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Altered Functional Connectivity in the Motor and Prefrontal Cortex for Children With Down's Syndrome: An fNIRS Study

机译:在综合征患儿的运动中改变电机和前额叶皮质的功能连接:FNIRS研究

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Children with Down's syndrome (DS) might exhibit disrupted brain functional connectivity in the motor and prefrontal cortex. To inspect the alterations in brain activation and functional connectivity for children with DS, the functional near-infrared spectroscopy (fNIRS) method was applied to examine the brain activation difference in the motor and prefrontal cortex between the DS and typically developing (TD) groups during a fine motor task. In addition, small-world analysis based on graph theory was also carried out to characterize the topological organization of functional brain networks. Interestingly, behavior data demonstrated that the DS group showed significantly long reaction time and low accuracy as compared to the TD group ( p & 0.05 ). More importantly, significantly reduced brain activations in the frontopolar area, the pre-motor, and the supplementary motor cortex ( p & 0.05 ) were identified in the DS group compared with the TD group. Meanwhile, significantly high global efficiency ( E _( g )) and short average path length ( L _( p )) were also detected for the DS group. This pilot study illustrated that the disrupted connectivity of frontopolar area, pre-motor, and supplementary motor cortex might be one of the core mechanisms associated with motor and cognitive impairments for children with DS. Therefore, the combination of the fNIRS technique with functional network analysis may pave a new avenue for improving our understanding of the neural mechanisms of DS.
机译:患有唐氏综合症(DS)的儿童可能在电机和前额叶皮质中表现出脑功能连通性。为了检查对DS的儿童的脑激活和功能连通性的改变,应用功能近红外光谱(FNIR)方法来检查DS和通常在DS和通常在开发(TD)组之间的电动机和前额叶皮质中的脑激活差异精细电机任务。此外,还进行了基于图形理论的小世界分析,以表征功能性脑网络的拓扑组织。有趣的是,与TD组相比,行为数据表明DS组显示出明显长的反应时间和低精度(P <0.05)。更重要的是,与TD组相比,在DS组中,在DS组中鉴定出突出的地区,前电机和补充电动机皮质(P <0.05)的显着减少了脑激活。同时,对于DS组也检测到显着高的全球效率(E _(g))和短平均路径长度(L _(P))。该试点研究表明,突破性地区,电动机和补充电动机皮层的连续连接可能是与DS儿童的电机和认知障碍相关的核心机制之一。因此,具有功能网络分析的FNIR技术的组合可以铺平新的途径以改善我们对DS神经机制的理解。

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