首页> 美国卫生研究院文献>Frontiers in Behavioral Neuroscience >Mapping of the Underlying Neural Mechanisms of Maintenance and Manipulation in Visuo-Spatial Working Memory Using An n-back Mental Rotation Task: A Functional Magnetic Resonance Imaging Study
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Mapping of the Underlying Neural Mechanisms of Maintenance and Manipulation in Visuo-Spatial Working Memory Using An n-back Mental Rotation Task: A Functional Magnetic Resonance Imaging Study

机译:使用n向后心理旋转任务在视觉空间工作记忆中维持和操纵的潜在神经机制的映射:功能性磁共振成像研究

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摘要

Mapping of the underlying neural mechanisms of visuo-spatial working memory (WM) has been shown to consistently elicit activity in right hemisphere dominant fronto-parietal networks. However to date, the bulk of neuroimaging literature has focused largely on the maintenance aspect of visuo-spatial WM, with a scarcity of research into the aspects of WM involving manipulation of information. Thus, this study aimed to compare maintenance-only with maintenance and manipulation of visuo-spatial stimuli (3D cube shapes) utilizing a 1-back task while functional magnetic resonance imaging (fMRI) scans were acquired. Sixteen healthy participants (9 women, M = 23.94 years, SD = 2.49) were required to perform the 1-back task with or without mentally rotating the shapes 90° on a vertical axis. When no rotation was required (maintenance-only condition), a right hemispheric lateralization was revealed across fronto-parietal areas. However, when the task involved maintaining and manipulating the same stimuli through 90° rotation, activation was primarily seen in the bilateral parietal lobe and left fusiform gyrus. The findings confirm that the well-established right lateralized fronto-parietal networks are likely to underlie simple maintenance of visuo-spatial stimuli. The results also suggest that the added demand of manipulation of information maintained online appears to require further neural recruitment of functionally related areas. In particular mental rotation of visuospatial stimuli required bilateral parietal areas, and the left fusiform gyrus potentially to maintain a categorical or object representation. It can be concluded that WM is a complex neural process involving the interaction of an increasingly large network.
机译:视觉空间工作记忆(WM)的潜在神经机制的映射已显示出始终引起右半球优势额顶网络中的活动。然而,迄今为止,大量的神经影像学文献主要集中在视觉空间WM的维护方面,而对于涉及信息操纵的WM方面的研究却很少。因此,本研究的目的是在获得功能性磁共振成像(fMRI)扫描的同时,将仅靠维护与利用1-back任务对视觉空间刺激(3D立方体形状)的维护和操纵进行比较。要求16名健康参与者(9名女性,M = 23.94岁,SD = 2.49)执行1背任务,无论是否在智力上将垂直轴上的形状旋转90°。当不需要旋转时(仅维护状态),在额顶区域可看到右半球偏侧化。但是,当任务涉及通过90°旋转来维持和操纵相同的刺激时,激活主要出现在双侧顶叶和左梭形回中。研究结果证实,行之有效的右外侧额壁网络可能是维持视觉空间刺激的基础。结果还表明,在线维护信息的额外需求似乎要求对功能相关区域进行进一步的神经募集。特别是视觉上的视觉空间刺激旋转需要双侧顶叶区域,而左梭形回可能保持分类或对象表示。可以得出结论,WM是一个复杂的神经过程,涉及到越来越大的网络之间的相互作用。

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