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An Anatomical Basis for Visual Calibration of the Auditory Space Map in the Barn Owl's Midbrain

Overview
Journal J Neurosci
Specialty Neurology
Date 1997 Sep 1
PMID 9254692
Citations 34
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Abstract

The map of auditory space in the external nucleus of the inferior colliculus (ICX) of the barn owl is calibrated by visual experience during development. ICX neurons are tuned for interaural time difference (ITD), the owl's primary cue for sound source azimuth, and are arranged into a map of ITD. When vision is altered by rearing owls with prismatic spectacles that shift the visual field in azimuth, ITD tuning in the ICX shifts adaptively. In contrast, ITD tuning remains unchanged in the lateral shell of the central nucleus of the inferior colliculus (ICCls), which provides the principal auditory input to the ICX, suggesting that the projection from the ICCls to the ICX is altered by prism-rearing. In this study, the topography of the ICCls-ICX projection was assessed in normal and prism-reared owls by retrograde labeling using biotinylated dextran amine. In juvenile owls at the age before prism attachment, and in normal adults, labeling patterns were consistent with a topographic projection, with each ICX site receiving input from a restricted region of the ICCls with similar ITD tuning. In prism-reared owls, labeling patterns were systematically altered: each ICX site received additional, abnormal input from a region of the ICCls where ITD tuning matched the shifted ITD tuning of the ICX neurons. These results indicate that anatomical reorganization of the ICCls-ICX projection contributes to the visual calibration of the ICX auditory space map.

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References
1.
Knudsen E, Esterly S, Knudsen P . Monaural occlusion alters sound localization during a sensitive period in the barn owl. J Neurosci. 1984; 4(4):1001-11. PMC: 6564776. View

2.
Mogdans J, Knudsen E . Adaptive adjustment of unit tuning to sound localization cues in response to monaural occlusion in developing owl optic tectum. J Neurosci. 1992; 12(9):3473-84. PMC: 6575736. View

3.
Hubel D, Wiesel T . Aberrant visual projections in the Siamese cat. J Physiol. 1971; 218(1):33-62. PMC: 1331583. DOI: 10.1113/jphysiol.1971.sp009603. View

4.
Simon D, OLeary D . Development of topographic order in the mammalian retinocollicular projection. J Neurosci. 1992; 12(4):1212-32. PMC: 6575796. View

5.
Knudsen E, Brainard M . Visual instruction of the neural map of auditory space in the developing optic tectum. Science. 1991; 253(5015):85-7. DOI: 10.1126/science.2063209. View