Development of tinnitus-related neuronal hyperactivity through homeostatic plasticity after hearing loss: a computational model

被引:205
作者
Schaette, Roland
Kempter, Richard
机构
[1] Humboldt Univ, Dept Biol, Inst Theoret Biol, D-10115 Berlin, Germany
[2] Med Fac Berlin, Ctr Res Neurosci, Berlin, Germany
[3] Bernstein Ctr Computat Neurosci Berlin, Berlin, Germany
关键词
D O I
10.1111/j.1460-9568.2006.04774.x
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Tinnitus, the perception of a sound in the absence of acoustic stimulation, is often associated with hearing loss. Animal studies indicate that hearing loss through cochlear damage can lead to behavioral signs of tinnitus that are correlated with pathologically increased spontaneous firing rates, or hyperactivity, of neurons in the auditory pathway. Mechanisms that lead to the development of this hyperactivity, however, have remained unclear. We address this question by using a computational model of auditory nerve fibers and downstream auditory neurons. The key idea is that mean firing rates of these neurons are stabilized through a homeostatic plasticity mechanism. This homeostatic compensation can give rise to hyperactivity in the model neurons if the healthy ratio between mean and spontaneous firing rate of the auditory nerve is decreased, for example through a loss of outer hair cells or damage to hair cell stereocilia. Homeostasis can also amplify non-auditory inputs, which then contribute to hyperactivity. Our computational model predicts how appropriate additional acoustic stimulation can reverse the development of such hyperactivity, which could provide a new basis for treatment strategies.
引用
收藏
页码:3124 / 3138
页数:15
相关论文
共 74 条
[21]  
HENRY JA, 1999, P 6 INT TINN SEM, P51
[22]   Homeostatic synaptic plasticity can explain post-traumatic epileptogenesis in chronically isolated neocortex [J].
Houweling, AR ;
Bazhenov, M ;
Timofeev, I ;
Steriade, M ;
Sejnowski, TJ .
CEREBRAL CORTEX, 2005, 15 (06) :834-845
[23]   SUPPRESSION OF TINNITUS BY COCHLEAR IMPLANTATION [J].
ITO, J ;
SAKAKIHARA, J .
AMERICAN JOURNAL OF OTOLARYNGOLOGY, 1994, 15 (02) :145-148
[24]   The projection from auditory cortex to cochlear nucleus in guinea pigs: an in vivo anatomical and in vitro electrophysiological study [J].
Jacomme, AV ;
Nodal, FR ;
Bajo, VM ;
Manunta, Y ;
Edeline, JM ;
Babalian, A ;
Rouiller, EM .
EXPERIMENTAL BRAIN RESEARCH, 2003, 153 (04) :467-476
[25]  
JASTREBOFF MM, 1999, P 6 INT TINN SEM TIN, P87
[26]   Plasticity of spontaneous neural activity in the dorsal cochlear nucleus after intense sound exposure [J].
Kaltenbach, JA ;
Zhang, JS ;
Afman, CE .
HEARING RESEARCH, 2000, 147 (1-2) :282-292
[27]   Activity in the dorsal cochlecar nucleus of hamsters previously tested for tinnitus following intense tone exposure [J].
Kaltenbach, JA ;
Zacharek, MA ;
Zhang, JS ;
Frederick, S .
NEUROSCIENCE LETTERS, 2004, 355 (1-2) :121-125
[28]   Cisplatin-induced hyperactivity in the dorsal cochlear nucleus and its relation to outer hair cell loss: Relevance to tinnitus [J].
Kaltenbach, JA ;
Rachel, JD ;
Mathog, TA ;
Zhang, JS ;
Falzarano, PR ;
Lewandowski, M .
JOURNAL OF NEUROPHYSIOLOGY, 2002, 88 (02) :699-714
[29]   Changes in spontaneous neural activity in the dorsal cochlear nucleus following exposure to intense sound: relation to threshold shift [J].
Kaltenbach, JA ;
Godfrey, DA ;
Neumann, JB ;
McCaslin, DL ;
Afman, CE ;
Zhang, JS .
HEARING RESEARCH, 1998, 124 (1-2) :78-84
[30]   Hyperactivity in the dorsal cochlear nucleus after intense sound exposure and its resemblance to tone-evoked activity: a physiological model for tinnitus [J].
Kaltenbach, JA ;
Afman, CE .
HEARING RESEARCH, 2000, 140 (1-2) :165-172