首页> 美国卫生研究院文献>Frontiers in Human Neuroscience >Optimized Gamma Synchronization Enhances Functional Binding of Fronto-Parietal Cortices in Mathematically Gifted Adolescents during Deductive Reasoning
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Optimized Gamma Synchronization Enhances Functional Binding of Fronto-Parietal Cortices in Mathematically Gifted Adolescents during Deductive Reasoning

机译:优化的伽马同步增强演绎推理过程中数学天赋青少年的额顶皮质的功能结合。

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摘要

As enhanced fronto-parietal network has been suggested to support reasoning ability of math-gifted adolescents, the main goal of this EEG source analysis is to investigate the temporal binding of the gamma-band (30–60 Hz) synchronization between frontal and parietal cortices in adolescents with exceptional mathematical ability, including the functional connectivity of gamma neurocognitive network, the temporal dynamics of fronto-parietal network (phase-locking durations and network lability in time domain), and the self-organized criticality of synchronizing oscillation. Compared with the average-ability subjects, the math-gifted adolescents show a highly integrated fronto-parietal network due to distant gamma phase-locking oscillations, which is indicated by lower modularity of the global network topology, more “connector bridges” between the frontal and parietal cortices and less “connector hubs” in the sensorimotor cortex. The time domain analysis finds that, while maintaining more stable phase dynamics of the fronto-parietal coupling, the math-gifted adolescents are characterized by more extensive fronto-parietal connection reconfiguration. The results from sample fitting in the power-law model further find that the phase-locking durations in the math-gifted brain abides by a wider interval of the power-law distribution. This phase-lock distribution mechanism could represent a relatively optimized pattern for the functional binding of frontal–parietal network, which underlies stable fronto-parietal connectivity and increases flexibility of timely network reconfiguration.
机译:由于已建议使用增强的额顶网络来支持青少年数学推理能力,因此该脑电图来源分析的主要目标是研究额叶皮层和顶叶皮层之间的伽马波段(30-60 Hz)同步的时间约束在具有卓越数学能力的青少年中,包括γ神经认知网络的功能连通性,额顶网络的时间动态(时域的锁相持续时间和网络不稳定性)以及同步振荡的自组织临界性。与平均能力的受测者相比,数学天才的青少年由于遥远的伽马锁相振荡而显示出高度集成的额顶网络,这表现为整体网络拓扑的模块化程度较低,额叶之间的连接桥更多和顶叶皮层以及感觉运动皮层中较少的“连接器中枢”。时域分析发现,在保持额顶耦合的相位动力学更稳定的同时,数学精通的青少年的特征在于额顶连接的重新配置更为广泛。幂律模型中样本拟合的结果进一步发现,数学赠予的大脑中的锁相持续时间遵守幂律分布的更宽间隔。这种锁相分配机制可以代表用于额顶网络功能性绑定的相对优化的模式,这是稳定的额顶网络连接的基础,并增加了及时重新配置网络的灵活性。

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