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猕猴内侧上颞区外侧亚区对目标运动和自身运动的加工。

Processing of object motion and self-motion in the lateral subdivision of the medial superior temporal area in macaques.

机构信息

Department of Brain and Cognitive Sciences, Center for Visual Science, University of Rochester , Rochester, New York.

Department of Neuroscience, Baylor College of Medicine , Houston, Texas.

出版信息

J Neurophysiol. 2019 Apr 1;121(4):1207-1221. doi: 10.1152/jn.00497.2018. Epub 2019 Jan 30.

Abstract

Multiple areas of macaque cortex are involved in visual motion processing, but their relative functional roles remain unclear. The medial superior temporal (MST) area is typically divided into lateral (MSTl) and dorsal (MSTd) subdivisions that are thought to be involved in processing object motion and self-motion, respectively. Whereas MSTd has been studied extensively with regard to processing visual and nonvisual self-motion cues, little is known about self-motion signals in MSTl, especially nonvisual signals. Moreover, little is known about how self-motion and object motion signals interact in MSTl and how this differs from interactions in MSTd. We compared the visual and vestibular heading tuning of neurons in MSTl and MSTd using identical stimuli. Our findings reveal that both visual and vestibular heading signals are weaker in MSTl than in MSTd, suggesting that MSTl is less well suited to participate in self-motion perception than MSTd. We also tested neurons in both areas with a variety of combinations of object motion and self-motion. Our findings reveal that vestibular signals improve the separability of coding of heading and object direction in both areas, albeit more strongly in MSTd due to the greater strength of vestibular signals. Based on a marginalization technique, population decoding reveals that heading and object direction can be more effectively dissociated from MSTd responses than MSTl responses. Our findings help to clarify the respective contributions that MSTl and MSTd make to processing of object motion and self-motion, although our conclusions may be somewhat specific to the multipart moving objects that we employed. NEW & NOTEWORTHY Retinal image motion reflects contributions from both the observer's self-motion and the movement of objects in the environment. The neural mechanisms by which the brain dissociates self-motion and object motion remain unclear. This study provides the first systematic examination of how the lateral subdivision of area MST (MSTl) contributes to dissociating object motion and self-motion. We also examine, for the first time, how MSTl neurons represent translational self-motion based on both vestibular and visual cues.

摘要

猕猴大脑的多个区域参与视觉运动处理,但它们的相对功能角色仍不清楚。内侧上颞(MST)区通常分为外侧(MSTl)和背侧(MSTd)两个亚区,分别被认为参与处理物体运动和自身运动。虽然 MSTd 已经在处理视觉和非视觉自身运动线索方面进行了广泛研究,但对于 MSTl 中的自身运动信号,尤其是非视觉信号,知之甚少。此外,对于自身运动和物体运动信号如何在 MSTl 中相互作用以及这种相互作用与 MSTd 有何不同,人们知之甚少。我们使用相同的刺激比较了 MSTl 和 MSTd 神经元的视觉和前庭朝向调谐。我们的发现表明,与 MSTd 相比,MSTl 中的视觉和前庭朝向信号都较弱,这表明 MSTl 不太适合参与自身运动感知。我们还在两个区域中测试了各种物体运动和自身运动的组合的神经元。我们的发现表明,前庭信号可提高两个区域中朝向和物体方向编码的可分离性,尽管由于前庭信号的强度更大,MSTd 的效果更为明显。基于边缘化技术,群体解码表明,与 MSTl 反应相比,朝向和物体方向可以更有效地从 MSTd 反应中分离出来。我们的研究结果有助于阐明 MSTl 和 MSTd 对物体运动和自身运动处理的各自贡献,尽管我们的结论可能与我们所采用的多部分运动物体有些特定。新的和值得注意的是,视网膜图像运动反映了观察者自身运动和环境中物体运动的贡献。大脑将自身运动和物体运动分离的神经机制尚不清楚。本研究首次系统地研究了 MST 区的外侧亚区(MSTl)如何有助于分离物体运动和自身运动。我们还首次研究了 MSTl 神经元如何根据前庭和视觉线索来表示平移自身运动。

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