从眼睛到翅膀:鸟类飞行中将光流转化为运动输出的神经回路。

Cristián Gutiérrez-Ibáñez, Douglas R Wylie, Douglas L Altshuler
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引用次数: 2

摘要

鸟类的飞行是由光流引导的,光流是指由于自我运动而在视网膜上移动的环境中表面和边缘的图像。在所有脊椎动物中,光流信息到达运动前区域的途径都很短:中脑的视网膜接收区对光流进行编码,然后将其发送到小脑。通往小脑的光流通路的一个众所周知的作用是控制稳定眼球运动(光动力学反应)。然而,这一途径在控制运动中的作用尚不清楚。电生理学和尿道追踪研究揭示了禽类小脑中一个更复杂的电路的功能连接,该电路将光流与其他感觉信号整合在一起。在此,我们回顾了支持这一框架的研究,并确定小脑输出中心,小脑外侧核(CbL)和内侧核(CbM)是两个在飞行控制中具有潜在不同作用的关键节点。CbM接收双侧光流信息,并投射到脑干的一些部位,这些部位表明随着时间的推移,例如在向前飞行过程中,对飞行控制起主要作用。CbL接收单眼光流和其他类型的视觉信息。该部位向整个大脑的感觉区域提供反馈,并强烈投射橡胶核,已知橡胶核在前肢肌肉控制中起主导作用。这种安排表明,CbL在控制机翼变形和快速机动方面的主要作用。
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From the eye to the wing: neural circuits for transforming optic flow into motor output in avian flight.

Avian flight is guided by optic flow-the movement across the retina of images of surfaces and edges in the environment due to self-motion. In all vertebrates, there is a short pathway for optic flow information to reach pre-motor areas: retinal-recipient regions in the midbrain encode optic flow, which is then sent to the cerebellum. One well-known role for optic flow pathways to the cerebellum is the control of stabilizing eye movements (the optokinetic response). However, the role of this pathway in controlling locomotion is less well understood. Electrophysiological and tract tracing studies are revealing the functional connectivity of a more elaborate circuit through the avian cerebellum, which integrates optic flow with other sensory signals. Here we review the research supporting this framework and identify the cerebellar output centres, the lateral (CbL) and medial (CbM) cerebellar nuclei, as two key nodes with potentially distinct roles in flight control. The CbM receives bilateral optic flow information and projects to sites in the brainstem that suggest a primary role for flight control over time, such as during forward flight. The CbL receives monocular optic flow and other types of visual information. This site provides feedback to sensory areas throughout the brain and has a strong projection the nucleus ruber, which is known to have a dominant role in forelimb muscle control. This arrangement suggests primary roles for the CbL in the control of wing morphing and for rapid maneuvers.

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来源期刊
CiteScore
4.80
自引率
14.30%
发文量
67
审稿时长
1 months
期刊介绍: The Journal of Comparative Physiology A welcomes original articles, short reviews, and short communications in the following fields: - Neurobiology and neuroethology - Sensory physiology and ecology - Physiological and hormonal basis of behavior - Communication, orientation, and locomotion - Functional imaging and neuroanatomy Contributions should add to our understanding of mechanisms and not be purely descriptive. The level of organization addressed may be organismic, cellular, or molecular. Colour figures are free in print and online.
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