Divergent Aging Characteristics in CBA/J and CBA/CaJ Mouse Cochleae
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[1] H. Schuknecht,et al. Atrophy of the spiral ligament. , 1972, Archives of otolaryngology.
[2] S. Spicer,et al. Novel structures in marginal and intermediate cells presumably relate to functions of apical versus basal strial strata , 2005, Hearing Research.
[3] Lim Hs. Genetic influences on susceptibility of the auditory system to aging and environmental factors. , 1992 .
[4] R. A. Schmiedt,et al. The Physiology of Cochlear Presbycusis , 2010 .
[5] W. W. Clark,et al. Protection against Noise-Induced Hearing Loss in Young CBA/J Mice by Low-Dose Kanamycin , 2010, Journal of the Association for Research in Otolaryngology.
[6] Barbara Canlon,et al. Functional responses of estrogen receptors in the male and female auditory system , 2009, Hearing Research.
[7] Joe C. Adams,et al. Age-related changes in cochleas of mongolian gerbils , 1991, Hearing Research.
[8] J. Sastre,et al. Why females live longer than males? Importance of the upregulation of longevity‐associated genes by oestrogenic compounds , 2005, FEBS letters.
[9] R H Myers,et al. Genetic associations in age-related hearing thresholds. , 1999, Archives of otolaryngology--head & neck surgery.
[10] J. Schacht,et al. Sketches of Otohistory Part 9: Presby[a]cusis , 2005, Audiology and Neurotology.
[11] K R Henry,et al. The mouse as a model for human audition. A review of the literature. , 2009, Audiology : official organ of the International Society of Audiology.
[12] D. C. Marcus,et al. K+ and Na+ absorption by outer sulcus epithelial cells , 1999, Hearing Research.
[13] S. Spicer,et al. Age-related thickening of basement membrane in stria vascularis capillaries , 1997, Hearing Research.
[14] Joe C. Adams,et al. Histopathologic observations of the aging gerbil cochlea , 1997, Hearing Research.
[15] G. W. Harding,et al. Morphological correlates of aging in the chinchilla cochlea , 1990, Hearing Research.
[16] Robert D Frisina,et al. Age‐related Hearing Loss , 2009, Annals of the New York Academy of Sciences.
[17] Judith A. Blake,et al. The Mouse Genome Database (MGD): mouse biology and model systems , 2007, Nucleic Acids Res..
[18] K. Henry. Males lose hearing earlier in mouse models of late-onset age-related hearing loss; females lose hearing earlier in mouse models of early-onset hearing loss , 2004, Hearing Research.
[19] A. Torsello,et al. Age-related Histopathological Changes of the Stria Vascularis: An Experimental Model: Cambios histopatólogicos relacionados con la edad en la estría vascular: Un modelo experimental , 2001, Audiology : official organ of the International Society of Audiology.
[20] R. A. Schmiedt,et al. Lateral wall Na, K-ATPase and endocochlear potentials decline with age in quiet-reared gerbils , 1992, Hearing Research.
[21] D. Ding,et al. The BALB/c mouse as an animal model for progressive sensorineural hearing loss , 1998, Hearing Research.
[22] M. Charles Liberman,et al. Spiral Ligament Pathology: A Major Aspect of Age-Related Cochlear Degeneration in C57BL/6 Mice , 2001, Journal of the Association for Research in Otolaryngology.
[23] R. Frisina,et al. Age-Related Hearing Loss and Its Cellular and Molecular Bases , 2008 .
[24] K. Omori,et al. Age‐Dependent Degeneration of the Stria Vascularis in Human Cochleae , 2006, The Laryngoscope.
[25] R. A. Schmiedt,et al. Decline in the endocochlear potential corresponds to decreased Na,K-ATPase activity in the lateral wall of quiet-aged gerbils , 1997, Hearing Research.
[26] 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.
[27] Marcus Müller,et al. A physiological place–frequency map of the cochlea in the CBA/J mouse , 2005, Hearing Research.
