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倾斜式物镜显微镜可观察到斑马鱼前庭系统对头运动方向和动力学的选择性。

Tiltable objective microscope visualizes selectivity for head motion direction and dynamics in zebrafish vestibular system.

机构信息

Division of Behavioral Neurobiology, National Institute for Basic Biology, Okazaki, Aichi, 444-8787, Japan.

Neuronal Networks Research Group, Exploratory Research Center on Life and Living Systems (ExCELLS), Okazaki, Aichi, 444-8787, Japan.

出版信息

Nat Commun. 2022 Dec 21;13(1):7622. doi: 10.1038/s41467-022-35190-9.

Abstract

Spatio-temporal information about head orientation and movement is fundamental to the sense of balance and motion. Hair cells (HCs) in otolith organs of the vestibular system transduce linear acceleration, including head tilt and vibration. Here, we build a tiltable objective microscope in which an objective lens and specimen tilt together. With in vivo Ca imaging of all utricular HCs and ganglion neurons during 360° static tilt and vibration in pitch and roll axes, we reveal the direction- and static/dynamic stimulus-selective topographic responses in larval zebrafish. We find that head vibration is preferentially received by striolar HCs, whereas static tilt is preferentially transduced by extrastriolar HCs. Spatially ordered direction preference in HCs is consistent with hair-bundle polarity and is preserved in ganglion neurons through topographic innervation. Together, these results demonstrate topographically organized selectivity for direction and dynamics of head orientation/movement in the vestibular periphery.

摘要

头朝向和运动的时空信息是平衡感和运动感的基础。前庭系统耳石器官中的毛细胞(HCs)可以转换线性加速度,包括头部倾斜和振动。在这里,我们构建了一个可倾斜的物镜显微镜,其中物镜和标本一起倾斜。通过活体钙成像,我们在幼虫斑马鱼的矢状轴和冠状轴上对所有壶腹 HCs 和神经节神经元进行 360°静态倾斜和振动,揭示了方向和静态/动态刺激选择性的拓扑反应。我们发现头部振动优先被条纹状 HCs 接收,而静态倾斜则优先被非条纹状 HCs 转换。HCs 中空间有序的方向偏好与毛束极性一致,并通过拓扑神经支配在神经节神经元中保留。总之,这些结果表明,在前庭外周中,头朝向和运动的方向和动力学具有拓扑组织的选择性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/73bb/9772181/54fce0060c6f/41467_2022_35190_Fig1_HTML.jpg

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