 1996, Brain, behavior and evolution.
[5] H. Bleckmann,et al. Sensitivity of central units in the goldfish, Carassius auratus, to transient hydrodynamic stimuli. , 1997, Brain, behavior and evolution.
[6] C A Shumway,et al. Multiple electrosensory maps in the medulla of weakly electric gymnotiform fish. I. Physiological differences , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[7] T. Finger,et al. Central organization of eighth nerve and mechanosensory lateral line systems in the brainstem of ictalurid catfish , 1984, The Journal of comparative neurology.
[8] C. A. Mccormick,et al. Organization of inner ear endorgan projections in the goldfish, Carassius auratus. , 1994, Brain, behavior and evolution.
[9] D. Bodznick,et al. An adaptive filter that cancels self-induced noise in the electrosensory and lateral line mechanosensory systems of fish , 1994, Neuroscience Letters.
[10] 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.
[11] S. Coombs. Natural Orienting Behaviors For Measuring Lateral Line Function , 1995 .
[12] S. Coombs,et al. Anatomy and differential growth of the lateral line system of the mottled sculpin, Cottus bairdi (Scorpaeniformes: Cottidae). , 1987, Brain, behavior and evolution.
[13] Halstead,et al. Hindbrain signal processing in the lateral line system of the dwarf scorpionfish Scopeana papillosus , 1996, The Journal of experimental biology.
[14] Olav Sand,et al. The Lateral Line and Sound Reception , 1981 .
[15] E D Young,et al. Organization of dorsal cochlear nucleus type IV unit response maps and their relationship to activation by bandlimited noise. , 1991, Journal of neurophysiology.
[16] J. Janssen,et al. Lateral Line Receptivity in the Mottled Sculpin (Cottus bairdi) , 1986 .
[17] J. Bastian. Electrolocation: II. The effects of moving objects and other electrical stimuli on the activities of two categories of posterior lateral line lobe cells inApteronotus albifrons , 1981 .
[18] R L Puzdrowski,et al. Peripheral distribution and central projections of the lateral-line nerves in goldfish, Carassius auratus. , 1989, Brain, behavior and evolution.
[19] R. Fay. Physiology of primary saccular afferents of goldfish: implications for Mauthner cell response. , 1995, Brain, behavior and evolution.
[20] 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.
[21] Sheryl Coombs,et al. Dipole source localization by mottled sculpin. I. Approach strategies , 1997, Journal of Comparative Physiology A.
[22] H. Bleckmann. Reception of hydrodynamic stimuli in aquatic and semiaquatic animals , 1994 .
[23] R. Northcutt,et al. The primary projections of the lateral-line nerves of the Florida gar, Lepisosteus platyrhincus. , 1991, Brain, behavior and evolution.
[24] David Bodznick,et al. Suppression of Ventilatory Reafference in the Elasmobranch Electrosensory System: Medullary Neuron Receptive Fields Support a Common Mode Ejection Mechanism , 1992 .
[25] E. Batschelet. Circular statistics in biology , 1981 .