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棱视适应增强了默认模式网络和注意力网络之间的解耦。

Prism adaptation enhances decoupling between the default mode network and the attentional networks.

机构信息

MySpace Lab, Department of Clinical Neuroscience, Lausanne University and University Hospital (CHUV), Lausanne, Switzerland.

MySpace Lab, Department of Clinical Neuroscience, Lausanne University and University Hospital (CHUV), Lausanne, Switzerland; MindMaze SA, Lausanne, Switzerland.

出版信息

Neuroimage. 2019 Oct 15;200:210-220. doi: 10.1016/j.neuroimage.2019.06.050. Epub 2019 Jun 22.

Abstract

Prism adaptation (PA) is a procedure used for studying visuomotor plasticity in healthy individuals, as well as for alleviating spatial neglect in patients. The adaptation is achieved by performing goal-directed movements while wearing prismatic lenses that induce a lateral displacement of visual information. This results in an initial movement error that is compensated by a recalibration of sensory-motor coordinates; consequently, a lateral bias in both motor and perceptual measurements occurs after prism removal, i.e., after effects. Neuroimaging studies have shown that a brief exposure to a rightward-shifting prism changes the activations in the inferior parietal lobule (IPL) and modulates interhemispheric balance during attention tasks. However, it is yet unknown how PA changes global interplay between cortical networks as evident from task-free resting state connectivity. Thus we compared resting state functional connectivity patterns before ('Pre') and after ('Post') participants performed a session of pointing movements with a rightward-shifting prism (N = 14) or with neutral lenses (as a control condition; N = 12). Global connectivity analysis revealed significant decreases in functional connectivity following PA in two nodes of the Default Mode Network (DMN), and in the left anterior insula. Further analyses of these regions showed specific connectivity decrease between either of the DMN nodes and areas within the attentional networks, including the inferior frontal gyrus, the anterior insula and the right superior temporal sulcus. On the other hand, the anterior insula decreased its connectivity to a large set of areas, all within the boundaries of the DMN. These results demonstrate that a brief exposure to PA enhances the decoupling between the DMN and the attention networks. The change in interplay between those pre-existing networks might be the basis of the rapid and wide-ranged behavioural changes induce by PA in healthy individuals.

摘要

棱镜适应(PA)是一种用于研究健康个体的运动可塑性以及减轻患者空间忽视的方法。通过佩戴产生视觉信息横向位移的棱镜来实现适应,同时进行目标导向运动。这导致初始运动误差,通过重新校准感觉运动坐标来补偿;因此,在去除棱镜后,即后效,会在运动和知觉测量中出现横向偏差。神经影像学研究表明,短暂暴露于向右移位的棱镜会改变下顶叶(IPL)的激活,并在注意任务中调节大脑两半球之间的平衡。然而,目前尚不清楚 PA 如何改变皮质网络之间的整体相互作用,从无任务静息状态连通性中可以明显看出。因此,我们比较了参与者在进行指向运动(N=14)或中性镜片(作为对照条件;N=12)之前('Pre')和之后('Post')的静息状态功能连接模式。全局连通性分析显示,在进行 PA 后,默认模式网络(DMN)的两个节点和左侧前岛叶的功能连接显著降低。对这些区域的进一步分析显示,DMN 节点之间以及注意力网络内的区域之间的特定连通性下降,包括额下回、前岛叶和右侧颞上回。另一方面,前岛叶与 DMN 内的大部分区域的连通性降低。这些结果表明,短暂暴露于 PA 增强了 DMN 和注意力网络之间的解耦。这些预先存在的网络之间相互作用的变化可能是 PA 在健康个体中引起快速广泛行为变化的基础。

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