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一个基于实验的神经前庭对重力改变适应的计算模型。

An experimentally informed computational model of neurovestibular adaptation to altered gravity.

作者信息

Kravets Victoria G, Clark Torin K

机构信息

Ann and H.J. Smead Department of Aerospace Engineering Sciences, University of Colorado, Boulder, Colorado, USA.

出版信息

Exp Physiol. 2024 Apr 16. doi: 10.1113/EP091817.

Abstract

Transitions to altered gravity environments result in acute sensorimotor impairment for astronauts, leading to serious mission and safety risks in the crucial first moments in a new setting. Our understanding of the time course and severity of impairment in the early stages of adaptation remains limited and confounded by unmonitored head movements, which are likely to impact the rate of adaptation. Here, we aimed to address this gap by using a human centrifuge to simulate the first hour of hypergravity (1.5g) exposure and the subsequent 1g readaptation period, with precisely controlled head tilt activity. We quantified head tilt overestimation via subjective visual vertical and found ∼30% tilt overestimation that did not decrease over the course of 1 h of exposure to the simulated gravity environment. These findings extended the floor of the vestibular adaptation window (with controlled vestibular cueing) to 1 h of exposure to altered gravity. We then used the empirical data to inform a computational model of neurovestibular adaptation to changes in the magnitude of gravity, which can offer insight into the adaptation process and, with further tuning, can be used to predict the temporal dynamics of vestibular-mediated misperceptions in altered gravity.

摘要

向重力改变的环境过渡会导致宇航员出现急性感觉运动障碍,在新环境的关键初始阶段带来严重的任务和安全风险。我们对适应早期阶段损伤的时间进程和严重程度的理解仍然有限,且因未监测到的头部运动而变得复杂,这些头部运动可能会影响适应速度。在此,我们旨在通过使用人体离心机模拟超重(1.5g)暴露的第一个小时以及随后的1g重新适应期,并精确控制头部倾斜活动来填补这一空白。我们通过主观视觉垂直线量化了头部倾斜高估情况,发现约30%的倾斜高估在暴露于模拟重力环境的1小时内并未减少。这些发现将前庭适应窗口(在前庭线索受控的情况下)下限延长至暴露于重力改变环境1小时。然后,我们利用实证数据为神经前庭适应重力大小变化的计算模型提供信息,该模型可以深入了解适应过程,并且经过进一步调整后,可用于预测重力改变时前庭介导的错觉的时间动态。

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