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小脑内模型校准参与感觉运动控制的反馈控制器。

A cerebellar internal model calibrates a feedback controller involved in sensorimotor control.

机构信息

Sensorimotor Control Research Group, Max Planck Institute of Neurobiology, 82152, Martinsried, Germany.

Institute of Neuroscience, Technical University of Munich, 80802, Munich, Germany.

出版信息

Nat Commun. 2021 Nov 18;12(1):6694. doi: 10.1038/s41467-021-26988-0.

Abstract

Animals must adapt their behavior to survive in a changing environment. Behavioral adaptations can be evoked by two mechanisms: feedback control and internal-model-based control. Feedback controllers can maintain the sensory state of the animal at a desired level under different environmental conditions. In contrast, internal models learn the relationship between the motor output and its sensory consequences and can be used to recalibrate behaviors. Here, we present multiple unpredictable perturbations in visual feedback to larval zebrafish performing the optomotor response and show that they react to these perturbations through a feedback control mechanism. In contrast, if a perturbation is long-lasting, fish adapt their behavior by updating a cerebellum-dependent internal model. We use modelling and functional imaging to show that the neuronal requirements for these mechanisms are met in the larval zebrafish brain. Our results illustrate the role of the cerebellum in encoding internal models and how these can calibrate neuronal circuits involved in reactive behaviors depending on the interactions between animal and environment.

摘要

动物必须适应其行为以在不断变化的环境中生存。行为适应可以通过两种机制来实现:反馈控制和基于内部模型的控制。反馈控制器可以在不同的环境条件下将动物的感觉状态维持在期望的水平。相比之下,内部模型学习运动输出与其感觉后果之间的关系,并可用于重新校准行为。在这里,我们向进行光感受器反应的幼虫斑马鱼呈现多次不可预测的视觉反馈扰动,并表明它们通过反馈控制机制对这些扰动做出反应。相比之下,如果扰动持续时间较长,鱼会通过更新依赖于小脑的内部模型来适应其行为。我们使用建模和功能成像来表明,这些机制的神经元要求在幼虫斑马鱼大脑中得到满足。我们的结果说明了小脑在编码内部模型中的作用,以及这些模型如何根据动物与环境之间的相互作用来校准涉及反应性行为的神经元回路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c9b/8602262/f76562b8b9da/41467_2021_26988_Fig1_HTML.jpg

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