Literature DB >> 15157969

Level dependence of distortion product otoacoustic emissions in the leopard frog, Rana pipiens pipiens.

Sebastiaan W F Meenderink1, Pim van Dijk.   

Abstract

The inner ear of frogs holds two papillae specialized in detecting airborne sound, the amphibian papilla (AP) and the basilar papilla (BP). We measured input-output (I/O) curves of distortion product otoacoustic emissions (DPOAEs) from both papillae, and compared their properties. As in other vertebrates, DPOAE I/O curves showed two distinct segments, separated by a notch or kneepoint. The slope of the low-level segment was conspicuously different between the AP and the BP. For DPOAE I/O curves from the AP, slopes were < or = 1 dB/dB, similar to what is found in mammals, birds and some lizards. For DPOAE I/O curves from the BP these slopes were much steeper (approximately 2 dB/dB). Slopes found at high stimulus levels were similar in the AP and the BP (approximately 2 dB/dB). This quantitative difference between the low-level slopes for DPOAEs from the AP and the BP may signify the involvement of different mechanisms in low-level DPOAE generation for the two papillae, respectively.

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Year:  2004        PMID: 15157969     DOI: 10.1016/j.heares.2004.01.015

Source DB:  PubMed          Journal:  Hear Res        ISSN: 0378-5955            Impact factor:   3.208


  11 in total

1.  Detailed f1, f2 area study of distortion product otoacoustic emissions in the frog.

Authors:  Sebastiaan W F Meenderink; Peter M Narins; Pim van Dijk
Journal:  J Assoc Res Otolaryngol       Date:  2005-04-22

2.  Temperature dependence of anuran distortion product otoacoustic emissions.

Authors:  Sebastiaan W F Meenderink; Pim van Dijk
Journal:  J Assoc Res Otolaryngol       Date:  2006-05-25

3.  Beyond the limits: identifying the high-frequency detectors in the anuran ear.

Authors:  Ariadna Cobo-Cuan; T Ulmar Grafe; Peter M Narins
Journal:  Biol Lett       Date:  2020-07-01       Impact factor: 3.703

4.  Recovery of otoacoustic emissions after high-level noise exposure in the American bullfrog.

Authors:  Dwayne D Simmons; Rachel Lohr; Helena Wotring; Miriam D Burton; Rebecca A Hooper; Richard A Baird
Journal:  J Exp Biol       Date:  2014-02-05       Impact factor: 3.312

5.  Phantom tones and suppressive masking by active nonlinear oscillation of the hair-cell bundle.

Authors:  Jérémie Barral; Pascal Martin
Journal:  Proc Natl Acad Sci U S A       Date:  2012-05-03       Impact factor: 11.205

Review 6.  Mechanics of the exceptional anuran ear.

Authors:  Richard L M Schoffelen; Johannes M Segenhout; Pim van Dijk
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2008-04-03       Impact factor: 1.836

7.  Frequency matching of vocalizations to inner-ear sensitivity along an altitudinal gradient in the coqui frog.

Authors:  Sebastiaan W F Meenderink; Mirja Kits; Peter M Narins
Journal:  Biol Lett       Date:  2009-11-25       Impact factor: 3.703

8.  Distortion-product otoacoustic emissions in the common marmoset (Callithrix jacchus): parameter optimization.

Authors:  M D Valero; E G Pasanen; D McFadden; R Ratnam
Journal:  Hear Res       Date:  2008-05-23       Impact factor: 3.208

9.  Otoacoustic emissions in humans, birds, lizards, and frogs: evidence for multiple generation mechanisms.

Authors:  Christopher Bergevin; Dennis M Freeman; James C Saunders; Christopher A Shera
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2008-05-24       Impact factor: 1.836

10.  Reciprocal Matched Filtering in the Inner Ear of the African Clawed Frog (Xenopus laevis).

Authors:  Ariadna Cobo-Cuan; Peter M Narins
Journal:  J Assoc Res Otolaryngol       Date:  2020-01-06
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