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本文引用的文献

1
Structured connectivity in the output of the cerebellar cortex.小脑皮质输出中的结构连接。
Nat Commun. 2024 Jul 9;15(1):5563. doi: 10.1038/s41467-024-49339-1.
2
Cerebellar Purkinje cells in male macaques combine sensory and motor information to predict the sensory consequences of active self-motion.雄性猕猴的小脑浦肯野细胞将感觉和运动信息结合起来,以预测主动自身运动的感觉后果。
Nat Commun. 2024 May 11;15(1):4003. doi: 10.1038/s41467-024-48376-0.
3
Internal models of self-motion: neural computations by the vestibular cerebellum.自身运动的内部模型:前庭小脑的神经计算。
Trends Neurosci. 2023 Nov;46(11):986-1002. doi: 10.1016/j.tins.2023.08.009. Epub 2023 Sep 20.
4
Unperceived motor actions of the balance system interfere with the causal attribution of self-motion.平衡系统中未被察觉的运动动作会干扰自我运动的因果归因。
PNAS Nexus. 2022 Aug 27;1(4):pgac174. doi: 10.1093/pnasnexus/pgac174. eCollection 2022 Sep.
5
The otolith vermis: A systems neuroscience theory of the Nodulus and Uvula.耳石蚓部:小结和蚓垂的系统神经科学理论。
Front Syst Neurosci. 2022 Sep 15;16:886284. doi: 10.3389/fnsys.2022.886284. eCollection 2022.
6
Organization of the gravity-sensing system in zebrafish.斑马鱼的重力学感测系统组织。
Nat Commun. 2022 Aug 27;13(1):5060. doi: 10.1038/s41467-022-32824-w.
7
Distinct representations of body and head motion are dynamically encoded by Purkinje cell populations in the macaque cerebellum.猴小脑浦肯野细胞群体动态编码身体和头部运动的不同表示。
Elife. 2022 Apr 25;11:e75018. doi: 10.7554/eLife.75018.
8
Adaptive Balance in Posterior Cerebellum.后小脑的适应性平衡
Front Neurol. 2021 Mar 9;12:635259. doi: 10.3389/fneur.2021.635259. eCollection 2021.
9
Modular output circuits of the fastigial nucleus for diverse motor and nonmotor functions of the cerebellar vermis.小脑蚓部的 fastigial 核的模块化输出电路,用于小脑的多种运动和非运动功能。
Elife. 2020 Jul 8;9:e58613. doi: 10.7554/eLife.58613.
10
Simple spike dynamics of Purkinje cells in the macaque vestibulo-cerebellum during passive whole-body self-motion.猴前庭小脑在被动全身运动期间浦肯野细胞的简单峰电位动力学。
Proc Natl Acad Sci U S A. 2020 Feb 11;117(6):3232-3238. doi: 10.1073/pnas.1915873117. Epub 2020 Jan 27.

前庭信号与本体感觉信号在小脑蚓小结/蚓垂处的汇聚增强了灵长类动物自身运动的编码。

Convergence of vestibular and proprioceptive signals in the cerebellar nodulus/uvula enhances the encoding of self-motion in primates.

作者信息

Mildren Robyn L, Gómez Lex J, Cullen Kathleen E

机构信息

Johns Hopkins University, Department of Biomedical Engineering, 720 Rutland Avenue, Baltimore 21205, USA.

Johns Hopkins University, Department of Biomedical Engineering, 720 Rutland Avenue, Baltimore 21205, USA.

出版信息

Curr Biol. 2025 Feb 3;35(3):468-482.e3. doi: 10.1016/j.cub.2024.11.063. Epub 2025 Jan 9.

DOI:10.1016/j.cub.2024.11.063
PMID:39793564
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11794017/
Abstract

The integration of different sensory streams is required to dynamically estimate how our head and body are oriented and moving relative to gravity. This process is essential to continuously maintain stable postural control, autonomic regulation, and self-motion perception. The nodulus/uvula (NU) in the posterior cerebellar vermis is known to integrate canal and otolith vestibular input to signal angular and linear head motion in relation to gravity. However, estimating body orientation and motion requires integrating proprioceptive cues with vestibular signals. Lesion studies demonstrate that the NU is crucial for maintaining postural control, suggesting it could play an important role in combining multimodal sensory input. Using high-density extracellular recordings in rhesus monkeys, we found that the majority of vestibular-sensitive Purkinje cells also encoded dynamic neck proprioceptive input. Furthermore, Purkinje cells generally aligned their directional tuning to vestibular and proprioceptive stimulation such that self-motion encoding was enhanced. The heterogeneous response dynamics among Purkinje cells enabled their population activity to generate head or body motion encoding in the downstream nuclei neurons on which they converge. Strikingly, when we then experimentally altered the orientation of the head relative to the body, Purkinje cells modulated their responses to vestibular stimulation to account for the change in body motion in space. These findings reveal that the NU integrates proprioceptive and vestibular input synergistically to maintain robust postural control.

摘要

为了动态估计我们的头部和身体相对于重力的定向和运动方式,需要整合不同的感觉信息流。这个过程对于持续维持稳定的姿势控制、自主调节和自我运动感知至关重要。已知小脑蚓部后部的小结/蚓垂(NU)会整合半规管和耳石前庭输入,以发出与重力相关的角向和线性头部运动信号。然而,估计身体的定向和运动需要将本体感觉线索与前庭信号整合起来。损伤研究表明,NU对于维持姿势控制至关重要,这表明它可能在整合多模式感觉输入方面发挥重要作用。通过对恒河猴进行高密度细胞外记录,我们发现大多数对前庭敏感的浦肯野细胞也编码动态颈部本体感觉输入。此外,浦肯野细胞通常会将其方向调谐与前庭和本体感觉刺激对齐,从而增强自我运动编码。浦肯野细胞之间异质性的反应动力学使它们的群体活动能够在它们汇聚的下游核神经元中产生头部或身体运动编码。令人惊讶的是,当我们随后通过实验改变头部相对于身体的定向时,浦肯野细胞会调节它们对前庭刺激的反应,以适应空间中身体运动的变化。这些发现揭示了NU协同整合本体感觉和前庭输入以维持强大的姿势控制。