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本文引用的文献

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Bilateral and ipsilateral ascending tectopulvinar pathways in mammals: a study in the squirrel (Spermophilus beecheyi).哺乳动物双侧和同侧上升顶盖丘脑通路:松鼠(地松鼠)研究。
J Comp Neurol. 2012 Jun 1;520(8):1800-18. doi: 10.1002/cne.23014.
2
Rules of competitive stimulus selection in a cholinergic isthmic nucleus of the owl midbrain.竞争刺激选择在猫头鹰中脑胆碱能丘脑中的规则。
J Neurosci. 2011 Apr 20;31(16):6088-97. doi: 10.1523/JNEUROSCI.0023-11.2011.
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Visual saliency computations: mechanisms, constraints, and the effect of feedback.视觉显著性计算:机制、限制因素以及反馈的影响。
J Neurosci. 2010 Sep 22;30(38):12831-43. doi: 10.1523/JNEUROSCI.1517-10.2010.
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Topographic arrangement of the rotundo-entopallial projection in the pigeon (Columba livia).鸽子(Columba livia)穹隆-内顶叶投射的地形排列。
J Comp Neurol. 2010 Nov 1;518(21):4342-61. doi: 10.1002/cne.22460.
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Stimulus-driven competition in a cholinergic midbrain nucleus.胆碱能中脑核团中的刺激驱动竞争。
Nat Neurosci. 2010 Jul;13(7):889-95. doi: 10.1038/nn.2573. Epub 2010 Jun 6.
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Unconscious attentional orienting to exogenous cues: A review of the literature.对外源性线索的无意识注意定向:文献综述。
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The optic tectum of birds: mapping our way to understanding visual processing.鸟类的视顶盖:探寻理解视觉处理的路径
Can J Exp Psychol. 2009 Dec;63(4):328-38. doi: 10.1037/a0016826.
8
Generating oscillatory bursts from a network of regular spiking neurons without inhibition.在没有抑制作用的情况下,从规则发放神经元网络中产生振荡脉冲串。
J Comput Neurosci. 2009 Dec;27(3):591-606. doi: 10.1007/s10827-009-0171-5. Epub 2009 Jul 2.
9
The effects of visual stimulation and selective visual attention on rhythmic neuronal synchronization in macaque area V4.视觉刺激和选择性视觉注意对猕猴V4区节律性神经元同步的影响。
J Neurosci. 2008 Apr 30;28(18):4823-35. doi: 10.1523/JNEUROSCI.4499-07.2008.
10
Predicting movement from multiunit activity.从多单元活动预测运动。
J Neurosci. 2007 Aug 1;27(31):8387-94. doi: 10.1523/JNEUROSCI.1321-07.2007.

注意捕获?来自峡部的同步反馈信号增强了视网膜信号向更高视觉区域的传递。

Attentional capture? Synchronized feedback signals from the isthmi boost retinal signals to higher visual areas.

机构信息

Departamento de Biología, Universidad de Chile, 7800024 Santiago, Chile.

出版信息

J Neurosci. 2012 Jan 18;32(3):1110-22. doi: 10.1523/JNEUROSCI.4151-11.2012.

DOI:10.1523/JNEUROSCI.4151-11.2012
PMID:22262908
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6621166/
Abstract

When a salient object in the visual field captures attention, the neural representation of that object is enhanced at the expense of competing stimuli. How neural activity evoked by a salient stimulus evolves to take precedence over the neural activity evoked by other stimuli is a matter of intensive investigation. Here, we describe in pigeons (Columba livia) how retinal inputs to the optic tectum (TeO, superior colliculus in mammals), triggered by moving stimuli, are selectively relayed on to the rotundus (Rt, caudal pulvinar) in the thalamus, and to its pallial target, the entopallium (E, extrastriate cortex). We show that two satellite nuclei of the TeO, the nucleus isthmi parvocelullaris (Ipc) and isthmi semilunaris (SLu), send synchronized feedback signals across tectal layers. Preventing the feedback from Ipc but not from SLu to a tectal location suppresses visual responses to moving stimuli from the corresponding region of visual space in all Rt subdivisions. In addition, the bursting feedback from the Ipc imprints a bursting rhythm on the visual signals, such that the visual responses of the Rt and the E acquire a bursting modulation significantly synchronized to the feedback from Ipc. As the Ipc feedback signals are selected by competitive interactions, the visual responses within the receptive fields in the Rt tend to synchronize with the tectal location receiving the "winning" feedback from Ipc. We propose that this selective transmission of afferent activity combined with the cross-regional synchronization of the areas involved represents a bottom-up mechanism by which salient stimuli capture attention.

摘要

当视野中的一个显著物体吸引注意力时,该物体的神经表示会增强,而代价是竞争刺激物的表示会减弱。一个显著刺激引发的神经活动如何优先于其他刺激引发的神经活动,这是一个深入研究的问题。在这里,我们在鸽子(Columba livia)中描述了,由运动刺激引发的视网膜输入到视顶盖(TeO,哺乳动物中的上丘)如何被选择性地传递到丘脑的圆形核(Rt,尾侧丘)及其皮层靶标,外顶盖(E,外纹状体皮层)。我们表明,TeO 的两个卫星核,即小的脑桥核(Ipc)和半月形脑桥核(SLu),在视顶盖层之间发送同步的反馈信号。阻止来自 Ipc 的反馈,但不阻止来自 SLu 的反馈,会抑制所有 Rt 亚区中来自对应视觉空间区域的运动刺激的视觉反应。此外,来自 Ipc 的爆发式反馈在视觉信号上印上爆发式节奏,使得 Rt 和 E 的视觉反应获得与来自 Ipc 的反馈显著同步的爆发式调制。由于 Ipc 反馈信号是通过竞争相互作用选择的,所以 Rt 中的感受野内的视觉反应倾向于与接收来自 Ipc 的“获胜”反馈的视顶盖位置同步。我们提出,这种传入活动的选择性传递与所涉及的区域的跨区域同步代表了一种自下而上的机制,通过该机制,显著刺激可以吸引注意力。