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The cochlear frequency map of the mustache bat,Pteronotus parnellii

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Summary

The frequency-place map of the cochlea of mustache bats was constructed by the analysis of HRP-transport patterns in spiral ganglion cells following iontophoretic tracer injections into cochlear nucleus regions responsive to different frequencies.

The cochlea consists of 5 half turns (total length 14.3 mm) and the representation of certain frequency bands can be assigned to specific cochlear regions:

  1. 1.

    The broad high frequency range between 70 and 111 kHz is represented in the most basal half turn within only 3.2 mm. This region is terminated apically by a distinct narrowing of the scala vestibuli that coincides with a pronounced increase in basilar membrane (BM) thickness.

  2. 2.

    The narrow intermediate frequency range between 54 and 70 kHz is expanded onto 50% of cochlear length between 4.0 and 11.1 mm distance from apex. The frequency range around 60 kHz, where the tuning characteristics of the auditory system are exceptionally sharp, is located in the center of this expanded BM-region in the second half turn within a maximum of innervation density. These data can account for the vast overrepresentation of neurons sharply tuned to about 60 kHz at central stations of the auditory pathway. In the cochlear region just basal to the innervation maximum, where label from injections at 66 and 70 kHz was found, a number of morphological specializations coincide: the BM is maximally thickened, innervation density is low, the spiral ligament is locally enlarged, and the ‘thick lining’, a dense covering of the scala tympani throughout the basal halfturn, suddenly disappears.

  3. 3.

    Low frequencies up to 54 kHz are represented within the apical half turns over a 4 mm span of the basilar membrane.

The data are compared to the cochlea of horseshoe bats and the possible functional role of the morphological discontinuities for sharp tuning and the generation of otoacoustic emissions is discussed.

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Abbreviations

AN :

auditory nerve

AVCN :

anteroventral CN

BF :

best frequency

BM :

basilar membrane

CF :

constant frequency

CN :

cochlear nucleus

EOAE :

evoked otoacoustic emission

FM :

frequency modulated

HRP :

horseradish peroxidase

IHC :

inner hair cell

PVCN :

posteroventral CN

RF :

resting frequency

References

  • Adams JC (1977) Technical considerations on the use of horseradish peroxidase as a neuronal marker. Neuroscience 2: 142–145

    Google Scholar 

  • Békésy G von (1960) Experiments in hearing. McGraw-Hill Book Company, New York Toronto London

    Google Scholar 

  • Bruns V (1976a) Peripheral auditory tuning for fine frequency analysis by the CF-FM bat,Rhinolophus ferrumequinum. I. Mechanical specializations of the cochlea. J Comp Physiol 106:77–86

    Google Scholar 

  • Bruns V (1976b) Peripheral auditory tuning for fine frequency analysis by the CF-FM bat,Rhinolophus ferrumequinum. II. Frequency mapping in the cochlea. J Comp Physiol 106:87–97

    Google Scholar 

  • Bruns V, Schmieszek E (1980) Cochlear innervation in the Greater Horseshoe bat: Demonstration of an acoustic fovea. Hearing Res 3:27–43

    Google Scholar 

  • Feng AS, Vater M (1985) Functional organization of the cochlear nucleus of roufous Horseshoe bats (Rhinolophus rouxi): Frequencies and internal connections are arranged in slabs. J Comp Neurol 235:529–555

    Google Scholar 

  • Goldner J (1938) A modification of the Masson trichrometechnique for routine laboratory purpose. Am J Pathol 14:237–243

    Google Scholar 

  • Henson MM (1978) The basilar membrane of the bat,Pteronotus p. parnellii. Am J Anat 153:143–158

    Google Scholar 

  • Henson MM, Henson OW Jr, Goldman LJ (1977) The perilymphatic spaces in the cochlea of the bat,Pteronotusp. parnellii (Gray). Anat Rec 187:767

    Google Scholar 

  • Henson MM, Henson OW Jr, Jenkins DB (1984) The attachment of the spiral ligament to the cochlear wall: Anchoring cells and the creation of tension. Hearing Res 16:231–242

    Google Scholar 

  • Henson OW Jr (1970) The ear and audition. In: Wimsatt WA (ed) Biology of bats, Vol 2. Academic Press, New York, pp 181–263

    Google Scholar 

  • Henson OW Jr, Kobler JB (1979) Temperature and its effect on the CM-audiogram of the bat,Pteronotus p. parnellii. Anat Rec 193:744

    Google Scholar 

  • Henson OW Jr, Schuller G, Vater M (1985) A comparative study of the physiological properties of the inner ear in Doppler shift compensating bats (Rhinolophus rouxi andPteronotus parnellii). J Comp Physiol A 157:587–597

