Aging cochleas in the F344 rat: Morphological and functional changes
暂无分享,去创建一个
[1] R. A. Schmiedt,et al. Lateral wall Na, K-ATPase and endocochlear potentials decline with age in quiet-reared gerbils , 1992, Hearing Research.
[2] S. P. Lund,et al. Rats exposed to Toluene and Noise may develop Loss of Auditory Sensitivity due to Synergistic Interaction. , 2000, Noise & health.
[3] Philine Wangemann,et al. Supporting sensory transduction: cochlear fluid homeostasis and the endocochlear potential , 2006, The Journal of physiology.
[4] J. Ito,et al. A Novel Model for Rapid Induction of Apoptosis in Spiral Ganglions of Mice , 2003, The Laryngoscope.
[5] S. Spicer,et al. The fine structure of spiral ligament cells relates to ion return to the stria and varies with place-frequency , 1996, Hearing Research.
[6] Pierre Campo,et al. Use of DPOAEs for assessing hearing loss caused by styrene in the rat , 2002, Hearing Research.
[7] J. Syka,et al. Time course of anoxia-induced K+ concentration changes in the cochlea measured with K+ specific microelectrodes , 2004, Pflügers Archiv.
[8] T. Peters,et al. Distribution and features of melanocytes during inner ear development in pigmented and albino rats , 1995, Hearing Research.
[9] Paul Avan,et al. Intracochlear Acoustic Pressure Measurements: Transfer Functions of the Middle Ear and Cochlear Mechanics , 1999, Audiology and Neurotology.
[10] D. Mikaelian. Development and degeneration of hearing in the c57/b16 mouse: Relation of electrophysiologic responses from the round window and cochlear nucleus to cochlear anatomy and behavioral responses , 1979, The Laryngoscope.
[11] K R Henry,et al. Genotypic differences in behavioral, physiological and anatomical expressions of age-related hearing loss in the laboratory mouse. , 1980, Audiology : official organ of the International Society of Audiology.
[12] H. Spoendlin,et al. Pigment anomaly-associated inner ear deafness. , 1987, Acta oto-laryngologica.
[13] Sandra L. McFadden,et al. Anatomical, Metabolic and Genetic Aspects of Age-related Hearing Loss in Mice: Aspectos anatómicos, metabólicos y genéticos de la hipoacusia relacionada con la edad en ratones , 2001, Audiology : official organ of the International Society of Audiology.
[14] J. Popelář,et al. Deterioration of hearing function in mice with neural crest defect , 1990, Hearing Research.
[15] K. Steel,et al. Another role for melanocytes: their importance for normal stria vascularis development in the mammalian inner ear. , 1989, Development.
[16] J. Popelář,et al. Modulation of thresholds to acoustical and electrical stimulation of the intact ear in guinea pig by furosemide and noise , 1994, Hearing Research.
[17] Richard P. Bobbin,et al. Neurobiology of hearing : the cochlea , 1986 .
[18] L. Rybak,et al. Migration of cochlear lateral wall cells , 2003, Hearing Research.
[19] I. Gorospe,et al. Programmed cell death in the development of the vertebrate inner ear , 2004, Apoptosis.
[20] N. Bogdanovic,et al. Age-related increases in calcium-binding protein immunoreactivity in the cochlear nucleus of hearing impaired C57BL/6J mice , 2004, Neurobiology of Aging.
[21] Josef Syka,et al. Collagen changes in the cochlea of aged Fischer 344 rats , 2006, Experimental Gerontology.
[22] S. Spicer,et al. Pathologic changes of presbycusis begin in secondary processes and spread to primary processes of strial marginal cells , 2005, Hearing Research.
[23] H. Sohmer,et al. Effect of high-dose cisplatin on auditory brainstem responses and otoacoustic emissions in laboratory animals. , 2000, The American journal of otology.
[24] Masanori Hosokawa,et al. Cell death in the inner ear associated with aging is apoptosis? , 1997, Brain Research.
[25] L. Úlehlová,et al. Recovery of the endocochlear potential and the K+ concentrations in the cochlear fluids after acoustic trauma , 1980, Hearing Research.
