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自然自我运动过程中前庭输入的统计分析:对神经处理的启示

Statistics of the vestibular input experienced during natural self-motion: implications for neural processing.

作者信息

Carriot Jérome, Jamali Mohsen, Chacron Maurice J, Cullen Kathleen E

机构信息

Department of Physiology, McGill University, Montreal, Quebec H3G 1Y6, Canada, and.

Department of Physiology, McGill University, Montreal, Quebec H3G 1Y6, Canada, and Department of Physics, McGill University, Montreal, Quebec H3A 2T8, Canada.

出版信息

J Neurosci. 2014 Jun 11;34(24):8347-57. doi: 10.1523/JNEUROSCI.0692-14.2014.

Abstract

It is widely believed that sensory systems are optimized for processing stimuli occurring in the natural environment. However, it remains unknown whether this principle applies to the vestibular system, which contributes to essential brain functions ranging from the most automatic reflexes to spatial perception and motor coordination. Here we quantified, for the first time, the statistics of natural vestibular inputs experienced by freely moving human subjects during typical everyday activities. Although previous studies have found that the power spectra of natural signals across sensory modalities decay as a power law (i.e., as 1/f(α)), we found that this did not apply to natural vestibular stimuli. Instead, power decreased slowly at lower and more rapidly at higher frequencies for all motion dimensions. We further establish that this unique stimulus structure is the result of active motion as well as passive biomechanical filtering occurring before any neural processing. Notably, the transition frequency (i.e., frequency at which power starts to decrease rapidly) was lower when subjects passively experienced sensory stimulation than when they actively controlled stimulation through their own movement. In contrast to signals measured at the head, the spectral content of externally generated (i.e., passive) environmental motion did follow a power law. Specifically, transformations caused by both motor control and biomechanics shape the statistics of natural vestibular stimuli before neural processing. We suggest that the unique structure of natural vestibular stimuli will have important consequences on the neural coding strategies used by this essential sensory system to represent self-motion in everyday life.

摘要

人们普遍认为,感觉系统是为处理自然环境中出现的刺激而优化的。然而,尚不清楚这一原则是否适用于前庭系统,前庭系统对从最自动的反射到空间感知和运动协调等基本脑功能都有贡献。在这里,我们首次量化了自由移动的人类受试者在典型日常活动中所经历的自然前庭输入的统计数据。尽管先前的研究发现,跨感觉模态的自然信号的功率谱以幂律形式衰减(即,作为1/f(α)),但我们发现这并不适用于自然前庭刺激。相反,对于所有运动维度,功率在较低频率下缓慢下降,在较高频率下快速下降。我们进一步确定,这种独特的刺激结构是主动运动以及在任何神经处理之前发生的被动生物力学过滤的结果。值得注意的是,当受试者被动地接受感觉刺激时,转变频率(即功率开始快速下降的频率)低于他们通过自身运动主动控制刺激时的转变频率。与在头部测量的信号不同,外部产生的(即被动的)环境运动的频谱内容确实遵循幂律。具体而言,运动控制和生物力学引起的变换在神经处理之前塑造了自然前庭刺激的统计数据。我们认为,自然前庭刺激的独特结构将对这个基本感觉系统在日常生活中用于表示自我运动的神经编码策略产生重要影响。

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