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ON-OFF units in the mustached bat inferior colliculus are selective for transients resembling “acoustic glint” from fluttering insect targets

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Summary

Of 311 single units studied in the central nucleus of the inferior colliculus (ICC) in 18 mustached bats (Pteronotus parnelli), a small but significantopulation (13%) of cells with on-off discharge patterns to tone bursts at best frequency (BF) was found in the dorsoposterior division. In contrast to units with the same BF's but other discharge patterns, the majority of ON-OFF units were unresponsive to sinusoidally amplitudemodulated tone bursts (SAM). To define the contribution of linear and nonlinear components to the responses of ICC neurons to amplitude modulation, we tested some of these neurons with a long, seamlessly repeating pseudorandom sequence of ternary amplitude-modulated tones at BF. Wiener-like kernels were subsequently derived from cross-correlation of spikes with acoustic events in the sequence. These kernels provided estimates of neural impulse responses that proved unusual in SAM-unresponsive ON-OFF units. First, their estimated impulse response had no linear component. Second, the predicted second-order impulse responses to both increments and decrements in stimulus intensity were long (about 20 ms) and nearly identical in shape: triphasic, with the positive phase bounded by leading and trailing negative periods. The similar shape of responses to increments and decrements in these neurons suggests a full-wave rectifier. The triphasic, initially negative condorder prediction of the impulse response accounted for an unusual result in experiments measuring the recovery cycle of ON-OFF units using a pair of identical stimulus pulses separated by various time delays. This recovery cycle can be related to their response to amplitude modulation. As the delay between two brief, near-threshold BF tone bursts decreased, the response to the first tone diminished, rather than to the second. The second-order prediction of this experiment derived from impulse responses obtained with pseudorandom noise suggests that, at short interpulse intervals, the initial negative phase of the response to the later stimulus cancels the positive phase of the response to the first. Such cancellation at short interpulse intervals may help explain why the majority of ON-OFF units are unresponsive to SAM. The unusual properties of these ON-OFF units make them ideally suited to respond selectively to infrequent acoustic transients superimposed on an ongoing background of modulation. Such patterns are commonly encountered by mustached bats foraging in cluttered habitats for small, fluttering insects, which generate “acoustic glints” upon a background of modulated echoes from the surroundings (Schnitzler et al. 1983; Henson et al. 1987).

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References

  • Emerson RC, Citron MC, Vaughn WJ, Klein SA (1987) Nonlinear directionally selective subunits in complex cells of cat striate cortex. J Neurophysiol 58:33–65

    Google Scholar 

  • Emerson RC, Korenberg MJ, Citron MC (1989) Identification of intensive nonlinearities in cascade models of visual cortex and its relation to cell classification. In: Marmarelis VZ (eds) Advanced methods of physiological system modeling, Vol. 2. Plenum, New York,pp 97–111

    Google Scholar 

  • Friend JH, Suga N, Suthers RA (1966) Neural responses in the inferior colliculus of echolocating bats to artificial orientation sounds and echoes. J Cell Physiol 67:319–332

    Google Scholar 

  • Goldman LJ, Henson OW (1977) Prey recognition and selection by the constant frequency bat, Pteronotus p. parnellii. Behav Biol Sociobiol 2:411–419

    Google Scholar 

  • Griffin DR (1958) Listening in the dark. Yale University Press, New Haven

    Google Scholar 

  • Grinnell AD (1963) The neurophysiology of audition in bats: temporal parameters. J Physiol 167:67–96

    Google Scholar 

  • ]Henson Jr OW, Bishop A, Keating A, Kobler J, Henson M, Wilson B, Hansen R (1987) Biosonar imaging of insects by Pteronotus p. parnellii, the mustached bat. Nat Geographic Res 3:82–101

    Google Scholar 

  • Kobler JB, Wilson BS, Henson Jr. OW, Bishop AL (1985) Echo intensity compensation by echolocating bats. Hearing Res 20:99–108

    Google Scholar 

  • Kössl M, Vater M (1985) Evoked acoustic emissions and cochlear microphonics in the mustached bat, Pteronotus parnelli. Hearing Res 19:157–170

    Google Scholar 

  • Lesser HD (1988) Encoding of amplitude-modulated sounds by single units in the inferior colliculus of the mustached bat, Pteronotus parnelli. Ph. D thesis. University of Rochester

  • Link A, Marimuthu G, Neuweiler G (1986) Movement as a specific stimulus for prey catching behaviour in rhinolophid and hipposiderid bats. J Comp Physiol A 159:403–413

    Google Scholar 

  • Marmarelis PZ, Marmarelis VZ (1978) Analysis of physiological systems: the white-noise approach. Plenum, New York

    Google Scholar 

  • Møller A (1983) Use of pseudorandom noise in studies of frequency selectivity: the periphery of the auditory system. Biol Cybern 47:95–102

    Google Scholar 

  • Møller A, Rees A (1986) Dynamic properties of the responses of single neurons in the inferior colliculus of the rat. Hearing Res 24:203–215

    Google Scholar 

  • Neuweiler G, Vater M (1977) Response patterns to pure tones of cochlear nucleus units in the CF-FM bat, Rhinolophus ferrumequinum. J Comp Physiol A 115:119–133

    Google Scholar 

  • O'Neill WE (1985) Responses to pure tones and linear FM components of the CF-FM biosonar signal by single units in the inferior colliculus of the mustached bat. J Comp Physiol A 157:797–815

