模拟空间条件对功能连通性的影响

Parshuram N. Aarotale, J. Desai
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引用次数: 0

摘要

由于重力的变化,长时间的太空飞行任务会影响宇航员的认知和行为活动。微重力严重影响中枢神经系统的生理机能,导致性能下降,并导致太空探索的潜在风险。本研究的目的是使用卸载背带系统模拟与地球、火星和国际空间站相关的体重分布,评估模拟太空条件下的功能连接。为Oculus Rift S虚拟现实耳机设计了一个带有六个方向箭头的统一模型,用于想象与手臂和腿相关的六种不同的运动图像任务,以进行测试。在与地球、火星和国际空间站有关的分布式重量条件下,使用g.Nautilus fNIRS系统以500Hz的采样率记录了10名参与者的脑电图(EEG)和功能性近红外光谱(fNIRS)信号。幅度平方一致性是从代表功能连接的大脑左半球和右半球估计的。在所有任务和试验过程中,无论模拟的空间条件如何,EEG连贯性越高,这表明大脑左半球与右半球之间的功能连接较强,fNIRS连贯性越低,表明大脑左大脑与右大脑之间的功能连通性较弱。进一步分析大脑内部区域之间所需的功能连接。
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EFFECT OF SIMULATED SPACE CONDITIONS ON FUNCTIONAL CONNECTIVITY
Long duration spaceflight missions can affect the cognitive and behavioral activities of astronauts due to changes in gravity. The microgravity significantly impacts the central nervous system physiology which causes the degradation in the performance and lead to potential risk in the space exploration. The aim of this study was to evaluate functional connectivity at simulated space conditions using an unloading harness system to mimic the body-weight distribution related to Earth, Mars, and International Space Station. A unity model with six directional arrows to imagine six different motor imagery tasks associated with arms and legs were designed for the Oculus Rift S virtual reality headset for testing. An Electroencephalogram (EEG) and functional near infrared spectroscopy (fNIRS) signals were recorded from 10 participants in the distributed weight conditions related to Earth, Mars, and International Space station using the g.Nautilus fNIRS system at sampling rate of 500 Hz. The magnitude squared coherence were estimated from left vs right hemisphere of the brain that represents functional connectivity. The EEG coherence was the higher which shows the strong functional connectivity and fNIRS coherence was lower shows weak functional connectivity between left vs right hemisphere of the brain, during all the tasks and trials irrespective of the simulated space conditions. Further analysis of functional connectivity needed between the intra-regions of the brain.
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