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PUBMED FOR HANDHELDS

Journal Abstract Search


412 related items for PubMed ID: 12433407

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  • 4. Histopathological differences between temporary and permanent threshold shift.
    Nordmann AS, Bohne BA, Harding GW.
    Hear Res; 2000 Jan; 139(1-2):13-30. PubMed ID: 10601709
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  • 5. Distribution of focal lesions in the chinchilla organ of Corti following exposure to a 4-kHz or a 0.5-kHz octave band of noise.
    Harding GW, Bohne BA.
    Hear Res; 2007 Mar; 225(1-2):50-9. PubMed ID: 17291699
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  • 6. The use of distortion product otoacoustic emissions in the estimation of hearing and sensory cell loss in noise-damaged cochleas.
    Davis B, Qiu W, Hamernik RP.
    Hear Res; 2004 Jan; 187(1-2):12-24. PubMed ID: 14698083
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  • 9. Paired measurements of cochlear function and hair cell count in Dutch-belted rabbits with noise-induced hearing loss.
    Haragopal H, Dorkoski R, Johnson HM, Berryman MA, Tanda S, Day ML.
    Hear Res; 2020 Jan; 385():107845. PubMed ID: 31760262
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  • 10. Changes in distortion product otoacoustic emissions during prolonged noise exposure.
    Eddins AC, Zuskov M, Salvi RJ.
    Hear Res; 1999 Jan; 127(1-2):119-28. PubMed ID: 9925023
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  • 12. An anatomically based frequency-place map for the mouse cochlea.
    Ou HC, Harding GW, Bohne BA.
    Hear Res; 2000 Jul; 145(1-2):123-9. PubMed ID: 10867284
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  • 13. The effect of an age-related hearing loss gene (Ahl) on noise-induced hearing loss and cochlear damage from low-frequency noise.
    Harding GW, Bohne BA, Vos JD.
    Hear Res; 2005 Jun; 204(1-2):90-100. PubMed ID: 15925194
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  • 15. Sensitivity of distortion product otoacoustic emissions in noise-exposed chinchillas.
    Davis B, Qiu W, Hamernik RP.
    J Am Acad Audiol; 2005 Feb; 16(2):69-78. PubMed ID: 15807046
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