[28] K. Ohlemiller,et al. Apical‐to‐basal gradients in age‐related cochlear degeneration and their relationship to “primary” loss of cochlear neurons , 2004, The Journal of comparative neurology.
[29] Daniel C. Marcus,et al. Age-Related Changes in Cochlear Endolymphatic Potassium and Potential in CD-1 and CBA/CaJ Mice , 2003, Journal of the Association for Research in Otolaryngology.
[30] K. Ohlemiller,et al. Genetic dependence of cochlear cells and structures injured by noise , 2007, Hearing Research.
[31] H. Schuknecht,et al. Atrophy of the stria vascularis, a common cause for hearing loss. , 1974, The Laryngoscope.
[32] H. S. Li. Genetic influences on susceptibility of the auditory system to aging and environmental factors. , 1992, Scandinavian audiology. Supplementum.
[33] U. Rosenhall,et al. Hearing in women at menopause. Prevalence of hearing loss, audiometric configuration and relation to hormone replacement therapy , 2007, Acta oto-laryngologica.
[34] M. Paparella,et al. Age-Related Histopathologic Changes in the Human Cochlea: A Temporal Bone Study , 2004, Otolaryngology--head and neck surgery : official journal of American Academy of Otolaryngology-Head and Neck Surgery.
[35] W. Covell,et al. Pathologic changes in the inner ears of senile guinea pigs , 1957, The Laryngoscope.
[36] 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.
[37] M. Liberman,et al. Adding Insult to Injury: Cochlear Nerve Degeneration after “Temporary” Noise-Induced Hearing Loss , 2009, The Journal of Neuroscience.
[38] J. E. Hawkins,et al. Vascular Changes in the Human Inner Ear Associated with Aging , 1972, The Annals of otology, rhinology, and laryngology.
[39] James F. Willott,et al. Effects of sex, gonadal hormones, and augmented acoustic environments on sensorineural hearing loss and the central auditory system: Insights from research on C57BL/6J mice , 2009, Hearing Research.
[40] D. Jagger,et al. The Membrane Properties of Cochlear Root Cells are Consistent with Roles in Potassium Recirculation and Spatial Buffering , 2010, Journal of the Association for Research in Otolaryngology.
[41] Susan G. Emmerson,et al. Pathology of the Ear (2nd ed.) , 1994 .
[42] Jennifer J. Lister,et al. Modulation of Presbycusis: Current Status and Future Directions , 2001, Audiology and Neurotology.
[43] K. Ohlemiller,et al. Cellular correlates of age-related endocochlear potential reduction in a mouse model , 2006, Hearing Research.
[44] James F. Willott,et al. Aging and the Auditory System: Anatomy, Physiology, and Psychophysics , 1991 .
[45] H. Schuknecht,et al. Cochlear Pathology in Presbycusis , 1993, The Annals of otology, rhinology, and laryngology.
[46] S. Spicer,et al. Spiral ligament pathology in quiet-aged gerbils , 2002, Hearing Research.
[47] M. El-Badry,et al. Evaluation of inner hair cell and nerve fiber loss as sufficient pathologies underlying auditory neuropathy , 2009, Hearing Research.
[48] H. Schuknecht,et al. Atrophy of the stria vascularis as a cause of sensorineural hearing loss , 1988, The Laryngoscope.
[49] A. Ishiyama,et al. Unbiased Stereological Estimation of the Spiral Ligament and Stria Vascularis Volumes in Aging and Ménière’s Disease Using Archival Human Temporal Bones , 2007, Journal of the Association for Research in Otolaryngology.
[50] K. Ohlemiller. Mechanisms and genes in human strial presbycusis from animal models , 2009, Brain Research.
[51] Jochen Schacht,et al. Sketches of Otohistory Part 7: The Nineteenth-Century Rise of Laryngology , 2005, Audiology and Neurotology.
[52] M. Hultcrantz,et al. Age-related degeneration of the organ of Corti in two genotypes of mice. , 1994, ORL; journal for oto-rhino-laryngology and its related specialties.