    Google Scholar 

  • O'Neill WE, Frisina RD, Gooler DM (1989) Functional organization of mustached bat inferior colliculus. I. Representation of FM2 frequencies important for target ranging revealed by 14C-2-deoxyglucose autoradiography and single unit mapping. J Comp Neurol 284:60–84

    Google Scholar 

  • Ostwald J (1984) Tonotopical organization and pure tone response characteristics of single units in the auditory cortex of the greater horseshoe bat. J Comp Physiol A 155:821–834

    Google Scholar 

  • Pfeiffer RR (1966) Classification of response patterns of spike discharges for units in the cochlear nucleus: tone burst stimulation. Exp Brain Res 1:220–235

    Google Scholar 

  • Pollak GD, Bodenhamer R, Marsh DS, Souther A (1977) Recovery cycles of single neurons in the inferior colliculus of unanaesthetized bats obtained with frequency-modulated and constantfrequency sounds. J Comp Physiol A 120:215–250

    Google Scholar 

  • Pollak GD, Bodenhamer RD (1981) Specialized characteristics of single units in inferior colliculus of mustache bat: frequency representation, tuning, and discharge patterns. J Neurophysiol 46:605–620

    Google Scholar 

  • Pollak GD, Henson OW, Novick A (1972) Cochlear microphonic audiograms in the pure tone bat Chilonycteris parnellii parnellii. Science 176:66–68

    Google Scholar 

  • Pollak GD, Schuller G (1981) Tonotopic organization and encoding features of single units in inferior colliculus of horseshoe bats: functional implications for prey identification. J Neurophysiol 45:208–226

    Google Scholar 

  • Rees A, Møller AR (1983) Responses of neurons in the inferior colliculus of the rat to AM and FM tones. Hearing Res 10:301–330

    Google Scholar 

  • Schetzen M (1980) The Volterra and Wiener theories of nonlinear systems. Wiley & Sons, New York

    Google Scholar 

  • Schnitzler H-U (1968) Die Ultraschall-Ortungslaute der HufeisenFledermäuse (Chiroptera-rhinolophidae) in verschiedenen Orientierungssituationen. Z Vergl Physiol 57:376–408

    Google Scholar 

  • Schnitzler H-U (1970) Echoortung bei der Fledermaus Chilonycteris rubiginosa. Z Vergl Physiol 68:25–38

    Google Scholar 

  • Schnitzler H-U, Flieger E (1983) Detection of oscillating target movement by echolocation in the greater horseshoe bat. J Comp Physiol A 153:385–391

    Google Scholar 

  • Schnitzler H-U, Menne D, Kober R, Heblich K (1983) The acoustical image of fluttering insects in echolocating bats. In: Huber F, Markl H (eds) Neuroethology and behavioral physiology: roots and growing points. Springer, Berlin Heidelberg New York, pp 235–250

    Google Scholar 

  • Schuller G (1984) Natural ultrasonic echoes from wing beating insects are encoded by collicular neurons in the CF-FM bat, Rhinolophus ferrumequinum. J Comp Physiol A 155:121–128

    Google Scholar 

  • Schuller G, Pollak GD (1979) Disproportionate frequency representation in the inferior colliculus of Doppler-compensating greater horseshoe bats: evidence for an acoustic fovea. J Comp Physiol 132:47–54

    Google Scholar 

  • Suga N (1964) Recovery cycles and responses to frequency modulated tone pulses in auditory neurones of echolocating bats. J Physiol 175:50–80

    Google Scholar 

  • Suga N, Jen PH (1976) Disproportionate tonotopic representation for processing CF-FM sonar signals in the mustache bat auditory cortex. Science 194:542–544

    Google Scholar 

  • Suga N, Jen PH (1977) Further studies on the peripheral auditory system of ‘CF-FM’ bats specialized for fine frequency analysis of Doppler-shifted echoes. J Exp Biol 69:207–232

    Google Scholar 

  • Suga N, Manabe T (1982) Neural basis of amplitude-spectrum representation in auditory cortex of the mustached bat. J Neurophysiol 47:225–255

    Google Scholar 

  • Suga N, Neuweiler G, Möller J (1976) Peripheral auditory tuning for fine frequency analysis by the CF-FM bat, Rhinolophus ferrumequinum. IV. Properties of peripheral auditory neurons. J Comp Physiol A 106:111–125

    Google Scholar 

  • Suga N, Schlegel P (1973) Coding and processing in the auditory systems of FM signal producing bats. J Acoust Soc Amer 54:174–190

    Google Scholar 

  • Suga N, Simmons JA, Jen PH-S (1975) Peripheral specialization for fine analysis of Doppler-shifted echoes in the auditory system of the CF-FM bat, Pteronotus parnellii. J Exp Biol 63:161–192

    Google Scholar 

  • Trappe M, Schnitzler H-U (1982) Doppler-shift compensation in insect-catching horseshoe bats. Naturwissenschaften 69:193–194

    Google Scholar 

  • Tukey JW (1977) Exploratory data analysis. Addison-Wesley, Reading, MA

    Google Scholar 

  • Zook JM, Winer JA, Pollak GD, Bodenhamer RD (1985) Topology of the central nucleus of the mustache bat's inferior colliculus: correlation of single unit properties and neuronal architecture. J Comp Neurol 231:530–546

    Google Scholar 

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Lesser, H.D., O'Neill, W.E., Frisina, R.D. et al. ON-OFF units in the mustached bat inferior colliculus are selective for transients resembling “acoustic glint” from fluttering insect targets. Exp Brain Res 82, 137–148 (1990). https://doi.org/10.1007/BF00230845

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  • DOI: https://doi.org/10.1007/BF00230845

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