This Program Project brings the cumulative expertise and varied intellectual perspectives of 14 established investigators in the Eaton- Peabody Laboratory to bear on a number of fundamental issues underlying vertebrate auditory mechanisms. The laboratory offers broad-based coverage of scientific disciplines, including anatomy, physiology, chemistry, pharmacology, electrical engineering, and psychology, coupled with clinical expertise in neurology and otolaryngology. Nine proposed projects target a number of areas that are still poorly understood. Middle-ear studies combine the perspectives of engineering-based researchers of middle-ear mechanics with the surgical perspectives of practicing otologists to tackle issues concerning non-ossicular acoustic transmission, issues directly relevant to surgical management of middle-ear pathologies. Inner-ear studies combine physiological and electrical-engineering expertise to investigate mechanisms underlying ionic homeostasis in the sensory epithelium, an understanding of which is key to explaining the cellular response to a wide range of insults to the inner ear, including noise- or drug-induced hearing losses. In an interconnected grouping of four anatomical, physiological and pharmacological projects, seven researchers pool their expertise to study the acoustic reflexes of the middle and inner ears. These major feedback pathways can have a variety of functions, one of which may be to improve signal detection in noisy environments. Understanding the operating characteristics of these reflexes is relevant to problems of the hearing impaired that are more complex than simple threshold changes. Another interconnected grouping of three projects is directed at how auditory information is processed by the central nervous system. From a systems perspective, two projects are proposed in which the neuronal processing schemes underlying pitch perception and the localization of sounds in space will be studied. The last project aims to measure and mathematically model the contribution of different neuronal types to the brainstem auditory evoked responses. The resulting information should eventually lead to new clinical uses of evoked potentials in the diagnosis of auditory malfunctions that have as yet no clearly articulated organic origins.

Agency
National Institute of Health (NIH)
Institute
National Institute on Deafness and Other Communication Disorders (NIDCD)
Type
Research Program Projects (P01)
Project #
5P01DC000119-18
Application #
3094763
Study Section
Communication Disorders Review Committee (CDRC)
Project Start
1976-06-01
Project End
1997-05-31
Budget Start
1993-06-01
Budget End
1994-05-31
Support Year
18
Fiscal Year
1993
Total Cost
Indirect Cost
Name
Massachusetts Eye and Ear Infirmary
Department
Type
DUNS #
073825945
City
Boston
State
MA
Country
United States
Zip Code
02114
Gutschalk, Alexander; Oxenham, Andrew J; Micheyl, Christophe et al. (2007) Human cortical activity during streaming without spectral cues suggests a general neural substrate for auditory stream segregation. J Neurosci 27:13074-81
Micheyl, Christophe; Carlyon, Robert P; Gutschalk, Alexander et al. (2007) The role of auditory cortex in the formation of auditory streams. Hear Res 229:116-31
Wilson, E Courtenay; Melcher, Jennifer R; Micheyl, Christophe et al. (2007) Cortical FMRI activation to sequences of tones alternating in frequency: relationship to perceived rate and streaming. J Neurophysiol 97:2230-8
Fullerton, Barbara C; Pandya, Deepak N (2007) Architectonic analysis of the auditory-related areas of the superior temporal region in human brain. J Comp Neurol 504:470-98
Sigalovsky, Irina S; Melcher, Jennifer R (2006) Effects of sound level on fMRI activation in human brainstem, thalamic and cortical centers. Hear Res 215:67-76
Sigalovsky, Irina S; Fischl, Bruce; Melcher, Jennifer R (2006) Mapping an intrinsic MR property of gray matter in auditory cortex of living humans: a possible marker for primary cortex and hemispheric differences. Neuroimage 32:1524-37
Hawley, Monica L; Melcher, Jennifer R; Fullerton, Barbara C (2005) Effects of sound bandwidth on fMRI activation in human auditory brainstem nuclei. Hear Res 204:101-10
Harms, Michael P; Guinan Jr, John J; Sigalovsky, Irina S et al. (2005) Short-term sound temporal envelope characteristics determine multisecond time patterns of activity in human auditory cortex as shown by fMRI. J Neurophysiol 93:210-22
Talavage, Thomas M; Edmister, Whitney B (2004) Nonlinearity of FMRI responses in human auditory cortex. Hum Brain Mapp 22:216-28
Penagos, Hector; Melcher, Jennifer R; Oxenham, Andrew J (2004) A neural representation of pitch salience in nonprimary human auditory cortex revealed with functional magnetic resonance imaging. J Neurosci 24:6810-5

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