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太空飞行模拟中的人工重力改变了大脑的感觉连通性。

Artificial gravity during a spaceflight analog alters brain sensory connectivity.

机构信息

Department of Applied Physiology and Kinesiology, University of Florida, Gainesville, FL, United States.

Department of Applied Physiology and Kinesiology, University of Florida, Gainesville, FL, United States; Institute of Aerospace Medicine, German Aerospace Center, Cologne, Germany.

出版信息

Neuroimage. 2023 Sep;278:120261. doi: 10.1016/j.neuroimage.2023.120261. Epub 2023 Jul 6.

Abstract

Spaceflight has numerous untoward effects on human physiology. Various countermeasures are under investigation including artificial gravity (AG). Here, we investigated whether AG alters resting-state brain functional connectivity changes during head-down tilt bed rest (HDBR), a spaceflight analog. Participants underwent 60 days of HDBR. Two groups received daily AG administered either continuously (cAG) or intermittently (iAG). A control group received no AG. We assessed resting-state functional connectivity before, during, and after HDBR. We also measured balance and mobility changes from pre- to post-HDBR. We examined how functional connectivity changes throughout HDBR and whether AG is associated with differential effects. We found differential connectivity changes by group between posterior parietal cortex and multiple somatosensory regions. The control group exhibited increased functional connectivity between these regions throughout HDBR whereas the cAG group showed decreased functional connectivity. This finding suggests that AG alters somatosensory reweighting during HDBR. We also observed brain-behavioral correlations that differed significantly by group. Control group participants who showed increased connectivity between the putamen and somatosensory cortex exhibited greater mobility declines post-HDBR. For the cAG group, increased connectivity between these regions was associated with little to no mobility declines post-HDBR. This suggests that when somatosensory stimulation is provided via AG, functional connectivity increases between the putamen and somatosensory cortex are compensatory in nature, resulting in reduced mobility declines. Given these findings, AG may be an effective countermeasure for the reduced somatosensory stimulation that occurs in both microgravity and HDBR.

摘要

航天飞行对人体生理有许多不良影响。目前正在研究各种对策,包括人工重力(AG)。在这里,我们研究了 AG 是否会改变头低位卧床休息(HDBR)期间的静息状态大脑功能连接变化,HDBR 是航天飞行的模拟。参与者接受了 60 天的 HDBR。两组分别接受连续(cAG)或间歇(iAG)的每日 AG。对照组不接受 AG。我们在 HDBR 之前、期间和之后评估了静息状态功能连接。我们还测量了 HDBR 前后平衡和移动能力的变化。我们检查了 HDBR 期间功能连接的变化,以及 AG 是否与差异效应相关。我们发现,不同组之间的后顶叶皮层和多个躯体感觉区域之间存在差异连接变化。对照组在整个 HDBR 期间显示出这些区域之间的功能连接增加,而 cAG 组则显示出功能连接减少。这一发现表明,AG 改变了 HDBR 期间的躯体感觉再加权。我们还观察到了显著的组间脑-行为相关性。在 HDBR 后表现出壳核和躯体感觉皮层之间连接增加的对照组参与者的移动能力下降更大。对于 cAG 组,这些区域之间的连接增加与 HDBR 后几乎没有移动能力下降相关。这表明,当通过 AG 提供躯体感觉刺激时,壳核和躯体感觉皮层之间的功能连接增加是补偿性的,从而导致移动能力下降减少。鉴于这些发现,AG 可能是减少微重力和 HDBR 中发生的躯体感觉刺激的有效对策。

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