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Rapid adaptation of multisensory integration in vestibular pathways

机译:快速适应前庭通路中的多感觉整合

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Sensing gravity is vital for our perception of spatial orientation, the control of upright posture, and generation of our everyday activities. When an astronaut transitions to microgravity or returns to earth, the vestibular input arising from self-motion will not match the brain's expectation. Our recent neurophysiological studies have provided insight into how the nervous system rapidly reorganizes when vestibular input becomes unreliable by both (1) updating its internal model of the sensory consequences of motion and (2) up-weighting more reliable extra-vestibular information. These neural strategies, in turn, are linked to improvements in sensorimotor performance (e.g., gaze and postural stability, locomotion, orienting) and perception characterized by similar time courses. We suggest that furthering our understanding of the neural mechanisms that underlie sensorimotor adaptation will have important implications for optimizing training programs for astronauts before and after space exploration missions and for the design of goal-oriented rehabilitation for patients.
机译:重力感应对于我们对空间方向的感知,对直立姿势的控制以及我们日常活动的产生至关重要。当宇航员过渡到微重力或返回地球时,由自身运动引起的前庭输入将无法满足大脑的期望。我们最近的神经生理学研究通过以下两种方式提供了洞见:前庭输入变得不可靠时神经系统如何快速重组:(1)更新其运动感觉结果的内部模型;(2)增强更可靠的前庭外信息。这些神经策略又与感觉运动性能(例如,凝视和姿势稳定性,运动,定向)和以相似的时程为特征的感知的改善相关。我们建议,进一步了解作为感觉运动适应基础的神经机制,将对优化太空探索任务前后的宇航员培训计划以及为患者设计面向目标的康复方案具有重要意义。

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