Auditory physiology and anatomy of octavolateral efferent neurons in a teleost fish

被引:0
作者
Seth M. Tomchik
Zhongmin Lu
机构
[1] University of Miami,Department of Biology
[2] University of Miami,Neuroscience Program
[3] University of Miami,NIEHS Marine and Freshwater Biomedical Sciences Center, Rosenstiel School of Marine and Atmospheric Science
来源
Journal of Comparative Physiology A | 2006年 / 192卷
关键词
Anatomy; Hearing; Otolith; Physiology; Vestibular;
D O I
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中图分类号
学科分类号
摘要
Vertebrate hair cell systems receive innervation from efferent neurons in the brain. Here we report the responses of octavolateral efferent neurons that innervate the inner ear and lateral lines in a teleost fish, Dormitator latifrons, to directional linear accelerations, and compare them with the afferent responses from the saccule, the main auditory organ in the inner ear of this species. Efferent neurons responded to acoustic stimuli, but had significantly different response properties than saccular afferents. The efferents produced uniform, omnidirectional responses with no phase-locking. Evoked spike rates increased monotonically with stimulus intensity. Efferents were more broadly tuned and responsive to lower frequencies than saccular afferents, and efferent modulation of the otolithic organs and lateral lines is likely more pronounced at lower frequencies. The efferents had wide dynamic ranges, shallow rate-level function slopes, and low maximum discharge rates. These findings support the role of the efferent innervation of the otolithic organs as part of a general arousal system that modulates overall sensitivity of the peripheral octavolateral organs. In addition, efferent feedback may help unmask biologically relevant directional stimuli, such as those emitted by a predator, prey, or conspecific, by reducing sensitivity of the auditory system to omnidirectional ambient noise.
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页码:51 / 67
页数:16
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共 106 条
[1]  
Art JJ(1982)Efferent regulation of hair cells in the turtle cochlea Proc R Soc Lond B Biol Sci 216 377-384
[2]  
Crawford AC(1984)Synaptic hyperpolarization and inhibition of turtle cochlear hair cells J Physiol 356 525-550
[3]  
Fettiplace R(1990)Efferent vestibular system in the toadfish: action upon horizontal semicircular canal afferents J Neurosci 10 1570-1582
[4]  
Fuchs PA(1989)Morphology and response properties of single olivocochlear fibers in the guinea pig Hear Res 40 93-109
[5]  
Art JJ(1982)Temporary threshold shift modified by binaural acoustic stimulation Hear Res 6 199-205
[6]  
Fettiplace R(1999)Dendritic arbors and central projections of physiologically characterized auditory fibers from the saccule of the toadfish, J Comp Neurol 411 212-238
[7]  
Fuchs PA(1978)Cumulative sum technique and its application to the analysis of peristimulus time histograms Electroencephalogr Clin Neurophysiol 45 302-304
[8]  
Boyle R(1984)The goldfish ear codes the axis of acoustic particle motion in three dimensions Science 225 951-954
[9]  
Highstein SM(1997)Directional response properties of saccular afferents of the toadfish, Hear Res 111 1-21
[10]  
Brown MC(1962)Auditory activity in centrifugal and centripetal cochlear fibres in cat. A study of a feedback system Acta Physiol Scand Suppl 189 1-68