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首页> 外文期刊>Frontiers in Human Neuroscience >Strong Functional Connectivity among Homotopic Brain Areas Is Vital for Motor Control in Unilateral Limb Movement
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Strong Functional Connectivity among Homotopic Brain Areas Is Vital for Motor Control in Unilateral Limb Movement

机译:同侧大脑区域之间强大的功能连接对于单侧肢体运动中的运动控制至关重要

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The mechanism underlying brain region organization for motor control in humans remains poorly understood. In this functional magnetic resonance imaging (fMRI) study, right-handed volunteers were tasked to maintain unilateral foot movements on the right and left sides as consistently as possible. We aimed to identify the similarities and differences between brain motor networks of the two conditions. We recruited 18 right-handed healthy volunteers aged 25 ± 2.3 years and used a whole-body 3T system for magnetic resonance (MR) scanning. Image analysis was performed using SPM8, Conn toolbox and Brain Connectivity Toolbox. We determined a craniocaudally distributed, mirror-symmetrical modular structure. The functional connectivity between homotopic brain areas was generally stronger than the intrahemispheric connections, and such strong connectivity led to the abovementioned modular structure. Our findings indicated that the interhemispheric functional interaction between homotopic brain areas is more intensive than the interaction along the conventional top–down and bottom–up pathways within the brain during unilateral limb movement. The detected strong interhemispheric horizontal functional interaction is an important aspect of motor control but often neglected or underestimated. The strong interhemispheric connectivity may explain the physiological phenomena and effects of promising therapeutic approaches. Further accurate and effective therapeutic methods may be developed on the basis of our findings.
机译:人们对大脑区域组织进行运动控制的机制了解甚少。在这项功能磁共振成像(fMRI)研究中,惯用右手的志愿者被要求尽可能保持左右脚的单侧运动。我们旨在确定两种情况下大脑运动网络之间的异同。我们招募了18位年龄在25±2.3岁的右撇子健康志愿者,并使用了全身3T系统进行磁共振(MR)扫描。图像分析使用SPM8,Conn工具箱和Brain Connectivity工具箱进行。我们确定了颅尾分布的,镜像对称的模块化结构。同位脑区域之间的功能连接通常比半球内连接更强,并且这种强大的连接导致了上述模块化结构。我们的研究结果表明,同侧大脑区域之间的半球功能相互作用比单侧肢体运动过程中沿传统的自上而下和自下而上的途径在大脑中的相互作用更为强烈。检测到的强半球间水平功能相互作用是电机控制的重要方面,但通常被忽略或低估了。半球间的强连通性可以解释生理现象和有希望的治疗方法的影响。根据我们的发现,可以开发出更多准确有效的治疗方法。

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