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Monkey cortex through fMRI glasses.通过功能磁共振成像眼镜观察猴子的大脑皮层。
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The retinotopic organization of macaque occipitotemporal cortex anterior to V4 and caudoventral to the middle temporal (MT) cluster.猕猴枕颞叶皮层在V4前方且在颞中(MT)簇尾腹侧的视网膜拓扑组织。
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A causal role for V5/MT neurons coding motion-disparity conjunctions in resolving perceptual ambiguity.V5/MT 神经元对运动视差结合编码在解决感知歧义中的因果作用。
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Vergence neurons identified in the rostral superior colliculus code smooth eye movements in 3D space.在中脑被盖的前上丘中鉴定出的会聚神经元对 3D 空间中的平滑眼球运动进行编码。
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Eye position encoding in three-dimensional space: integration of version and vergence signals in the medial posterior parietal cortex.三维空间中的眼位编码:内侧后顶叶皮层中视差和聚散信号的整合。
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Visual response properties of neurons in cortical areas MT and MST projecting to the dorsolateral pontine nucleus or the nucleus of the optic tract in macaque monkeys.猕猴大脑皮层MT和MST区域中投射至背外侧脑桥核或视束核的神经元的视觉反应特性
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绘制猕猴颞上沟图谱:对辐辏和版本眼动相关活动的功能描绘。

Mapping the macaque superior temporal sulcus: functional delineation of vergence and version eye-movement-related activity.

作者信息

Ward Matthew K, Bolding Mark S, Schultz Kevin P, Gamlin Paul D

机构信息

Department of Vision Sciences and Center for the Development of Functional Imaging, University of Alabama at Birmingham, Birmingham, Alabama 35294

Department of Vision Sciences and Center for the Development of Functional Imaging, University of Alabama at Birmingham, Birmingham, Alabama 35294.

出版信息

J Neurosci. 2015 May 13;35(19):7428-42. doi: 10.1523/JNEUROSCI.4203-14.2015.

DOI:10.1523/JNEUROSCI.4203-14.2015
PMID:25972171
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4429150/
Abstract

It is currently thought that the primate oculomotor system has evolved distinct but interrelated subsystems to generate different types of visually guided eye movements (e.g., saccades/smooth pursuit/vergence). Although progress has been made in elucidating the neural basis of these movement types, no study to date has investigated all three movement types on a large scale and within the same animals. Here, we used fMRI in rhesus macaque monkeys to map the superior temporal sulcus (STS) for BOLD modulation associated with visually guided eye movements. Further, we ascertained whether modulation in a given area was movement type specific and, if not, the modulation each movement type elicited relative to the others (i.e., dominance). Our results show that multiple areas within STS modulate during all movement types studied, including the middle temporal, medial superior temporal, fundus of the superior temporal, lower superior temporal, and dorsal posterior inferotemporal areas. Our results also reveal an area in dorsomedial STS that is modulated almost exclusively by vergence movements. In contrast, we found that ventrolateral STS is driven preferentially during versional movements. These results illuminate an STS network involved in processes associated with multiple eye movement types, illustrate unique patterns of modulation within said network as a function of movement type, and provide evidence for a vergence-specific area within dorsomedial STS. We conclude that producing categorically different eye movement types requires access to a common STS network and that individual network nodes are recruited differentially based upon the type of movement generated.

摘要

目前认为,灵长类动物的动眼系统已经进化出不同但相互关联的子系统,以产生不同类型的视觉引导眼动(例如,扫视/平稳跟踪/辐辏)。尽管在阐明这些运动类型的神经基础方面已经取得了进展,但迄今为止,还没有研究在同一动物身上大规模地研究所有这三种运动类型。在这里,我们使用功能磁共振成像(fMRI)对恒河猴的颞上沟(STS)进行映射,以寻找与视觉引导眼动相关的血氧水平依赖(BOLD)调制。此外,我们确定了给定区域的调制是否具有运动类型特异性,如果不是,则确定每种运动类型相对于其他运动类型所引发的调制(即优势性)。我们的结果表明,在所有研究的运动类型中,STS内的多个区域都会发生调制,包括颞中回、颞上内侧回、颞上沟底部、颞上沟下部和颞下后背部区域。我们的结果还揭示了背内侧STS中的一个区域,该区域几乎完全由辐辏运动调制。相比之下,我们发现腹外侧STS在版本运动期间优先被驱动。这些结果阐明了一个与多种眼动类型相关的过程所涉及的STS网络,说明了该网络内作为运动类型函数的独特调制模式,并为背内侧STS内的一个辐辏特异性区域提供了证据。我们得出结论,产生完全不同的眼动类型需要访问一个共同的STS网络,并且根据所产生的运动类型,各个网络节点会被不同地招募。