Transient Inhibition of the Posterior Parietal Cortex Affects Action-related But Not Action-unrelated Visual Processing during Path Integration.

IF 3 3区 医学 Q2 NEUROSCIENCES
Florian Bublatzky, Martin Riemer
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引用次数: 0

Abstract

Path integration refers to the ability to monitor self-motion cues to keep track of changes in position and orientation. This function is often assumed to rely predominantly on medial temporal lobe structures containing grid, place, and head direction cells. Recent evidence, however, suggests that key navigational computations may occur outside this system, for example, in posterior parietal areas. Here, we adopted a novel perspective derived from animal research and examined whether human path integration relies on processing streams in the posterior parietal cortex (PPC), depending on the involvement of actively controlled motion as opposed to passive perception of visual optic flow. We compared the effects of inhibiting the PPC via TMS on two path integration tasks in a virtual reality, only one of which involved active control of a visually simulated forward movement. Behavioral performance showed that distance judgments were selectively affected in the action-related path integration task. This finding shows that the processing of actively controlled motion depends on computations in the PPC, whereas passive processing of optic flow is largely independent of the PPC computations. Our results reinforce the hypothesis that the PPC plays a critical role for the integration of goal locations and self-positional signals within an egocentric frame of reference. In addition to the medial temporal lobe, the posterior parietal system is recruited during tasks involving actively controlled movements, whereas medial temporal computations are sufficient for passive monitoring of positional changes.

后顶叶皮层的短暂抑制影响路径整合过程中与动作相关而非与动作无关的视觉加工。
路径整合指的是监控自我运动线索以跟踪位置和方向变化的能力。这种功能通常被认为主要依赖于内侧颞叶结构,包括网格、位置和头部方向细胞。然而,最近的证据表明,关键的导航计算可能发生在该系统之外,例如,在后顶叶区域。在这里,我们采用了一种来自动物研究的新视角,并研究了人类路径整合是否依赖于后顶叶皮层(PPC)的加工流,这取决于主动控制运动的参与,而不是被动感知视觉光流。我们比较了通过经颅磁刺激抑制PPC对虚拟现实中两个路径整合任务的影响,其中只有一个涉及视觉模拟向前运动的主动控制。行为表现表明,距离判断在动作相关路径整合任务中受到选择性影响。这一发现表明,主动控制运动的处理依赖于PPC的计算,而光流的被动处理在很大程度上独立于PPC的计算。我们的研究结果加强了PPC在自我中心的参考框架内对目标位置和自我位置信号的整合起关键作用的假设。除了内侧颞叶外,后顶叶系统在涉及主动控制运动的任务中也被调动,而内侧颞叶计算则足以被动监测位置变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Cognitive Neuroscience
Journal of Cognitive Neuroscience 医学-神经科学
CiteScore
5.30
自引率
3.10%
发文量
151
审稿时长
3-8 weeks
期刊介绍: Journal of Cognitive Neuroscience investigates brain–behavior interaction and promotes lively interchange among the mind sciences.
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