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本文引用的文献

1
The anatomy of the middle ear of the tinamiformes (Aves: Tinamidae).(鸟类:鸨科)凤冠雉科鸟类中耳的解剖结构。
J Morphol. 1988 Apr;196(1):107-116. doi: 10.1002/jmor.1051960108.
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Neural encoding of sound source location in the presence of a concurrent, spatially separated source.声源位置在存在同时、空间分离声源时的神经编码。
J Neurophysiol. 2012 Nov;108(9):2612-28. doi: 10.1152/jn.00303.2012. Epub 2012 Aug 22.
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Binaural processing by the gecko auditory periphery.壁虎听觉外周的双耳处理。
J Neurophysiol. 2011 May;105(5):1992-2004. doi: 10.1152/jn.00004.2011. Epub 2011 Feb 16.
4
The effects of experimentally induced conductive hearing loss on spectral and temporal aspects of sound transmission through the ear.实验性传导性听力损失对声音通过耳朵的光谱和时程方面的影响。
Hear Res. 2011 Feb;272(1-2):30-41. doi: 10.1016/j.heares.2010.11.003. Epub 2010 Nov 10.
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Sound pressure transformations by the head and pinnae of the adult Chinchilla (Chinchilla lanigera).成年南美栗鼠(Chinchilla lanigera)的头部和耳壳对声压的变换作用。
Hear Res. 2011 Feb;272(1-2):135-47. doi: 10.1016/j.heares.2010.10.007. Epub 2010 Oct 27.
6
Hearing in the African lungfish (Protopterus annectens): pre-adaptation to pressure hearing in tetrapods?非洲肺鱼(Protopterus annectens)的听觉:四足动物压力听觉的先期适应?
Biol Lett. 2011 Feb 23;7(1):139-41. doi: 10.1098/rsbl.2010.0636. Epub 2010 Sep 8.
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Vertebrate pressure-gradient receivers.脊椎动物压力梯度接收器。
Hear Res. 2011 Mar;273(1-2):37-45. doi: 10.1016/j.heares.2010.08.007. Epub 2010 Aug 18.
8
Analytical model of internally coupled ears.内部耦合耳的分析模型。
J Acoust Soc Am. 2010 Aug;128(2):909-18. doi: 10.1121/1.3455853.
9
Mechanisms of sound localization in mammals.哺乳动物的声音定位机制。
Physiol Rev. 2010 Jul;90(3):983-1012. doi: 10.1152/physrev.00026.2009.
10
Postnatal development of sound pressure transformations by the head and pinnae of the cat: Binaural characteristics.猫的头部和耳廓对声压转换的出生后发育:双耳特性。
J Acoust Soc Am. 2009 Dec;126(6):3125-36. doi: 10.1121/1.3257234.

美国短吻鳄(密西西比鳄)定向听觉的生物物理学

Biophysics of directional hearing in the American alligator (Alligator mississippiensis).

作者信息

Bierman Hilary S, Thornton Jennifer L, Jones Heath G, Koka Kanthaiah, Young Bruce A, Brandt Christian, Christensen-Dalsgaard Jakob, Carr Catherine E, Tollin Daniel J

机构信息

Center for Comparative and Evolutionary Biology of Hearing, Department of Biology, University of Maryland College Park, College Park, MD 20742, USA.

出版信息

J Exp Biol. 2014 Apr 1;217(Pt 7):1094-107. doi: 10.1242/jeb.092866.

DOI:10.1242/jeb.092866
PMID:24671963
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3966920/
Abstract

Physiological and anatomical studies have suggested that alligators have unique adaptations for spatial hearing. Sound localization cues are primarily generated by the filtering of sound waves by the head. Different vertebrate lineages have evolved external and/or internal anatomical adaptations to enhance these cues, such as pinnae and interaural canals. It has been hypothesized that in alligators, directionality may be enhanced via the acoustic coupling of middle ear cavities, resulting in a pressure difference receiver (PDR) mechanism. The experiments reported here support a role for a PDR mechanism in alligator sound localization by demonstrating that (1) acoustic space cues generated by the external morphology of the animal are not sufficient to generate location cues that match physiological sensitivity, (2) continuous pathways between the middle ears are present to provide an anatomical basis for coupling, (3) the auditory brainstem response shows some directionality, and (4) eardrum movement is directionally sensitive. Together, these data support the role of a PDR mechanism in crocodilians and further suggest this mechanism is a shared archosaur trait, most likely found also in the extinct dinosaurs.

摘要

生理学和解剖学研究表明,短吻鳄在空间听觉方面具有独特的适应性。声音定位线索主要由头部对声波的过滤产生。不同的脊椎动物谱系已经进化出外部和/或内部的解剖适应性来增强这些线索,如耳廓和耳间管。据推测,在短吻鳄中,方向性可能通过中耳腔的声学耦合得到增强,从而产生一种压差接收器(PDR)机制。此处报道的实验通过证明以下几点支持了PDR机制在短吻鳄声音定位中的作用:(1)由动物外部形态产生的声学空间线索不足以产生与生理敏感性相匹配的位置线索;(2)中耳之间存在连续的通道,为耦合提供了解剖学基础;(3)听觉脑干反应显示出一定的方向性;(4)鼓膜运动具有方向敏感性。这些数据共同支持了PDR机制在鳄目动物中的作用,并进一步表明这种机制是一种共同的主龙类特征,很可能在已灭绝的恐龙中也存在。