Primary Neural Degeneration in the Guinea Pig Cochlea After Reversible Noise-Induced Threshold Shift

Journal of the Association for Research in Otolaryngology - Tập 12 Số 5 - Trang 605-616 - 2011
Harrison W. Lin1,2, Adam C. Furman2,3, Sharon G. Kujawa1,2,3, M. Charles Liberman1,2,3
1Harvard Medical School
2Massachusetts Eye and Ear Infirmary
3Program in Speech and Hearing Biosciences and Technology, Harvard–MIT

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Costalupes JA, Young ED, Gibson DJ (1984) Effects of continuous noise backgrounds on rate response of auditory nerve fibers in cat. J Neurophysiol 51:1326–1344

Hakuba N, Koga K, Gyo K, Usami S, Tanaka K (2000) Exacerbation of noise induced hearing loss in mice lacking the glutamate transporter GLAST. J Neurosci 20:8750–8753

Hashimoto S, Kimura RS, Takasaka T (1991) Computer-aided three-dimensional reconstruction of the inner hair cells and their nerve endings in the guinea pig cochlea. Acta Otolaryngol 109:228–234

Kujawa SG, Liberman MC (2009) Adding insult to injury: cochlear nerve degeneration after “temporary” noise-induced hearing loss. J Neurosci 29:14077–14085

Liberman MC (1978) Auditory-nerve response from cats raised in a low-noise chamber. J Acoust Soc Am 63:442–455

Liberman MC (1980) Morphological differences among radial afferent fibers in the cat cochlea: an electron-microscopic study of serial sections. Hear Res 3:45–63

Liberman MC (1982) Single-neuron labeling in the cat auditory nerve. Science 216:1239–1241

Liberman MC, Dodds LW (1984) Single-neuron labeling and chronic cochlear pathology. III. Stereocilia damage and alterations of threshold tuning curves. Hear Res 16:55–74

Liberman MC, Mulroy MJ (1982) Acute and chronic effects of acoustic trauma: cochlear pathology and auditory nerve pathophysiology. In: Hamernik RP, Henderson D, Salvi R (eds) New perspectives on noise-induced hearing loss. Raven, New York, pp 105–136

Liberman MC, Dodds LW, Learson DA (1986) Structure–function and correlation in noise-damaged ears: a light and electron-microscopic study. In: Salvi RJ, Henderson D, Hamernik RP, Colletti V (eds) Basic and applied aspects of noise-induced hearing loss. Plenum, New York, pp 163–177

Liberman MC, Chesney CP, Kujawa SG (1997) Effects of selective inner hair cell loss on DPOAE and CAP in carboplatin-treated chinchillas. Auditory Neuroscience 3:255–268

Liberman LD, Wang H, Liberman MC (2011) Opposing gradients of ribbon size and AMPA receptor expression underlie sensitivity differences among cochlear-nerve/hair-cell synapses. J Neurosci 31:801–808

Melcher JR, Kiang NYS (1996) Generators of the brainstem auditory evoked potential in cat. III. Identified cell populations. Hear Res 93:52–71

Oshima K, Grimm CM, Corrales CE, Senn P, Martinez Monedero R, Geleoc GS, Edge A, Holt JR, Heller S (2007) Differential distribution of stem cells in the auditory and vestibular organs of the inner ear. J Assoc Res Otolaryngol 8:18–31

Prijs VF (1986) Single-unit response at the round window of the guinea pig. Hear Res 21:127–133

Puel JL, Pujol R, Tribillac F, Ladrech S, Eybalin M (1994) Excitatory amino acid antagonists protect cochlear auditory neurons from excitotoxicity. J Comp Neurol 341:241–256

Puel JL, Ruel J, Gervais d’ Aldin C, Pujol R (1998) Excitotoxicity and repair of cochlear synapses after noise-trauma induced hearing loss. Neuroreport 9:2109–2114

Pujol R, Puel JL (1999) Excitotoxicity, synaptic repair, and functional recovery in the mammalian cochlea: a review of recent findings. Ann N Y Acad Sci 884:249–254

Pujol R, Lenoir M, Robertson D, Eybalin M, Johnstone BM (1985) Kainic acid selectively alters auditory dendrites connected with cochlear inner hair cells. Hear Res 18:145–151

Robertson D (1982) Effects of acoustic trauma on stereocilia structure and spiral ganglion cell tuning properties in the guinea pig cochlea. Hearing Res 7:55–74

Robertson D (1983) Functional significance of dendritic swelling after loud sounds in the guinea pig cochlea. Hearing Res 9:263–278

Ruel J, Wang J, Rebillard G, Eybalin M, Lloyd R, Pujol R, Puel JL (2007) Physiology, pharmacology and plasticity at the inner hair cell synaptic complex. Hear Res 227:19–27

Ruggero MA (1992) Responses to sound of the basilar membrane of the mammalian cochlea. Curr Opin Neurobiol 2:449–456

Schmiedt RA, Mills JH, Boettcher FA (1996) Age-related loss of activity of auditory-nerve fibers. J Neurophysiol 76:2799–2803

Schmitz F (2009) The making of synaptic ribbons: how they are built and what they do. Neuroscientist 15:611–624

Schuknecht HF, Woellner RC (1953) Hearing losses following partial section of the cochlear nerve. Laryngoscope 63:441–465

Spoendlin H (1969) Innervation patterns in the organ of Corti of the cat. Acta Otolaryngol 67:239–254

Spoendlin H (1971) Primary structural changes in the organ of Corti after acoustic overstimulation. Acta Otolaryng 71:166–176

Taberner AM, Liberman MC (2005) Response properties of single auditory nerve fibers in the mouse. J Neurophysiol 93:557–569

Tsuji J, Liberman MC (1997) Intracellular labeling of auditory nerve fibers in guinea pig: central and peripheral projections. J Comp Neurol 381:188–202

Wang Q, Green SH (2011) Functional role of neurotrophin-3 in synapse regeneration by spiral ganglion neurons on inner hair cells after excitotoxic trauma in vitro. J Neurosci 31:7938–7949

Wang Y, Hirose K, Liberman MC (2002) Dynamics of noise-induced cellular injury and repair in the mouse cochlea. J Assoc Res Otolaryngol 3:248–268

Weisz C, Glowatzki E, Fuchs P (2009) The postsynaptic function of type II cochlear afferents. Nature 461:1126–1129

Yoshida N, Liberman MC (2000) Sound conditioning reduces noise-induced permanent threshold shift in mice. Hear Res 148:213–219