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预测感知:运动信号在感知处理中的作用。

Predictive Sensing: The Role of Motor Signals in Sensory Processing.

机构信息

Department of Physiology, McGill University, Montreal, QC, Canada.

Department of Biomedical Engineering, Johns Hopkins University, Baltimore, Maryland.

出版信息

Biol Psychiatry Cogn Neurosci Neuroimaging. 2019 Sep;4(9):842-850. doi: 10.1016/j.bpsc.2019.06.003. Epub 2019 Jun 18.

Abstract

The strategy of integrating motor signals with sensory information during voluntary behavior is a general feature of sensory processing. It is required to distinguish externally applied (exafferent) from self-generated (reafferent) sensory inputs. This distinction, in turn, underlies our ability to achieve both perceptual stability and accurate motor control during everyday activities. In this review, we consider the results of recent experiments that have provided circuit-level insight into how motor-related inputs to sensory areas selectively cancel self-generated sensory inputs during active behaviors. These studies have revealed both common strategies and important differences across systems. Sensory reafference is suppressed at the earliest stages of central processing in the somatosensory, vestibular, and auditory systems, with the cerebellum and cerebellum-like structures playing key roles. Furthermore, motor-related inputs can also suppress reafferent responses at higher levels of processing such as the cortex-a strategy preferentially used in visual processing. These recent findings have important implications for understanding how the brain achieves the flexibility required to continuously calibrate relationships between motor signals and the resultant sensory feedback, a computation necessary for our subjective awareness that we control both our actions and their sensory consequences.

摘要

在自愿行为中整合运动信号和感觉信息的策略是感觉处理的一个普遍特征。它需要区分外部施加的(传出)和自我产生的(传入)感觉输入。这种区分反过来又构成了我们在日常活动中实现感知稳定性和准确运动控制的能力。在这篇综述中,我们考虑了最近的实验结果,这些结果为感觉区域中的运动相关输入如何在主动行为期间选择性地消除自我产生的感觉输入提供了电路级别的见解。这些研究揭示了不同系统之间的共同策略和重要差异。在躯体感觉、前庭和听觉系统中,感觉再传入在中枢处理的最早阶段被抑制,小脑和类似小脑的结构发挥着关键作用。此外,运动相关的输入也可以在更高水平的处理中抑制再传入反应,如皮层——这是一种在视觉处理中优先使用的策略。这些新发现对于理解大脑如何实现灵活性至关重要,这种灵活性是连续校准运动信号和由此产生的感觉反馈之间关系所必需的,这是我们主观意识到我们控制自己的行动和它们的感觉后果所必需的计算。

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