编码尾侧小脑蚓的平移和倾斜的参考框架。

IF 4 2区 医学 Q1 NEUROSCIENCES Journal of Neuroscience Pub Date : 2025-03-12 DOI:10.1523/JNEUROSCI.0135-24.2025
Félix Buron, Christophe Z Martin, Jessica X Brooks, Andrea M Green
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引用次数: 0

摘要

许多日常行为依赖于我们对身体在空间中的运动和方向的估计。前庭信号对这种估计是必不可少的,但要适当地作出贡献,需要两个关键的计算。首先,来自耳石器官的模糊运动信息必须与空间转换的旋转信号(例如来自耳管的旋转信号)相结合,以区分头部平移和倾斜。其次,倾斜和平移估计必须从以头部为中心的参考系转换为以身体为中心的参考系,以正确地解释身体的运动。研究表明,尾侧小脑蚓部(结节/小舌腹侧)的细胞反映了估计平移和倾斜的第一组计算的输出。然而,尚不清楚这些估计是否完全以头部为中心的坐标编码,或者它们是否反映了向身体为中心的坐标的进一步转换。在这里,我们通过研究雄性恒河猴的平移和倾斜选择性NU浦肯野细胞的耳石和耳管信号的三维空间调谐如何随着头-身体和身体-重力方向的变化而变化,来解决这个问题。我们发现NU细胞的调谐特性在翻译过程中与头部为中心的耳石信号编码一致。此外,当NU中的运河信号被转换成一个特定的世界参考旋转信号,指示相对于重力(倾斜)的重新定向时,需要解决倾斜平移的模糊性,由此产生的倾斜估计以头部为中心的坐标进行编码。因此,我们的研究结果表明,姿势控制、导航和到达所需的以身体为中心的运动和方向估计是在其他地方计算的,要么通过进一步转换NU输出,要么通过其他并行路径的计算。对身体运动和方向的估计是日常活动必不可少的。前庭信号对这种估计至关重要,但必须首先进行转换,以区分平移和倾斜,并将以头部为中心的估计转换为以身体为中心的表征。先前的研究暗示了尾侧小脑蚓(结节/小舌,NU)在计算平移和倾斜的估计。然而,在这里,我们首次表明NU细胞只在头部为中心的坐标中编码这样的估计。因此NU反映的是适合于头部和凝视稳定的运动估计,而不是与身体姿势控制和伸手等任务相关的以身体为中心的表征。我们认为,头部和身体为中心的运动和方向估计可能至少部分是通过不同的小脑通路来计算的,这些小脑通路服务于不同的功能角色。
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Reference Frames for Encoding of Translation and Tilt in the Caudal Cerebellar Vermis.

Many daily behaviors rely on estimates of our body's motion and orientation in space. Vestibular signals are essential for such estimates, but to contribute appropriately, two key computations are required. First, ambiguous motion information from otolith organs must be combined with spatially transformed rotational signals (e.g., from the canals) to distinguish head translation from tilt. Second, tilt and translation estimates must be transformed from a head- to a body-centered reference frame to correctly interpret the body's motion. Studies have shown that cells in the caudal cerebellar vermis (nodulus and ventral uvula, NU) reflect the output of the first set of computations to estimate translation and tilt. However, it remains unknown whether these estimates are encoded exclusively in head-centered coordinates or whether they reflect further transformation toward body-centered coordinates. Here, we addressed this question by examining how the 3D spatial tuning of otolith and canal signals on translation- and tilt-selective NU Purkinje cells in male rhesus monkeys varies with changes in head-re-body and body-re-gravity orientation. We show that NU cell tuning properties are consistent with head-centered otolith signal coding during translation. Furthermore, while canal signals in the NU have been transformed into a specific world-referenced rotation signal indicating reorientation relative to gravity (tilt), as needed to resolve the tilt/translation ambiguity, the resulting tilt estimates are encoded in head-centered coordinates. Our results thus suggest that body-centered motion and orientation estimates required for postural control, navigation, and reaching are computed elsewhere, either by further transforming NU outputs or via computations in other parallel pathways.

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来源期刊
Journal of Neuroscience
Journal of Neuroscience 医学-神经科学
CiteScore
9.30
自引率
3.80%
发文量
1164
审稿时长
12 months
期刊介绍: JNeurosci (ISSN 0270-6474) is an official journal of the Society for Neuroscience. It is published weekly by the Society, fifty weeks a year, one volume a year. JNeurosci publishes papers on a broad range of topics of general interest to those working on the nervous system. Authors now have an Open Choice option for their published articles
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