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斑马鱼的重力学感测系统组织。

Organization of the gravity-sensing system in zebrafish.

机构信息

Dept. of Neuroscience, Washington University in St. Louis, St. Louis, MO, USA.

Laboratory of Neural Systems, The Rockefeller University, New York, NY, USA.

出版信息

Nat Commun. 2022 Aug 27;13(1):5060. doi: 10.1038/s41467-022-32824-w.

Abstract

Motor circuits develop in sequence from those governing fast movements to those governing slow. Here we examine whether upstream sensory circuits are organized by similar principles. Using serial-section electron microscopy in larval zebrafish, we generated a complete map of the gravity-sensing (utricular) system spanning from the inner ear to the brainstem. We find that both sensory tuning and developmental sequence are organizing principles of vestibular topography. Patterned rostrocaudal innervation from hair cells to afferents creates an anatomically inferred directional tuning map in the utricular ganglion, forming segregated pathways for rostral and caudal tilt. Furthermore, the mediolateral axis of the ganglion is linked to both developmental sequence and neuronal temporal dynamics. Early-born pathways carrying phasic information preferentially excite fast escape circuits, whereas later-born pathways carrying tonic signals excite slower postural and oculomotor circuits. These results demonstrate that vestibular circuits are organized by tuning direction and dynamics, aligning them with downstream motor circuits and behaviors.

摘要

运动回路是按照从控制快速运动到控制慢速运动的顺序发育的。在这里,我们研究了上游感觉回路是否遵循类似的原理进行组织。我们在幼虫斑马鱼中使用连续切片电子显微镜,生成了一个完整的重力感应(椭圆囊)系统图谱,范围从内耳延伸到脑干。我们发现,感觉调谐和发育顺序都是前庭拓扑的组织原则。毛细胞到传入神经的有图案的头尾神经支配在椭圆囊神经节中创建了一个解剖学推断的方向调谐图,为前后倾斜形成了分离的途径。此外,神经节的中侧轴与发育顺序和神经元的时间动态都有关联。携带相位信息的早期出生的通路优先兴奋快速逃逸回路,而携带紧张信号的后期出生的通路兴奋较慢的姿势和眼球运动回路。这些结果表明,前庭回路是按照调谐方向和动力学组织的,与下游的运动回路和行为相匹配。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc5f/9420129/e733951344dd/41467_2022_32824_Fig1_HTML.jpg

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