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本文引用的文献

1
Identification and connections of inspiratory premotor neurons in songbirds and budgerigar.鸣禽和虎皮鹦鹉中吸气前运动神经元的识别与连接
J Comp Neurol. 1998 Feb 9;391(2):147-63.
2
Bilateral feedback projections to the forebrain in the premotor network for singing in zebra finches.斑胸草雀用于歌唱的运动前网络中前脑的双侧反馈投射。
J Neurobiol. 1998 Jan;34(1):27-40.
3
Reafferent thalamo- "cortical" loops in the song system of oscine songbirds.鸣禽鸣唱系统中的丘脑-“皮质”再传入环路。
J Comp Neurol. 1997 Apr 7;380(2):275-90.
4
Role of syringeal muscles in controlling the phonology of bird song.鸣管肌肉在控制鸟鸣语音学中的作用。
J Neurophysiol. 1996 Jul;76(1):287-300. doi: 10.1152/jn.1996.76.1.287.
5
Intracellular characterization of song-specific neurons in the zebra finch auditory forebrain.斑胸草雀听觉前脑中歌曲特异性神经元的细胞内特征
J Neurosci. 1996 Sep 15;16(18):5855-63.
6
Temporal hierarchical control of singing in birds.鸟类歌唱的时间层次控制。
Science. 1996 Sep 27;273(5283):1871-5. doi: 10.1126/science.273.5283.1871.
7
Role of syringeal muscles in gating airflow and sound production in singing brown thrashers.鸣管肌肉在褐弯嘴嘲鸫歌唱时控制气流和发声中的作用。
J Neurophysiol. 1996 Feb;75(2):867-76. doi: 10.1152/jn.1996.75.2.867.
8
Temporal patterning of song production: participation of nucleus uvaeformis of the thalamus.鸣叫产生的时间模式:丘脑葡萄状核的参与。
J Neurobiol. 1993 Jul;24(7):903-12. doi: 10.1002/neu.480240704.
9
Identification of a forebrain motor programming network for the learned song of zebra finches.斑胸草雀习得鸣叫的前脑运动编程网络的鉴定
J Neurosci. 1994 Nov;14(11 Pt 2):6924-34. doi: 10.1523/JNEUROSCI.14-11-06924.1994.
10
The auditory-vocal-respiratory axis in birds.鸟类的听觉-发声-呼吸轴
Brain Behav Evol. 1994;44(4-5):192-209. doi: 10.1159/000113577.

成年斑胸草雀唱歌时前运动神经活动的半球间协调

Interhemispheric coordination of premotor neural activity during singing in adult zebra finches.

作者信息

Vu E T, Schmidt M F, Mazurek M E

机构信息

Division of Neurobiology, Barrow Neurological Institute, Phoenix, Arizona 85013, USA.

出版信息

J Neurosci. 1998 Nov 1;18(21):9088-98. doi: 10.1523/JNEUROSCI.18-21-09088.1998.

DOI:10.1523/JNEUROSCI.18-21-09088.1998
PMID:9787012
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6793527/
Abstract

The song system, a neural network that mediates the learning and production of song by oscine songbirds, is investigated extensively as a model system for understanding the neural basis of complex skill learning. Part of the complexity of birdsong arises from the coordinated recruitment of multiple groups of muscles on both sides of the body. Although the song system is bilaterally organized, little is known about how premotor activities on the two sides are coordinated during singing. We investigated this by unilaterally recording neural activity in the forebrain song nucleus HVc (also known as the high vocal center) during singing and by forcing the premotor activities in the two hemispheres out of synchrony by perturbing neural activity in the contralateral HVc with electrical stimulation. Perturbing the activity in one HVc at any time during a song led to a short-latency readjustment of activity in the contralateral HVc. This readjustment consisted of a true resetting of the temporal pattern of activity in the contralateral HVc rather than merely a transient activity suppression overlaid on an unaltered pattern of premotor activity. These results strongly suggest that the output of song premotor areas in the forebrain is continuously monitored and that an active mechanism exists for resynchronizing the outputs from the two hemispheres whenever their gross temporal patterns differ significantly. The possible anatomical substrates for these coordinating mechanisms and their potential roles in song learning are discussed.

摘要

鸣禽的鸣唱系统是一种神经网络,它介导鸣禽学习和产生鸣唱,作为理解复杂技能学习神经基础的模型系统,该系统受到了广泛研究。鸟鸣复杂性的一部分源于身体两侧多组肌肉的协同募集。尽管鸣唱系统是双侧组织的,但对于歌唱过程中两侧的运动前活动是如何协调的,人们知之甚少。我们通过在歌唱过程中单侧记录前脑鸣唱核HVc(也称为高级发声中枢)的神经活动,并通过电刺激干扰对侧HVc的神经活动,使两个半球的运动前活动不同步,来研究这一问题。在歌曲的任何时刻干扰一个HVc的活动都会导致对侧HVc活动的短潜伏期重新调整。这种重新调整包括对侧HVc活动时间模式的真正重置,而不仅仅是叠加在未改变的运动前活动模式上的短暂活动抑制。这些结果强烈表明,前脑鸣唱运动前区的输出受到持续监测,并且存在一种主动机制,每当两个半球的总体时间模式有显著差异时,就会使它们的输出重新同步。文中讨论了这些协调机制可能的解剖学基础及其在鸣唱学习中的潜在作用。