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本文引用的文献

1
Monaural and binaural inhibition underlying duration-tuned neurons in the inferior colliculus.下丘脑中与持续时间调谐神经元相关的单耳和双耳抑制。
J Neurosci. 2014 Jan 8;34(2):481-92. doi: 10.1523/JNEUROSCI.3732-13.2014.
2
Narrow sound pressure level tuning in the auditory cortex of the bats Molossus molossus and Macrotus waterhousii.犬吻蝠和大水鼠耳蝠听觉皮层中狭窄的声压级调谐
Hear Res. 2014 Mar;309:36-43. doi: 10.1016/j.heares.2013.11.004. Epub 2013 Nov 21.
3
Classification of frequency response areas in the inferior colliculus reveals continua not discrete classes.下丘频率反应区的分类揭示了连续的而非离散的类别。
J Physiol. 2013 Aug 15;591(16):4003-25. doi: 10.1113/jphysiol.2013.255943. Epub 2013 Jun 10.
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Do frog-eating bats perceptually bind the complex components of frog calls?食蛙蝙蝠是否能感知整合蛙鸣声的复杂成分?
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Recovery cycle times of inferior colliculus neurons in the awake bat measured with spike counts and latencies.用尖峰计数和潜伏期测量清醒蝙蝠下丘神经元的恢复周期时间。
Front Neural Circuits. 2012 Aug 20;6:56. doi: 10.3389/fncir.2012.00056. eCollection 2012.
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Evolution of high duty cycle echolocation in bats.蝙蝠高频脉冲回声定位的进化。
J Exp Biol. 2012 Sep 1;215(Pt 17):2935-44. doi: 10.1242/jeb.073171.
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Duration tuning across vertebrates.脊椎动物的持续时间调整。
J Neurosci. 2012 May 2;32(18):6373-90. doi: 10.1523/JNEUROSCI.5624-11.2012.
8
Signal perception in frogs and bats and the evolution of mating signals.青蛙和蝙蝠的信号感知与交配信号的进化。
Science. 2011 Aug 5;333(6043):751-2. doi: 10.1126/science.1205623.
9
Duration tuning in the auditory midbrain of echolocating and non-echolocating vertebrates.发声和非发声脊椎动物中听觉中脑的持续时间调谐。
J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2011 May;197(5):571-83. doi: 10.1007/s00359-011-0627-8. Epub 2011 Feb 9.
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Probing the natural scene by echolocation in bats.蝙蝠利用回声定位探测自然场景。
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哺乳动物下丘脑中与时长调谐神经元的时频谱调谐特性的组织和权衡。

Organization and trade-off of spectro-temporal tuning properties of duration-tuned neurons in the mammalian inferior colliculus.

机构信息

Department of Psychology, Neuroscience & Behaviour, McMaster University, Hamilton, Ontario, Canada;

Department of Psychology, University of Maine, Orono, Maine; and.

出版信息

J Neurophysiol. 2014 May;111(10):2047-60. doi: 10.1152/jn.00850.2013. Epub 2014 Feb 26.

DOI:10.1152/jn.00850.2013
PMID:24572091
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4044344/
Abstract

Neurons throughout the mammalian central auditory pathway respond selectively to stimulus frequency and amplitude, and some are also selective for stimulus duration. First found in the auditory midbrain or inferior colliculus (IC), these duration-tuned neurons (DTNs) provide a potential neural mechanism for encoding temporal features of sound. In this study, we investigated how having an additional neural response filter, one selective to the duration of an auditory stimulus, influences frequency tuning and neural organization by recording single-unit responses and measuring the dorsal-ventral position and spectral-temporal tuning properties of auditory DTNs from the IC of the awake big brown bat (Eptesicus fuscus). Like other IC neurons, DTNs were tonotopically organized and had either V-shaped, U-shaped, or O-shaped frequency tuning curves (excitatory frequency response areas). We hypothesized there would be an interaction between frequency and duration tuning in DTNs, as electrical engineering theory for resonant filters dictates a trade-off in spectral-temporal resolution: sharp tuning in the frequency domain results in poorer resolution in the time domain and vice versa. While the IC is a more complex signal analyzer than an electrical filter, a similar operational trade-off could exist in the responses of DTNs. Our data revealed two patterns of spectro-temporal sensitivity and spatial organization within the IC: DTNs with sharp frequency tuning and broad duration tuning were located in the dorsal IC, whereas cells with wide spectral tuning and narrow temporal tuning were found in the ventral IC.

摘要

哺乳动物中枢听觉通路中的神经元对刺激频率和幅度具有选择性,有些神经元还对刺激持续时间具有选择性。这些在听觉中脑或下丘(IC)中首次发现的持续时间调谐神经元(DTN)为编码声音的时间特征提供了一种潜在的神经机制。在这项研究中,我们通过记录单个单位的反应并测量来自清醒大褐蝙蝠(Eptesicus fuscus)IC 的听觉 DTN 的背腹位置和频谱-时间调谐特性,研究了增加一个对听觉刺激持续时间具有选择性的额外神经反应滤波器如何影响频率调谐和神经组织。与其他 IC 神经元一样,DTN 是音调组织的,具有 V 形、U 形或 O 形的频率调谐曲线(兴奋性频率响应区)。我们假设 DTN 中的频率和持续时间调谐之间会存在相互作用,因为谐振滤波器的电气工程理论规定了频谱-时间分辨率之间的权衡:在频域中调谐越尖锐,在时域中的分辨率越差,反之亦然。虽然 IC 比电滤波器更复杂的信号分析仪,但在 DTN 的反应中可能存在类似的操作权衡。我们的数据揭示了 IC 中两种频谱-时间敏感性和空间组织模式:具有尖锐频率调谐和宽持续时间调谐的 DTN 位于 IC 的背侧,而具有宽频谱调谐和窄时间调谐的细胞位于 IC 的腹侧。