    Google Scholar 

  • Jenkins DB, Henson MM, Henson OW Jr (1983) Ultrastructure of the lining of the scala tympani of the bat,Pteronotus parnellii. Hearing Res 11:23–32

    Google Scholar 

  • Kemp DT (1978) Stimulated acoustic emissions from within the human auditory system. J Acoust Soc Am 64:1386–1391

    Google Scholar 

  • Kemp DT (1979) The evoked cochlear mechanical response and the auditory microstructure — evidence for a new element in cochlear mechanics. Scand Audiol Suppl 9:35–47

    Google Scholar 

  • Kemp DT (1981) Physiologically active micromechanics ⪿ne source of tinnitus. In: Evered D, Lawrenson G (eds) Tinnitus. Pitman Books, London (Ciba Foundation Symposion 85), pp 54–81

    Google Scholar 

  • Kössl M, Vater M (1985) Evoked acoustic emissions and cochlear microphonics in the mustache bat,Pteronotus parnellii. Hearing Res (in press)

  • Leake PM, Zook JM (1985) Demonstration of an acoustic fovea in the mustache bat,Pteronotus parnellii: Lim DJ (ed) Abstracts of the eighth midwinter research meeting of the Association for Research in Otolaryngology, Clearwater Beach, Florida, pp 27–28

    Google Scholar 

  • Liberman MC (1982) The cochlear frequency map for the cat: Labelling auditory-nerve fibers of known characteristic frequency. J Acoust Soc Am 72:1441–1449

    Google Scholar 

  • Long GR, Schnitzler H-U (1975) Behavioral audiograms from the bat,Rhinolophus ferrumeqinum. J Comp Physiol 100:211–219

    Google Scholar 

  • Mesulam M-M (1978) Tetramethyl benzidine for horseradish peroxidase neurohistochemistry: Incubation parameters and visibility. J Histochem Cytochem 24:1273–1280

    Google Scholar 

  • Neuweiler G (1970) Neurophysiologische Untersuchungen zum Echoortungssystem der Großen HufeisennaseRhinolophus ferrumequinum Schreber, 1774. Z Vergl Physiol 67:273–306

    Google Scholar 

  • Neuweiler G, Bruns V, Schuller G (1980) Ears adapted for the detection of motion, or how echolocating bats have exploited the capacities of the mammalian auditory system. J Acoust Soc Am 68:741–753

    Google Scholar 

  • Pollak G, Henson OW Jr, Novick A (1972) Cochlear microphonic audiograms in the ‘pure tone’ batChilonycteris parnellii parnellii. Science 176:66–68

    Google Scholar 

  • Pollak GD, Henson OW Jr, Johnson R (1979) Multiple specializations in the peripheral auditory system of the CF-FM bat,Pteronotus parnellii. J Comp Physiol 131:255–266

    Google Scholar 

  • Pye A (1980) The cochlea inPteronotus parnellii. In: Busnel RG, Fish JF (eds) Animal sonar systems. Plenum Press, New York, pp 965–967

    Google Scholar 

  • Schuller G (1980) Hearing characteristics and Doppler shift compensation in South Indian CF-FM bats. J Comp Physiol 139:349–356

    Google Scholar 

  • Spoendlin H (1973) The innervation of the cochlear receptor. In: Moller A (ed) Basic mechanisms in hearing. Academic Press, New York London, pp 185–235

    Google Scholar 

  • Suga N (1984) Neural mechanisms of complex-sound processing for echolocation. Trends Neurosci 7:20–27

    Google Scholar 

  • Suga N, Simmons JA, Jen PH-S (1975) Peripheral specializations for fine analysis of Doppler shifted echoes. J Exp Biol 63:161–192

    Google Scholar 

  • Suga N, Jen PH-S (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 

  • Vater M, Feng AS, Betz M (1985) An HRP-study on the frequency place map of the horseshoe bat cochlea: Morphological correlates of the sharp tuning to a narrow frequency band. J Comp Physiol A 157:671–686

    Google Scholar 

  • Zwicker E (1979) A model describing nonlinearities in hearing by active processes with saturation at 40 dB SPL. Biol Cybern 35:243–250

    Google Scholar 

  • Zwicker E, Schloth E (1984) Interrelation of different otoacoustic emissions. J Acoust Soc Am 75:1148–1154

    Google Scholar 

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Kössl, M., Vater, M. The cochlear frequency map of the mustache bat,Pteronotus parnellii . J. Comp. Physiol. 157, 687–697 (1985). https://doi.org/10.1007/BF01351362

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