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从奇瓦瓦龙猫的外侧丘系获得的中内侧橄榄神经元的轴突记录。

Axonal recordings from medial superior olive neurons obtained from the lateral lemniscus of the chinchilla (Chinchilla laniger).

机构信息

Laboratory of Auditory Neurophysiology, Department of Neurosciences, University of Leuven, 3000 Leuven, Belgium.

出版信息

J Neurosci. 2013 Oct 30;33(44):17506-18. doi: 10.1523/JNEUROSCI.1518-13.2013.

DOI:10.1523/JNEUROSCI.1518-13.2013
PMID:24174683
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6618368/
Abstract

Interaural time differences (ITDs) are a major cue for localizing low-frequency (<1.5 kHz) sounds. Sensitivity to this cue first occurs in the medial superior olive (MSO), which is thought to perform a coincidence analysis on its monaural inputs. Extracellular single-neuron recordings in MSO are difficult to obtain because (1) MSO action potentials are small and (2) a large field potential locked to the stimulus waveform hampers spike isolation. Consequently, only a limited number of studies report MSO data, and even in these studies data are limited in the variety of stimuli used, in the number of neurons studied, and in spike isolation. More high-quality data are needed to better understand the mechanisms underlying neuronal ITD-sensitivity. We circumvented these difficulties by recording from the axons of MSO neurons in the lateral lemniscus (LL) of the chinchilla, a species with pronounced low-frequency sensitivity. Employing sharp glass electrodes we successfully recorded from neurons with ITD sensitivity: the location, response properties, latency, and spike shape were consistent with an MSO axonal origin. The main difficulty encountered was mechanical stability. We obtained responses to binaural beats and dichotic noise bursts to characterize the best delay versus characteristic frequency distribution, and compared the data to recordings we obtained in the inferior colliculus (IC). In contrast to most reports in other rodents, many best delays were close to zero ITD, both in MSO and IC, with a majority of the neurons recorded in the LL firing maximally within the presumed ethological ITD range.

摘要

两耳时间差 (ITD) 是低频 (<1.5 kHz) 声音定位的主要线索。对该线索的敏感性首先出现在内侧上橄榄核 (MSO) 中,据认为 MSO 对其单耳输入进行了符合分析。由于 (1) MSO 动作电位较小,以及 (2) 与刺激波形锁定的大场电位阻碍了尖峰隔离,因此很难在 MSO 中获得细胞外单神经元记录。因此,只有少数研究报告了 MSO 数据,即使在这些研究中,数据也受到所使用刺激的种类、研究的神经元数量以及尖峰隔离的限制。需要更多高质量的数据来更好地理解神经元 ITD 敏感性的机制。我们通过记录 chinchilla 外侧丘系 (LL) 中 MSO 神经元的轴突来规避这些困难,chinchilla 对低频敏感。我们采用锋利的玻璃电极成功地从具有 ITD 敏感性的神经元中进行了记录:位置、反应特性、潜伏期和尖峰形状与 MSO 轴突起源一致。遇到的主要困难是机械稳定性。我们获得了双耳节拍和双声噪声突发的反应,以表征最佳延迟与特征频率分布,并将数据与我们在下丘 (IC) 获得的记录进行了比较。与其他啮齿动物的大多数报告相反,许多最佳延迟接近零 ITD,无论是在 MSO 还是在 IC 中,记录的大多数神经元在假定的生态 ITD 范围内最大程度地放电。

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本文引用的文献

1
Directional hearing by linear summation of binaural inputs at the medial superior olive.中脑上橄榄复合体对双耳输入的线性求和进行方向听觉。
Neuron. 2013 Jun 5;78(5):936-48. doi: 10.1016/j.neuron.2013.04.028.
2
On the limit of neural phase locking to fine structure in humans.人类神经相位锁定到精细结构的极限。
Adv Exp Med Biol. 2013;787:101-8. doi: 10.1007/978-1-4614-1590-9_12.
3
Enhancement and distortion in the temporal representation of sounds in the ventral cochlear nucleus of chinchillas and cats.在南美栗鼠和猫的耳蜗腹核中,声音的时间表示的增强和失真。
PLoS One. 2012;7(9):e44286. doi: 10.1371/journal.pone.0044286. Epub 2012 Sep 18.
4
Synaptic integration in dendrites: exceptional need for speed.树突中的突触整合:对速度的特殊需求。
J Physiol. 2012 Nov 15;590(22):5563-9. doi: 10.1113/jphysiol.2012.229328. Epub 2012 Aug 28.
5
Frequency-dependent interaural delays in the medial superior olive: implications for interaural cochlear delays.中脑上橄榄核的频率依赖的两耳间延迟:对两耳间耳蜗延迟的影响。
J Neurophysiol. 2011 Oct;106(4):1985-99. doi: 10.1152/jn.00131.2011. Epub 2011 Jul 20.
6
Frequency-invariant representation of interaural time differences in mammals.哺乳动物中两耳时间差的频率不变表示。
PLoS Comput Biol. 2011 Mar;7(3):e1002013. doi: 10.1371/journal.pcbi.1002013. Epub 2011 Mar 17.
7
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.
8
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.
9
Oscillatory dipoles as a source of phase shifts in field potentials in the mammalian auditory brainstem.哺乳动物听觉脑干中场电位相位变化的震荡偶极子源。
J Neurosci. 2010 Oct 6;30(40):13472-87. doi: 10.1523/JNEUROSCI.0294-10.2010.
10
Asymmetric excitatory synaptic dynamics underlie interaural time difference processing in the auditory system.听觉系统中,双侧耳时间差的处理依赖于非对称的兴奋性突触动力学。
PLoS Biol. 2010 Jun 29;8(6):e1000406. doi: 10.1371/journal.pbio.1000406.