[26] Josef Syka,et al. Cochlear function in young and adult Fischer 344 rats , 2003, Hearing Research.
[27] Josef Syka,et al. Age-related changes in cochlear and brainstem auditory functions in Fischer 344 rats , 2006, Neurobiology of Aging.
[28] K. Ohlemiller,et al. Cellular correlates of age-related endocochlear potential reduction in a mouse model , 2006, Hearing Research.
[29] James O. Pickles,et al. Mutation in Mitochondrial DNA as a Cause of Presbyacusis , 2003, Audiology and Neurotology.
[30] James F. Willott,et al. Aging and the Auditory System: Anatomy, Physiology, and Psychophysics , 1991 .
[31] H. Schuknecht,et al. Cochlear Pathology in Presbycusis , 1993, The Annals of otology, rhinology, and laryngology.
[32] S. Spicer,et al. Spiral ligament pathology in quiet-aged gerbils , 2002, Hearing Research.
[33] H. Schuknecht,et al. Atrophy of the stria vascularis as a cause of sensorineural hearing loss , 1988, The Laryngoscope.
[34] Josef Syka,et al. Plastic changes in the central auditory system after hearing loss, restoration of function, and during learning. , 2002, Physiological reviews.
[35] P. Avan,et al. Middle ear influence on otoacoustic emissions. I: Noninvasive investigation of the human transmission apparatus and comparison with model results , 2000, Hearing Research.
[36] Functional changes in the aging mouse middle ear , 1996, Hearing Research.
[37] Y. Goto,et al. Cochlear damage due to germanium-induced mitochondrial dysfunction in guinea pigs , 2006, Neuroscience Letters.
[38] M. Seidman,et al. Biologic activity of mitochondrial metabolites on aging and age-related hearing loss. , 2000, The American journal of otology.
[39] J. Petruccelli,et al. Ototoxic effects of cisplatin in a Sprague–Dawley rat animal model as revealed by ABR and transiently evoked otoacoustic emission measurements , 2002, Hearing Research.
[40] D. Fekete,et al. Involvement of programmed cell death in morphogenesis of the vertebrate inner ear. , 1997, Development.
[41] Rickie R. Davis,et al. Genetics of age-related hearing loss in mice. III. Susceptibility of inbred and F1 hybrid strains to noise-induced hearing loss , 1996, Hearing Research.
[42] J. Syka,et al. Comparison of the effects of furosemide and ethacrynic acid upon the cochlear function in the guinea pig. , 1981, Scandinavian audiology. Supplementum.
[43] B. Herman,et al. Age-associated increases in the activity of multiple caspases in Fisher 344 rat organs , 2002, Experimental Gerontology.
[44] R J Salvi,et al. Quantitative measures of hair cell loss in CBA and C57BL/6 mice throughout their life spans. , 1997, The Journal of the Acoustical Society of America.
[45] S. P. Lund,et al. Effect of long-term, low-level noise exposure on hearing thresholds, DPOAE and suppression of DPOAE in rats. , 2001, Noise & health.
[46] P. Thorne,et al. Apoptosis in the developing rat cochlea and its related structures. , 2000, Brain research. Developmental brain research.
[47] Richard Weindruch,et al. Role of mitochondrial dysfunction and mitochondrial DNA mutations in age-related hearing loss , 2007, Hearing Research.
[48] B. Lonsbury-Martin,et al. Altered susceptibility of 2f 1—f 2 acoustic-distortion products to the effects of repeated noise exposure in rabbits , 1991, Hearing Research.
[49] M. Willingham. Cytochemical Methods for the Detection of Apoptosis , 1999, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[50] J. Nadol,et al. Pattern of degeneration of the spiral ganglion cell and its processes in the C57BL/6J mouse , 2000, Hearing Research.
[51] Tomonori Takasaka,et al. The Expression of Apoptosis‐Related Proteins in the Aged Cochlea of Mongolian Gerbils , 2001, The Laryngoscope.
[52] M. Feldman,et al. Cochlear degeneration in aged rats of four strains , 1992, Hearing Research.