[53] R. A. Schmiedt,et al. Age-related decreases in endocochlear potential are associated with vascular abnormalities in the stria vascularis , 1996, Hearing Research.
[54] Harold F. Schuknecht,et al. Pathology of the Ear , 1974 .
[55] Anneliese Schrott-Fischer,et al. Quantitative evaluation of myelinated nerve fibres and hair cells in cochleae of humans with age-related high-tone hearing loss , 1995, Hearing Research.
[56] James F. Willott,et al. Genetics of age-related hearing loss in mice: I. Inbred and F1 hybrid strains , 1993, Hearing Research.
[57] R. A. Schmiedt,et al. Effects of Chronic Furosemide Treatment and Age on Cell Division in the Adult Gerbil Inner Ear , 2003, Journal of the Association for Research in Otolaryngology.
[58] K. Ohlemiller,et al. Strial microvascular pathology and age-associated endocochlear potential decline in NOD congenic mice , 2008, Hearing Research.
[59] K. Ohlemiller,et al. Contributions of mouse models to understanding of age- and noise-related hearing loss , 2006, Brain Research.
[60] M. Liberman,et al. Lateral Wall Histopathology and Endocochlear Potential in the Noise-Damaged Mouse Cochlea , 2003, Journal of the Association for Research in Otolaryngology.
[61] J. Lingrel,et al. Conservation of Hearing by Simultaneous Mutation of Na,K-ATPase and NKCC1 , 2007, Journal of the Association for Research in Otolaryngology.
[62] Jochen Schacht,et al. Age-related auditory pathology in the CBA/J mouse , 2008, Hearing Research.
[63] T. Noda,et al. Altered cochlear fibrocytes in a mouse model of DFN3 nonsyndromic deafness. , 1999, Science.
[64] L. Rüttiger,et al. Estrogen and the inner ear: megalin knockout mice suffer progressive hearing loss , 2008, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[65] Matti Anniko,et al. Effects of age and sex on the expression of estrogen receptor α and β in the mouse inner ear , 2010, Acta oto-laryngologica.
[66] K. Ohlemiller,et al. Cellular correlates of progressive hearing loss in 129S6/SvEv mice , 2004, The Journal of comparative neurology.
[67] J. Jerger,et al. Gender affects audiometric shape in presbyacusis. , 1993, Journal of the American Academy of Audiology.
[68] S. Spicer,et al. Pathologic changes of presbycusis begin in secondary processes and spread to primary processes of strial marginal cells , 2005, Hearing Research.
[69] L. Hunter,et al. Effects of Otitis Media on Extended High-Frequency Hearing in Children , 1993, The Annals of otology, rhinology, and laryngology.
[70] Erik G Nelson,et al. Presbycusis: A Human Temporal Bone Study of Individuals With Downward Sloping Audiometric Patterns of Hearing Loss and Review of the Literature , 2006, The Laryngoscope.
[71] A. J. Duvall,et al. The ultrastructure of the external sulcus in the guinea pig cochlear duct , 1969, The Laryngoscope.
[72] G. M. Cohen,et al. Comparison of demyelination and neural degeneration in spiral and Scarpa's ganglia of C57BL/6 mice. , 1990, Journal of electron microscopy technique.
[73] R. A. Schmiedt,et al. Endocochlear potentials and compound action potential recovery: functions in the C57BL/6J mouse , 2002, Hearing Research.
[74] J. Lee,et al. Estrogen acutely inhibits ion transport by isolated stria vascularis , 2001, Hearing Research.
[75] Margaret C. Green. Handbook on genetically standardized jax mice , 1991 .
[76] B. A. Schulte,et al. Alterations in microvasculature are associated with atrophy of the stria vascularis in quiet-aged gerbils , 1995, Hearing Research.
[77] K. Ohlemiller,et al. Absence of strial melanin coincides with age-associated marginal cell loss and endocochlear potential decline , 2009, Hearing Research.